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Since 1965, INTEGRA has been dedicated to developing liquid handling solutions, fulfilling the needs of customers in research, diagnostics and quality control. It is their passion to work side by side with their customers to understand their problems and meet their needs with innovative products.
From watching immune cells respond in real time to growing increasingly complex cell models and mapping human development cell by cell, new technologies are transforming what researchers can see, measure, and understand.
This eBook explores the innovations pushing cell science forward, from single-cell multiomics and advanced imaging to newer flow cytometry approaches, organoids, optical tweezers, and smarter ways to preserve and culture cells.
Download this eBook to discover the innovations:
Improving cellular characterization and biological insight
Strengthening reproducibility, quality control, and preservation across cell-based workflows
Supporting more physiologically relevant research models
SPONSORED BY
INNOVATIONS IN
CELL SCIENCE:
A New Era of Cellular Insight
The Future is Bright:
Advances and
Developments in
Flow Cytometry
Revealing How the
Immune System
Behaves in Real-Time
With Immune Cell
Imaging
Growing Into Their
Potential: The
Innovations Driving
Organoids Forward
Credit: iStock/adventtr
CONTENTS
5
Is Cryopreservation
Frozen in Time?
8
Applications of Optical Tweezers in
Modern Cell Biology
12
Quality Control in Cell Culture:
Ensuring Safety, Reliability, and
Reproducibility
16
Revealing How the Immune System
Behaves in Real-Time With Immune
Cell Imaging
21
Growing Into Their Potential: The
Innovations Driving Organoids
Forward
25
Single-Cell Technologies Are
Redefining Our Understanding of
Human Development
30
The Future Is Bright:
Advances and Developments
in Flow Cytometry
3
FOREWORD
TECHNOLOGYNETWORKS.COM
INNOVATIONS IN CELL SCIENCE
Progress in cell science has always depended on how clearly researchers can see and
understand individual cells. Today, that view is sharper than ever, as a wave of new
technologies brings unprecedented insight into how cells function, interact, and change
over time.
This eBook explores the evolution of cell science. From single-cell and multiomics
approaches that capture the unique molecular signatures of individual cells, to advanced
imaging, flow cytometry, and precision manipulation techniques, the collection highlights
tools that are redefining how biological systems are studied. It also considers the broader
ecosystem that supports discovery, including robust cell culture practices and the
emergence of more physiologically relevant models such as organoids and assembloids.
As innovation continues to push the boundaries of what is possible, the work featured
here underscores a simple but powerful idea: understanding cells more precisely is key
to improving human health.
The Technology Networks editorial team
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5 INNOVATIONS IN CELL SCIENCE
Is Cryopreservation
Frozen in Time?
Alexandra Boussommier-Calleja
Let’s break the ice on cryopreservation: much like
many scientific breakthroughs, the field took off thanks
to a mistake. In 1949, Christopher Polge returned
from holiday to find unexpectedly good survival in his
sperm-freezing experiments—only to realize he had
accidentally frozen a sample containing glycerol, the
compound he used to slow sperm during observation.
That accident allowed the cells to survive freezing in
liquid nitrogen.
Seventy-six years later, although the field has made
progress, cryopreservation remains a bottleneck
in both research and clinical practice. Will the next
breakthrough also happen by accident, or can we find
ways to accelerate it?
A crystal-clear problem
Cryopreservation works by cooling biological material
to slow or pause cellular metabolism for long-term
preservation. With slow-freezing methods, ice crystals
can form inside and outside of cells causing mechanical
damage or osmotic stress. With vitrification, ice
formation is avoided during cooling, but can occur
during warming, leading to recrystallization.
Historically, permeable cryoprotective agents (CPAs)
such as dimethyl sulfoxide (DMSO) have been used to
reduce intracellular free water and limit ice formation.
But this is a double-edged sword: DMSO, while
effective, is cytotoxic.
Credit: iStock/Panupat Ratanawechtrakul
TECHNOLOGYNETWORKS.COM
INNOVATIONS IN CELL SCIENCE 6
Until now, researchers have learned to live with it,
given that “the core technology for preservation has
changed little since the 1970's,” as explained by Prof.
Allison Hubel from the Department of Mechanical
Engineering, University of Minnesota. “The entire
field needs improvement and there is hardly an aspect
of cryopreservation that would not benefit from
improvement,” Hubel added.
A bottleneck in and outside
of research
In addition to being potentially cytotoxic,
cryopreservation is generally slow and labor-intensive.
“When we work with our primary human cells, we
often generate 100+ vials while freezing. This takes 2–3
people working together to get them ready in record
time and ensure room temperature does not damage
them,” said Dr. Cynthia Hajal, assistant professor in the
Department of Mechanical and Industrial Engineering at
Northeastern University.
As Dr. Hajal explained, currently “The main issues are
post-thaw viability and phenotypic changes that occur
due to freezing: if the background and behavior of the
cells is affected, we cannot replicate our experiments well
nor get accurate results.” Post-thaw viability also matters
beyond research, in cell therapy, which often consists
of injecting cells back into patients after modifying and
cryopreserving them. Here, DMSO cytotoxicity damages
both the cells and, if not fully removed, can even cause
adverse reactions in patients.
If freezing cells reliably remains difficult, freezing
tissues or organoids is even more challenging. Reliable
preservation of patient- or animal-derived tissues is
needed to enable asynchronous workflows between
clinicians and researchers, so that tissues don’t always
need to be shipped right away. Organ transplantation
is also ripe for innovation: today, 25% to two-thirds of
donated organs are discarded which could be largely
prevented by increasing the time available to find suitable
recipients through advancing preservation methods.
Similarly, shipping biologics that must be delivered far
from their source remains a problem as often the only
solution to maximize their viability during transport is to
cryopreserve them.
Cool technologies to scale
beyond research
In research, these issues are often circumvented
with protocols optimized from one lab to the other.
These challenges, however, still hold back larger-scale
industrial or clinical applications. In some fields, such
as in vitro fertilization, moving from slow freezing
to vitrification has already dramatically improved
outcomes, with survival rates improving by up to 30
points in some studies.
But for many other applications, problems persist. This
has spurred innovation, including the use of anti-freeze
proteins (AFPs), which are naturally found in organisms
that survive extreme cold. These non-toxic, bio-inspired
proteins have improved the post-cryopreservation
viability of human embryonic kidney cells when
added both intra- and extracellularly. A group has even
shown that fish AFPs extended the preservation time
of transplanted rat hearts. To enter clinical practice,
engineering more diverse AFPs, including membranepermeating
variants, will be essential.
DMSO-free CPAs also generate great interest: glycerol
or trehalose have been used, but no single molecule
seems to be capable of replacing DMSO. Instead,
osmolyte mixtures could be transformative, according
"[Cryopreservation] is
a platform technology
for a variety of fields,
not just cell and gene
therapy."
–Prof. Allison Hubel.
TECHNOLOGYNETWORKS.COM
INNOVATIONS IN CELL SCIENCE 7
to Prof. Hubel, whose lab has tested them on dozens
of cell types, as they combine solutes that stabilize
proteins, maintain membrane integrity and reduce
osmotic shock with far lower toxicity.
Another exciting direction is ice-free preservation
through isochoric (rather than isobaric) conditions,
where ~ 45% of the solution remains liquid. Biological
samples can be stored in this liquid phase, protected
from freezing damage while still benefiting from reduced
metabolism at low temperature. Rat hearts were
successfully cryopreserved this way for the first time
in 2018. While energy-efficient, this method exposes
tissues to higher pressures, which may introduce
new risks.
Hydrogels, long used to mimic the cell’s
microenvironment, may also improve cryopreservation
by providing a protective barrier, inhibiting ice crystal
growth during freezing and warming, and buffering CPA
diffusion to prevent apoptosis from transiently high
CPA concentrations.
Another line of innovation focuses on optimizing
rewarming. Nanoparticles (NPs) can absorb energy from
external physical fields and convert it into heat, enabling
rapid and uniform heating of biological samples to inhibit
crystal formation. However, NPs may be cytotoxic, and
achieving uniform distribution remains challenging.
Since no single solution is perfect, studies have
begun combining approaches. For example, Tian et al.
microencapsulated mouse preantral follicles (PAFs) in
alginate using a microfluidic device before mixing them
with NPs. Microencapsulation separated the PAFs from
the nanoparticles, eliminating potential toxicity. Their
study reported a birth rate following fertilization of the
vitrified PAFs comparable to the control group.
Clearly, innovation is happening—but as Hubel noted:
“The biggest obstacle to translation into clinical or
industrial applications is the lack of knowledge of or
expertise in cryopreservation. When people do not
understand the scientific basis for cryopreservation,
they do not understand how to improve outcomes or
evaluate new technologies.” In other words, the field
may need to return to first principles before it can
meaningfully scale.
Not yet ready for prime time
Improving cryopreservation might seem like a logistical
and incremental problem today— but once it’s solved, it
could unlock disproportionately exciting possibilities.
As Hubel explained: “We need to continue to raise
awareness of the importance of cryopreservation for a
variety of fields. It is a platform technology for a variety
of fields, not just cell and gene therapy.”
Longevity and transhumanism are one such area: if
we cannot yet extend lifespan dramatically, could we
at least halt post-mortem aging through cryogenics,
preserving ourselves for a future revival? This is the
incredible bet that hundreds of people have made since
1967 as they lie cryopreserved until future medical
breakthroughs enable the possibility of safe thawing.
Once again, cell culture—the foundation of so much
biomedical progress—stands to play a central role in
shaping our medical future.
MEET THE INTERVIEWEES:
Prof. Allison Hubel is a professor in mechanical engineering at the
University of Minnesota. She combines her interest in heat and mass
transfer, material science, and biology to address issues related
to preservation of cells and tissues for therapeutic applications.
She uses imaging techniques to detect cell response to freezing,
optimization algorithms to improve preservation outcome, and a
variety of other tools to understand the behavior of water during
freezing and molecular mechanisms of protection.
Dr. Cynthia Hajal is an assistant professor at Northeastern
University. Her research interests are at the intersection of
engineering and cancer biology, developing tissue engineered
models of tumors to study cancer progression and drug delivery.
Her lab focuses on the design of engineered tumor models to
investigate the role of the components and properties of the
microenvironment in cancer progression and treatment outcomes.
8 INNOVATIONS IN CELL SCIENCE
Applications of Optical
Tweezers in Modern Cell
Biology
Héctor Zamora Carreras, PhD
Since their introduction in the 1980s, optical tweezers
have become valuable tools for studying biological
systems at microscopic scales. Developed from Arthur
Ashkin’s pioneering work on radiation pressure, they
use highly focused laser beams to trap and manipulate
microscopic particles while exerting forces in the
piconewton range, making them ideally suited for
probing cellular and molecular processes. Their noncontact
nature enables the manipulation of cells,
organelles, proteins, and nucleic acids under nearphysiological
conditions. At the same time, advances in
holography, fluorescence microscopy, and microfluidics
have greatly expanded their capabilities.
Today, optical tweezers play a central role in modern
cell biology by enabling quantitative measurements
of forces, biomolecular conformational changes, and
cellular responses to mechanical stimuli. This listicle
highlights four major applications of optical tweezers,
illustrating how they are helping researchers investigate
biological systems across multiple spatial scales, from
individual molecules to complex tissues.
Quantification of cellular forces
and mechanotransduction
One of the most important applications of optical
tweezers in cell biology is the investigation of cellular
Credit: iStock/d1sk
TECHNOLOGYNETWORKS.COM
INNOVATIONS IN CELL SCIENCE 9
mechanics. Cells constantly experience mechanical
forces from their surrounding environment and must
dynamically respond to these stimuli to maintain proper
function. Mechanotransduction, the process through
which cells convert mechanical signals into biochemical
responses, therefore plays a central role in processes
such as migration, differentiation, tissue morphogenesis,
and immune activation. Because many of these
interactions occur within the piconewton force regime,
optical tweezers are uniquely suited to probe them with
high spatial and temporal precision.
Optical tweezers are especially valuable because they
can exert and measure highly controlled forces on
cells and intracellular structures. By trapping dielectric
microspheres attached to the plasma membrane or
cytoskeletal components, researchers can quantify how
cells mechanically respond to external perturbations.
Bead displacement within the optical trap can be
translated into quantitative force measurements
through calibrated trap stiffness. Studies using these
approaches have revealed how integrins, membrane
receptors, and cytoskeletal networks transmit
forces throughout the cell and regulate downstream
signaling pathways.
Beyond probing individual cells, optical tweezers have
become powerful tools for quantifying cell–cell and
cell–matrix adhesion forces. These measurements have
provided insights into how immune cells establish
stable contacts with their targets, how epithelial tissues
maintain structural integrity, and how alterations in
adhesion contribute to cancer invasion and metastasis.
In immune mechanobiology, optical trapping
experiments have further revealed that T-cell activation
is influenced not only by biochemical recognition
events but also by mechanical forces exerted at the
immune synapse.
Similar approaches have been used to investigate
force transmission during tissue morphogenesis,
revealing how local mechanical interactions contribute
to large-scale tissue organization during embryonic
development. These studies highlight the growing
recognition that mechanics plays an active role in
regulating developmental processes rather than simply
being a consequence of them.
Among the most established mechanobiological assays
is membrane tether pulling, in which optically trapped
beads are used to extract thin membrane tubes from living
cells. These experiments provide direct measurements of
membrane tension and bending rigidity, key parameters
governing membrane viscoelasticity. Their application
has expanded beyond membrane mechanics to include
probing of intracellular mechanics.
Optical tweezer–based microrheology enables direct
investigation of the cytoplasm using internalized beads
or endogenous organelles as probes. These studies
have shown that the cytoplasm behaves not as a simple
viscous fluid, but as a dynamic active matter system
shaped by ATP-dependent processes, cytoskeletal
remodeling, and intracellular transport.
Beyond single-cell measurements, modern optical
trapping platforms are extending these approaches to
multicellular mechanics and tissue-scale interactions.
By generating multiple independently controlled traps
through holographic or time-shared multiplexing
strategies, these systems can quantify intercellular
adhesion forces and viscoelastic responses during cell
binding and separation. Together, these developments
are helping researchers better understand how
mechanical forces regulate tissue organization,
embryonic morphogenesis, wound healing, fibrosis, and
cancer progression.
Revealing the mechanics of
single molecules
Optical tweezers have revolutionized singlemolecule
biophysics by enabling the manipulation
of biomolecules such as DNA, RNA, and proteins.
Traditional biochemical approaches generally measure
averaged behaviors from large molecular populations,
often masking transient conformations, stochastic
fluctuations, and intermediate states. Optical tweezers
overcome these limitations by individually studying
TECHNOLOGYNETWORKS.COM
INNOVATIONS IN CELL SCIENCE 10
molecules and applying controlled mechanical forces
while monitoring molecular responses in real time.
One of the most established applications involves
nucleic acids. By tethering DNA or RNA molecules
between optically trapped beads through specific
molecular linkages, researchers can stretch, twist,
and unzip individual strands while measuring forceextension
behavior with nanometer precision. These
experiments have provided major insights into DNA
elasticity, chromatin organization, transcriptional
regulation, replication dynamics, and DNA repair
mechanisms. Optical trapping has also enabled
direct observation of nucleosome unwrapping and
transcription under mechanical tension, revealing how
force can influence genome accessibility.
Another major application of optical tweezers is the
study of molecular motors, including kinesin, dynein,
myosin, helicases, and ATP-dependent proteases.
Landmark experiments revealing the characteristic 8
nm stepping behavior of kinesin provided some of the
clearest evidence of how molecular motors transport
cargo within cells.
Beyond nucleic acids and motor proteins, optical
tweezers are frequently used to investigate protein
folding and protein–protein interactions. Many proteins
transition between multiple conformational states, and
these structural rearrangements are often central to
biological function. Optical trapping experiments can
monitor unfolding and refolding trajectories in real time.
Importantly, these measurements allow reconstruction
of molecular energy landscapes, revealing how proteins
transition between metastable states and how external
forces reshape the energetic barriers that govern
biological function.
Manipulation of cells and their
internal machinery
Single-cell manipulation remains one of the most
established applications of optical tweezers. Individual
cells can be trapped, repositioned, rotated, stretched,
or assembled into controlled configurations without
physical contact, minimizing mechanical damage while
preserving viability. This capability has proven valuable
for studying cell–cell interactions, immune responses,
circulation dynamics, and developmental processes.
Intracellular manipulation represents another important
application of optical trapping. Organelles such as
mitochondria, vesicles, lipid droplets, and peroxisomes
can be repositioned inside living cells to investigate
intracellular transport pathways and cytoskeletal
organization. Such experiments provide unique
opportunities to study intracellular transport dynamics
and the role of cytoskeletal networks in organizing the
cellular interior.
Adaptive optical trapping approaches have further
improved intracellular manipulation by compensating for
optical aberrations generated within living cells, enhancing
trapping stability while revealing the heterogeneous
physical properties of the cytoplasmic environment.
The characterization of cellular deformability represents
another important application of optical tweezers.
Optical stretchers, which use counterpropagating
laser beams to deform suspended cells under nearphysiological
conditions, have emerged as powerful
tools for studying cell viscoelasticity.
Modern optical trapping systems have also evolved
beyond conventional single-beam configurations. Many
platforms can now generate multiple independently
controlled traps through holographic beam shaping
or time-shared multiplexing approaches, enabling
the simultaneous manipulation of many particles or
cells. These systems facilitate applications such as
three-dimensional cellular assembly, selective cell
sorting, and coordinated manipulation of multiple
intracellular structures. Building on these capabilities,
recent developments integrating optical tweezers with
automation and microfluidics are expanding their use in
cell sorting and rare-cell isolation, supporting emerging
single-cell analysis workflows.
Optical tweezers are frequently combined with advanced
imaging modalities such as fluorescence microscopy,
Raman spectroscopy, and microfluidic imaging platforms.
TECHNOLOGYNETWORKS.COM
INNOVATIONS IN CELL SCIENCE 11
These multimodal approaches allow researchers to
correlate mechanical measurements with biochemical
and structural information in real time. Recent studies
have additionally explored in vivo optical trapping
approaches for manipulating blood cells and probing
vascular dynamics directly inside living organisms.
Advancing disease research and
biomedical engineering
In disease research, optical tweezers also play a
promising role in investigating pathogen–host
interactions. Early experiments demonstrated the
manipulation of bacteria and viruses, while more recent
studies have focused on quantifying how pathogens
attach to and mechanically interact with host cells.
Direct measurements of host–pathogen adhesion
forces have become another important application of
optical trapping, complementing traditional biochemical
approaches with quantitative mechanical measurements
Cancer research represents another major area of
application. Because cancer progression is frequently
accompanied by changes in cell stiffness, adhesion, and
force generation, optical tweezers have become valuable
tools for cancer mechanobiology. Measurements of
cell deformability, adhesion, and force generation
have shown that metastatic cells often exhibit distinct
mechanical signatures compared with non-invasive
counterparts. These findings are helping establish
biomechanical phenotyping as a complementary
approach to traditional molecular biomarkers for cancer
diagnosis and prognosis.
Regenerative medicine, tissue engineering, and singlecell
diagnostics represent another rapidly expanding
area of application. Their ability to position cells
with micrometric precision makes them attractive
for constructing engineered tissues, studying cellular
heterogeneity, and integrating with lab-on-a-chip
technologies. This level of control allows the assembly
of defined cellular architectures and the investigation
of how cell positioning influences tissue development
and function.
The future for optical tweezers in
cell biology
From quantifying cellular forces to probing individual
biomolecules and manipulating living cells, optical
tweezers have become one of the most versatile
tools in modern cell biology. Their unique ability to
combine precise force measurements with non-contact
manipulation has enabled researchers to investigate
biological systems across multiple spatial scales, from
single proteins to complex tissues. As advances in
imaging, automation, and force spectroscopy continue
to expand their capabilities, optical tweezers are
poised to play a central role in addressing fundamental
questions in cell biology and developing new
approaches for biomedical research and diagnostics.
12 INNOVATIONS IN CELL SCIENCE
Quality Control in Cell Culture:
Ensuring Safety, Reliability, and
Reproducibility
Debomita Chakraborty, PhD
Quality control (QC) in cell culture or tissue culture
refers to a set of quality control measures used to
ensure that the in vitro cultures are authentic, healthy,
uncontaminated, and grown under defined conditions.
This is important for generating reproducible, consistent,
and reliable data for improved research outcomes.
Advanced translational research with potential
therapeutic applications, including stem cell-derived
products and CAR T cells, requires strict QC for
regulatory approval to ensure safety and consistent
efficacy before clinical use. This guide will provide you
with important tips on establishing, maintaining, and
monitoring standard cell culture process.
Maintaining aseptic, hygienic
conditions
The age-old golden rule of cell culture is working
under sterile conditions, which includes keeping the
cell culture clean. This involves handling cells under
laminar flow hoods and biosafety cabinets equipped
with HEPA/ULPA filters, wearing proper lab coats and
gloves, and following updated lab safety guidelines as
outlined in ISO 14644-5:2025.
Cleanrooms for cell culture typically meet ISO 5–7
(Class 100–10,000), which are separated from other
lab areas to maintain ideal conditions, including
temperature (20–24 °C), humidity (40–60%), and
20–30 air changes/hour, preferably with in-built
Credit: iStock/Murat Photo
TECHNOLOGYNETWORKS.COM
INNOVATIONS IN CELL SCIENCE 13
HVAC filters for reduced airborne microbial and
particle contaminants.
In most cases, cell cultures are maintained at a stable
temperature (37±0.5 °C), CO₂ level (5±0.2%), and
pH (7.2–7.4). Incubators maintaining proper cell
culture conditions should be cleaned regularly using
manual wiping, high-heat/auto-decontamination
cycles, professional fumigation, hydrogen
peroxide decontamination, or other manufacturerrecommended
methods.
Water pans in incubators and water baths for thawing
media and cells should be added with approved
disinfectants. Laminar flow hoods need to be wiped
with disinfectants, most commonly 70% ethanol,
before and after use, and they should be sterilized
further using UV light at least once a day. Cell culture
attire, such as lab coats, should be sterilized frequently
and not worn elsewhere.
Controlling cell culture conditions
The physical and chemical parameters for culturing the
cells should be regularly monitored and documented.
The temperature, CO₂, pH, media composition,
osmolarity, glucose, or metabolite levels, and any other
relevant material/method should be regularly monitored
and well documented.
Extra care should be taken when optimizing and
employing specialized complex media for advanced
tissue cultures, stem cells, or organoids.
The reagents and media used should be stored optimally
following the manufacturer's instructions, and regular
checks should be undertaken to ensure that the activity
and function of the growth factors or other supplements
is well preserved and that the media are not degraded
during storage. Media supplements should be aliquoted,
and repeated freeze-thawing should be avoided.
For large-scale suspension cultures or bioreactors,
additional parameters such as oxygen supply, agitation,
hydrodynamic stress, and cell density should also be
regularly tracked.
Stringent safety protocols should be established in cell
culture: always use clean gloves, use sterile pipettes and
pipette tips, wear lab coats, and cover hair to protect
both yourself and the cell or tissue systems from
harmful contaminants.
Monitoring critical quality
attributes (CQAs)
In regulatory terms, CQAs related to the biological
characteristics of the cells or cell-derived products need
to be within defined limits to ensure safety, consistency,
and efficacy.
For cell lines, CAR-T cells, stem cells, and stem cellderived
products, the following CQAs need to be
regularly documented: cell identity, morphology,
sterility, viability, potency, genetic integrity,
clonogenicity, and differentiation potential.
Authentication, PCR-based tests, or sequencing should
be performed every few months to confirm cell identity
and genetic integrity of the cells or cell lines in use.
Viability of cells can be measured using metabolic
assays (such as MTT or resazurin), ATP-based
luminescence assays, membrane integrity assays, and
cell proliferation or clonogenic assays.
Cell identity, clones, and differentiation can be tested
with multiple cell markers using immunofluorescence/
immunohistochemistry staining or flow cytometry
analysis. In vitro differentiation assays, cell killing
assays for T cells, antigen binding or ELISpot assays,
or other functional assays should be performed
for validation of cell functions and potency. The
regions of tissues or organs used for generating
organoids or precision-cut slices should be imaged for
immunohistochemical stainings and additional clinical
markers for proper documentation.
TECHNOLOGYNETWORKS.COM
INNOVATIONS IN CELL SCIENCE 14
Keeping cell culture free of
contaminants
The most important quality attribute of cell culture is
sterility; cell or tissue systems, cell-derived products,
and cell culture reagents and media should be free of
mycoplasma, bacteria, fungi or mold, and viruses, which
affect cell behavior and experimental readouts.
Poor aseptic conditions, fecal cross-contamination, or
cultivation of clinical, surgical, or animal samples might
lead to microbial contamination. In vitro cultures should
be inspected closely every day for turbidity of the medium,
pH changes, and signs of bacterial contamination.
Bacteria and fungi
The presence of bacteria, fungi, or molds can be
observed regularly under a phase-contrast or brightfield
microscope at 100–400× magnification; check
for spores, round or elongated rod-like structures,
elongated hyphae (thread-like filaments), budding yeast
cells, or mycelial networks distinct from mammalian
cells. Several detection methods, such as PCR kits,
isothermal amplification, and staining for Grampositive
and Gram-negative bacteria are available
for confirmation of contamination. PCR is the most
efficient way of detecting contamination even at
low levels.
Mycoplasma
Mycoplasma are very small, wall-less bacteria that cause
the most frequent contamination of biological samples.
They are antibiotic-resistant and can barely be detected
using normal observation or a brightfield microscope,
making them persistent and challenging to eradicate.
It is advised to carry out routine mycoplasma detection
every 4–8 weeks in all cell culture samples. When
data are generated, the biological material should have
proof that no mycoplasma are present in the samples
at several passages. Mycoplasma can be detected by
DAPI or Hoechst staining to check for extranuclear
DNA fluorescence, but PCR-based assays are the most
reliable method.
Viruses
If handling patient samples known to contain a virus
such as HPV, virus detection tests should be carried
out frequently, and the positive samples should be
identified and labeled for sample characteristics as well
as for biosafety. Otherwise, PCR or titer-based kits are
commercially available for the detection of common
viral contaminants, which should be used at least once
per batch of samples or every 3–4 months.
Take preventative action
Freshly isolated or received cells should first be tested for
contaminants before freezing and storing. Commercially
purchased biological material should be requested for
data for the assurance of contamination-free samples
and checked for contamination when received, as the
contamination might occur during delivery.
Sera used in cell culture should be filtered through
0.2 μm filters before use. Endotoxin levels should be
maintained according to the strictly specified levels,
which are generally below 0.1 EU/mg for all in vitro
studies. It should be ensured by the providers and can
also be checked by different techniques, including
Limulus amebocyte lysate (LAL)-based or recombinant
factor C assays, as well as newer electrochemical
aptasensors, nanozyme‑, or fiber‑optic–based biosensors.
Tested positive for a cell culture
contaminant?
It is recommended to discard the contaminated cultures
and, if possible, completely and thoroughly disinfect
and decontaminate the entire cell culture workspace
and cleanroom to stop spreading contamination. Then,
contamination-free vials should be thawed and checked
again for contamination in early passages.
For valuable research materials, antibiotics,
antimycotics, or antiviral compounds may be added to
the media, but the microbial titer should be measured
continuously. Experiments may be performed once the
TECHNOLOGYNETWORKS.COM
INNOVATIONS IN CELL SCIENCE 15
contamination levels sink to a minimum, and it should
be considered when interpreting the outcomes. Viral
contamination is generally difficult to remove, and such
samples should be clearly labeled during the study for
data integrity.
Utilizing automation and artificial
intelligence (AI) in cell culture QC
The digital era makes life easier for researchers.
Deep learning interfaces allow non-invasive, realtime
monitoring of cell culture media, changes in pH,
metabolite depletion, and cell densities. Small digital
incubators that allow automated measurements of
cell viability and density are commercially available.
Automated imaging systems placed in incubators also
facilitate monitoring changes in cell morphologies.
Ongoing research focuses on combining machine/deep
learning with sensor analytics and AI-driven image
analyses to not only monitor CQAs but also integrate
automated sampling for dynamic tracking of them.
This has already been successful on a small scale for
stem cell engineering by detecting and predicting early
contamination risks, indicating morphology changes, and
measuring physical parameters and media composition.
Conclusion
Cell culture builds the foundation of research and
assays related to biological studies: a clean culture leads
to credible results. When QC is weak, even beautiful
data are just a well‑decorated artefact. Little everyday
care should be taken to keep the cell culture sterile,
prevent contamination, continuously monitor cell
properties and identity, and—most importantly—to
document and report every protocol carried out. Strong
cell culture QC turns your incubator from a guessing
game into a reliable factory for trustworthy science.
16 INNOVATIONS IN CELL SCIENCE
Revealing How the Immune
System Behaves in Real-Time
With Immune Cell Imaging
Cliff Dominy, PhD
For decades, science has made progress in understanding
the complexities of the immune system by inferring
its activity from histological slides and biomarkers—
snapshots frozen in time. Imagine trying to follow a story
from a stack of photographs. You might guess the general
plot, but exactly who went where, when, and with whom
would remain a mystery.
Today, immune cell imaging can deliver dynamic 3D
movies of immune interactions in real-time. These
advances have deepened our understanding of a patient's
inflammatory profile, including their antigen and vaccine
responses, as well as how their immune system either
combats or succumbs to cancer.
Immune cell imaging combines targeted probes, often
antibody-bound, with genetically expressed fluorescent
proteins, all visualized using several detection systems.
These range from whole‑body positron emission
tomography/computed tomography (PET/CT) to
subcellular two‑photon intravital microscopy (2P‑IVM).
These technologies enable researchers to track immune
cell interactions over time and across space.
These imaging modalities bring clear benefits to
personalized medicine, potentially allowing clinicians
to monitor individual patients and understand why the
immune system can protect one patient, while failing
in another.
Credit: iStock/gorodenkoff
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INNOVATIONS IN CELL SCIENCE 17
Seeing is believing: the immune
system in action
Understanding the mechanics of a “normal” immune
response is fundamental to developing therapies for
immune dysfunction. Two complementary “workhorse”
techniques, immune PET/CT and 2P-IVM, can be
used alongside several auxiliary techniques to study
health issues such as autoimmunity and adverse
therapeutic events.
Dr. Ronald Germain, a National Institute of Health (NIH)
distinguished investigator, was one of the early pioneers
of 2P-IVM. The Germain group, and others, have used
this imaging modality to characterize the details of
neutrophil swarming, a key mechanism by which the
immune system responds to cell damage or infection.
By labeling neutrophils with fluorescent probes,
Germain and colleagues observed that this mechanism
was not “a random walk of cells that interacted, like balls
in a pinball machine but rather a much more organized
system that let us understand how rare cells find each
other efficiently to make a good response.”
2P-IVM also revealed how populations of naïve T
cells, dispersed throughout the body, can mount a
coordinated attack at any given moment. Germain
elaborated, “Our two-photon imaging showed that T
cells move on the stromal network that exists in the
lymph node, and the reason that's interesting is that the
dendritic cells are presenting the antigen live on that
same fiber network.”
In other words, antigen presentation is not a chance
meeting, but an inevitable encounter between key immune
components travelling along the same cellular scaffold.
Autoimmunity: beyond the
biomarkers
Once we understand the normal immune response, the
next challenge is understanding what happens when
things go wrong. Autoimmune conditions occur when
the body recognizes its own components as foreign,
triggering an immune response. The target tissue can
vary, leading to presentations ranging from rheumatoid
arthritis to inflammatory bowel disease.
In clinical settings, immune PET imaging provides
non-invasive visualization of these pathophysiological
immune responses. Dr. Erik Aarntzen, a nuclear imaging
specialist at the University Medical Center Groningen
Netherlands, has emphasized PET’s key strength in
viewing the immune system as an interconnected
network rather than isolated tissue.
As he explains, “It allows you to assess the immune
system at the systems level—how different organs
interact, how they’re interconnected—from local lymph
nodes to the spleen and bone marrow. It really captures
the ‘systemness’ of our immune system.”
By adding CT to the analysis, Aarntzen and colleagues
can get even more information. “It's mostly anatomical.
It’s size and anatomical variation,” Aarntzen explains,
“then you add on top of that the functional information
[of PET imaging] that I think is very valuable to have.”
No longer are physicians interpreting an abstract
immune activation event, but now have a spatially
resolved, quantifiable whole-body view of the affected
sites that can guide diagnosis, improve patient
risk‑stratification, and ultimately therapy selection.
At the clinical level, PET/CT is highly sensitive. “In the
case of patients admitted to hospital with symptoms
“Light can provide
exceptional temporal
control over dynamic
systems like biology,
and that's why it's so
powerful.”
– Dr. John James.
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INNOVATIONS IN CELL SCIENCE 18
that indicate inflammation,” Aarntzen confirms,” I
have hardly seen any scan that you do not see an
abnormal signal.”
Furthermore, advances in PET technology have
facilitated faster acquisition times, reduced the need
for lengthy scans, and have also enabled more granular
tracking of the immune response over a given period.
However, there are still key processes to consider.
Aarntzen explained, “Time in the scanner is no longer
limiting. What matters is matching tracer half-life to
the biological process you want to study.” For instance,
radio-labelled glucose-based tracers are useful for
short-term snapshots of inflammation, while other,
more specific, tracers are used to track immune cell
populations over several days.
Minimizing the risks and
maximizing the benefits of
immunotherapy
Modern cancer treatment options range from
monoclonal antibodies to chimeric antigen
receptors (CAR), engineered from patient T cells
to tackle several blood cancers. However, similarly
to autoimmune disease, immune exuberance can
occur, resulting in toxicity and adverse events.
All told, 5–10% of patients will die from treatment
complications.
One approach to rapidly identify inf lammatory
responses to immunotherapy is immune PET/CT
imaging. In a clinical setting, this guides dosage
adjustments, determines therapeutic response, and
facilitates earlier recognition of adverse events,
potentially mitigating the risk of unfavorable
outcomes.
With regard to CAR T specifically, optogenetic
control may offer a strategy to minimize adverse
events. Optogenetics uses a naturally occurring
light switch from a family of proteins found in plants
and some bacteria. The proteins are dormant in the
dark but, when exposed to specific wavelengths
of light, undergo a conformational change to
become active.
Researchers have fused this technology into the
CAR T gene cassette. They hypothesize patients
could be infused with an inactive therapy that
is selectively activated at the target site by light
exposure. Dr. John James, a biochemist at the
University of Warwick, is investigating CAR T
optogenetic control systems.
“Light can provide exceptional temporal control over
dynamic systems like biology, and that's why it's so
powerful.”
If successful, a switchable CAR T delivery system
could allow clinicians to control drug doses with light,
keeping adverse events in check while preserving
therapeutic efficacy.
However, depending on the wavelength used, visible
light only penetrates approximately 1–3 mm into tissue.
Therefore, optogenetic systems are only applicable to
surface or near-surface conditions, such as melanoma
and arthritis. Although if successful, clinicians could
consider using optical windows or laparoscopic
surgery to access deeper tumors.
Revealing more in every frame
with multiplexing
Experts agree that limited multiplexing capabilities
are a significant barrier to a greater understanding
of immune interactions. Multiplexing enables the
real-time tracking of multiple signals from distinct
immune components. The more spotlights you have
on the ice rink, the more skaters you will see. Similarly
with imaging, increasing the number of detectors to
highlight all the participants in an immune response
would be like placing floodlights on the arena.
However, nuclear imaging groups have faced
challenges in simultaneous signal identification
because all positrons emit at the same energy level,
making this impossible. Research is underway on
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INNOVATIONS IN CELL SCIENCE 19
two-isotope hybrid PET studies, which have reported
success in simultaneous imaging of radiotracers.
On the other hand, optical techniques benefit from a
broader range of visible light, and 2P-IVM can distinguish
several fluorescent probes within images. Though there
are still limitations on the number of signals that can be
identified compared to the number present.
Germain’s group has sidestepped this multiplexing
constraint by using a single fluorophore during in vivo
imaging. Using a two-stage in vivo/in vitro approach
called correlative microscopy, his group tracks immune
system interactions in vivo before preserving the tissue
for staining.
“What you can do is watch the cells move, stop the
system, and then ask in the preserved sample what
proteins they expressed and what their transcriptome
looked like in that exact spatial context.”
The preserved section can be re-probed with different
reagents to detect distinct target molecules, and
signal positions can be mapped onto the 3D tissue
structure. This approach has improved the multiplexing
capabilities to track up to eight components, with further
improvements in development.
A completely in vivo approach is the goal of high-plex
3D imaging, though it may take some time to come
to fruition.
Germain confirms that “Real‑time transcriptomics in a
living tissue is not yet here.”
Spatial biology is the future
Aarntzen looks forward to the integration of PET imaging
with genomic and proteomic data, but says he “would
not see it happening in the near future.” Prior to this
integration, several hurdles must be addressed, including
heterogeneity amongst human immune responses and
the scarcity of complete datasets for various clinical
conditions. Furthermore, reconciling genomic and
proteomic profiles with downstream immune phenotypes
will be challenging, as well as defining a “healthy”
response. Nevertheless, it is a worthwhile goal.
“True progress can only come from a better
understanding of health and disease,” Aarntzen said.
On the optical side, the spotlight is on the fusion of
dynamic immune cell imaging with high‑plex spatial
transcriptomics. Germain anticipates a future in which
imaging modalities, assisted by high‑plex 3D technology,
are merged with spatial transcriptomic data to train AI
models on immune response prediction. He says that this
would provide “a truly multiomic, spatiotemporal map of
immune tissue”.
“Multiomics”, he concluded, “is where this is all going”.
When asked if computer bandwidth might be a problem,
he shares a photograph of the expansive computing
facility at NIH “You don't do this on a desktop anymore,”
he laughed.
MEET THE INTERVIEWEES:
Dr. Ronald N. Germain received his MD and PhD from Harvard University
in 1976. Since then he has investigated basic immunobiology, first
on the faculty at Harvard, then at NIAID, NIH. He has contributed to
understanding MHC class II molecules, antigen processing, and T cell
recognition, more recently pioneering analysis of the immune system
using dynamic and static in situ microscopy.
Dr. Erik Aarntzen is a nuclear imaging specialist at UMC Groningen
with a research interest in onco-immunology. His research uses
multiple tracers targeting the immune system, like nanoparticles,
antibodies/minibodies and small peptides, to better understand immune
responses. His work with PET scanning technology, in conjunction with
the development of new tracers, is focused on translating laboratory
research into meaningful improvements in the treatment of cancer and
immune mediated inflammatory diseases in patients.
Dr. John James is an associate professor at the University of
Warwick. James’ research is focused on how T cells, an essential
component of our immune system, interpret and respond to signals
from potentially infected cells within the body. His research priorities
include uncovering how the dynamic signaling network inside T
cells is capable of computing the most appropriate response. To
achieve this, the James lab makes use of chemical and optogenetic
(light) control techniques to probe this intracellular network in a
quantitative manner without disrupting it. A longer-term goal of this
research is to develop therapeutic control strategies to fine-tune
T-cell responses in patients.
Single-cell analysis techniques
Single-cell analysis encompasses a suite of powerful techniques used by researchers to examine
multiple aspects of individual cells with unprecedented resolution.
Single-cell genomics
Uses single-cell whole genome
sequencing to identify genetic
differences and heterogeneity
across single cells.4
Single-cell
transcriptomics
Measures gene expression by analyzing
RNA in individual cells, typically using
single-cell RNA sequencing (scRNA-seq).5
Single-cell proteomics
Analyzes cellular proteins
through techniques
like mass spectrometry
or single-cell antibody
sequencing (scAb-seq),
which profiles proteins at
single-cell resolution, to
understand cell function.5
Single-cell
epigenomics
Uses a single-cell
chromatin accessibility
assay (scATAC-seq) to
measure open chromatin
regions and DNA
methylation (scDNA-Metseq)
to detect methylated
DNA sites, allowing
analysis of epigenetic DNA
modifications in individual
cells that regulate gene
expression.5
Single-cell metabolomics
Measures metabolites in
individual cells to assess their
metabolic state and function
using mass spectrometry.5
Single-cell multiomics
Combines multiple
omics layers (genomics,
transcriptomics, proteomics)
from the same cells for
comprehensive analysis.6
Single-cell spatial biology
Maps molecular features (RNA,
proteins, or metabolites) in intact
tissues to preserve spatial context
and cell–cell interactions.7
Single-cell imaging
Uses microscopy-based techniques,
including mass spectrometry imaging
(MSI), to visualize cells, structures, and
molecular markers at high resolution,
linking cellular phenotype with
molecular information.7
Click here to view the full infographic
21 INNOVATIONS IN CELL SCIENCE
Growing Into Their Potential:
The Innovations Driving
Organoids Forward
Laura Elizabeth Lansdowne
In 2009, Dutch molecular geneticist Hans Clevers
achieved something extraordinary. By isolating a single
stem cell from a mouse intestine and embedding it in a
nutrient-rich bio-gel, he, along with his postdoc Toshiro
Sato, coaxed the cell into organizing itself into a mini
organ. Within days, the Petri dish contained a tiny
three-dimensional structure—an intestinal organoid—
that survived for several months.
Researchers could now grow small, lab-made structures
from stem cells that mimicked the architecture and
function of real organs. Since then, organoids have
transformed biomedical research, helping to study
disease, test drugs, and explore human development.
But as these in vitro models have become more
sophisticated and more widely used, their limitations
have become increasingly evident.
Now efforts are shifting toward overcoming these
challenges. In this article, we explore some key
innovations that are helping these mini organ models
achieve enormous potential.
Credit: iStock/Meletios Verras
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INNOVATIONS IN CELL SCIENCE 22
What is an organoid?
An organoid is a small, three-dimensional tissue model
grown in the laboratory from stem cells. These cells
self-organize into structures that resemble features of
real organs, allowing organoids to replicate aspects of
organ structure and function.
Breaking organoid size barriers
with vasculature
Without a vascular network to deliver oxygen and
nutrients, organoids often struggle to grow beyond
small clusters, preventing them from fully reproducing
the complexity of living organs.
In the human body, a cell is typically no more than 50–100
μm away from a capillary; but in the case of organoids,
those cells located at the very center can suffocate.
“Traditional organoids are fundamentally limited by
their lack of vasculature,” explained Dr. Joseph C. Wu,
director of the Stanford Cardiovascular Institute.
“Without blood vessels, oxygen and nutrients cannot
penetrate the core, leading to necrosis and restricting
organoid size and fidelity.”
Dr. Wu’s lab has developed a method to overcome this
by using spatially micropatterned human pluripotent
stem cells (hPSCs). These cells self-organize into
structures that mimic the earliest stages of human heart
development.
Their approach relied on them being able to identify a
specific “cocktail” of growth factors and small molecules
that could support the co-differentiation of various
cardiac and neuronal cells alongside a branched,
lumenized vascular network from a single starting
population of hPSCs.
Using four fluorescent reporter lines, Wu’s team could
monitor cell fate decisions in real time as the organoid
developed. Single-cell transcriptomics and high-resolution
3D imaging revealed that the cellular composition of the
vascularized organoids closely mirrored a human heart at
about 6.5 weeks post-conception.
“Incorporating vasculature dramatically improves
physiological relevance,” noted Wu. “It enables the
nutrient and signaling gradients that shape organ
patterning, and allows us to study how the vasculature
communicates with and instructs neighboring organspecific
cells.”
What’s exciting is that this approach is not organspecific.
The researchers discovered that it worked for
liver progenitors just as effectively as for the heart. “This
suggests a conserved developmental program underlies
vascularization across organ systems,” Wu said, “an
insight that would have been almost impossible to
obtain from animal models or early human embryos.”
Steps towards scaling the use of
vascularized organoids
Wu is confident that vascularized organoids could
transform preclinical testing, but he notes that scaling
them remains challenging. Wu elaborates: “The
micropatterning approach we use is powerful but
requires careful optimization of geometry, cell density,
and timing. Scaling this to a high-throughput format,
such as 96-well or 384-well plates, while maintaining
consistency in vascular network formation is an active
engineering challenge.”
Wu adds that the vessels are not yet perfused with
flow—an important factor for vessel maturation: “its
absence means the vessels lack some features of mature
vasculature... To bring vascularized organoids to scale,
we must integrate fluid flow, supporting cells, and robust
quality standards—only then can these systems truly
mimic real human tissue and accelerate drug discovery."
Looking beyond a single organ:
Enter the assembloid
As researchers strive to capture greater complexity,
a new term has emerged—the “assembloid”. While
an organoid is a 3D structure that recapitulates
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INNOVATIONS IN CELL SCIENCE 23
a single organ, an assembloid is a more complex
system that combines multiple organoids, spheroids,
or cultured cells, allowing researchers to model
more complex interactions.
The assembloid’s origin
The term “assembloid” was coined in 2017 by
Stanford’s Sergiu Pasca, who had recognized that so
many biological processes rely on integrated circuits
of communication and interaction—the brain is a great
example—and that a single spheroid or organoid could
not capture this adequately.
At the time, his lab was interested in understanding
how connections between cells go awry in the brains
of people with psychiatric conditions. Pasca’s team
began “fusing” discrete units together—such as a
cortical organoid (the brain’s “thinking” center) and a
subcortical organoid (the “relay” station).
This allowed them to study conditions like autism or
schizophrenia, known as “circuitopathies”. In these
disorders, individual parts of the brain may seem to be
structurally sound, but the signaling between them has
suffered a systemic breakdown.
Beyond the brain: Realizing the broader
potential of assembloids
“Traditional organoids model a compartment.
Assembloids model relationships,” stated Associate
Prof. Shafagh Waters, a Scientia Associate Professor at
the University of New South Wales and co-lead of the
Non-Animal Technologies Network.
Waters highlights how assembloids can model the
boundaries between tissues—the “zones” where
different cell types meet and interact.
“By integrating epithelial, mesenchymal, and sometimes
vascular or neural elements, we begin to recreate tissue
interfaces—the epithelial–stromal boundary, immune–
epithelial contact zones, or vascular–parenchymal
exchange surfaces,” she noted.
This approach is particularly useful for studying
complex chronic diseases, where interactions between
cells drive pathology. For example, in airway disease,
epithelial dysfunction is shaped by its crosstalk with
immune cells, fibroblasts, and the tissue environment.
While many assembloid systems remain experimental,
Waters’ own work focuses on patient-derived airway
models that can help guide treatment decisions.
She develops patient-derived airway models to test
treatments and develop personalized therapies for
cystic fibrosis and other airway conditions. In a study
published in Thorax, her team grew “mini-me” organoids
from children’s airway cells to predict how each patient
would respond to drugs targeting the faulty protein
(CFTR) that causes cystic fibrosis.
Wired for growth: Engineering
cyborg organoids
One of the biggest barriers facing organoid research is
maturation. As Wu flags, “most organoids today resemble
fetal tissue rather than fully developed adult organs,
limiting their usefulness for studying conditions such as
heart failure, cirrhosis, or neurodegenerative disease.”
A new approach aims to tackle this challenge by
integrating soft electronics directly into developing
tissues. The method involves embedding flexible
mesh nanoelectronics during the formation of the
organoid so that the device becomes part of the tissue
as it grows and differentiates—essentially creating a
“cyborg” model.
“Organoids have become increasingly sophisticated
models for human disease modeling and drug discovery,
yet our ability to measure and control their real-time
functional dynamics during development and maturation
has lagged. As a result, a major limitation for the current
organoids is that- they lack functional maturation
compared to their in vivo counterparts,” said Dr. Jia Liu,
assistant professor in the School of Engineering and
Applied Sciences at Harvard University.
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INNOVATIONS IN CELL SCIENCE 24
Liu’s approach turns traditional organoids from largely
descriptive models into continuously trackable and
controllable biological systems, allowing researchers to
quantify and guide their functional maturation.
In pancreatic islet organoids, this approach
enables researchers to track electrical activity
from individual alpha and beta cells and observe
how glucose responsiveness changes over time.
Electrical stimulation can also be used to tune cellular
activity, giving researchers a way to guide functional
development in real time.
Liu’s team is already applying this approach to other
organ systems. “We have developed cyborg cardiac
organoids and cyborg brain organoids to track electrical
activity chronologically, during in vitro maturation.
“We believe cyborg organoids represent a broadly
applicable platform for advancing organoid research and
regenerative medicine,” Liu explained.
Looking ahead, Liu thinks that cyborg organoid
technology could expand beyond electrical sensing to
incorporate a broader suite of bioelectronic sensors,
capable of tracking metabolites, oxygen levels, and other
physiological signals. This would allow researchers to
build a more comprehensive functional profile of stem
cell–derived organoids and even primary human tissues.
In addition, by implementing AI-enabled closed-loop
recording and control, the system is expected to provide
a precise modulation of the functional development and
maturation of the organoids.
Beyond the lab
By incorporating vasculature, fusing multiple organoids,
and embedding bioelectronic sensors, these miniature
systems (Figure 1) are evolving from static models into
dynamic, trackable, and clinically relevant platforms.
Alongside these advances, regulatory momentum is
creating new opportunities: the US Food and Drug
Administration Modernization Act 2.0/3.0 and similar
initiatives worldwide now support the use of non-animal
models for preclinical testing, provided platforms are
predictive and reproducible.
“Trust is built through evidence and transparency.
Regulatory approval will follow when organoid
platforms are demonstrated to be reliable, reproducible,
and predictive across independent centers... with the
right investment, for many applications, human-relevant
models can become not just alternatives—but the
preferred standard,” concluded Waters.
MEET THE INTERVIEWEES:
Associate Professor Shafagh Waters is a translational stem cell
biologist and leader in organoid-based precision medicine at
UNSW Sydney. She co-leads the NSW Non-Animal Technologies
Network, a cross-sector initiative coordinating Australia’s
transition toward validated human-relevant research platforms.
Her research integrates patient-derived airway models, functional
electrophysiology, and clinical translation to advance personalized
therapies for cystic fibrosis and develop regenerative and geneedited
airway strategies for sinus disease. She has authored more
than 60 publications and leads national collaborations across
academia, clinical centers, industry, and government.
Dr. Joseph Wu is director of the Stanford Cardiovascular Institute
and the Simon H. Stertzer, MD, Professor of Medicine and
Radiology at Stanford University. He earned his MD from Yale
University and his PhD in molecular and medical pharmacology
from the University of California, Los Angeles. He currently serves
as president of the Association of University Cardiologists (2026).
Wu’s research integrates genomics, stem cells and organoids,
artificial intelligence, and drug discovery to understand disease
mechanisms, advance precision medicine, and accelerate
therapeutic development through new alternative methodologies
and the “clinical trial in a dish” concept.
Dr. Jia Liu received his PhD in Chemistry from Harvard University
in 2014 and completed postdoctoral training at Stanford University
in 2018. He joined the Harvard School of Engineering and Applied
Sciences as an assistant professor in 2019. His laboratory develops
tissue-integrated bioelectronic systems that combine flexible,
soft electronics with living tissues, alongside multimodal in situ
characterization and AI-driven analysis to decode and control
biological processes. His research spans tissue-like bioelectronics,
cyborg organoids, and AI-enabled multimodal approaches to study
neural dynamics, organ function, and disease mechanisms.
25 INNOVATIONS IN CELL SCIENCE
Single-Cell Technologies Are
Redefining Our Understanding
of Human Development
Kaja Ritzau-Reid, PhD
Early pregnancy has long been described as a “black
box” in human development. Key biological events that
happen at this time determine whether a pregnancy
will be successful or not. Our understanding of this
extraordinary developmental journey has remained
limited due to the difficulty of accessing the developing
embryo (both practically and ethically) and the limited
tools available for studying this process. As a result,
common pregnancy complications like recurrent
miscarriages and pre-eclampsia are still poorly
understood, with limited treatment options.
A new revolution in single-cell technologies is changing
this. Up until recently, researchers have characterized
cells by their structure, function and location, but have
been kept in the dark about their individual molecular
profiles. This means that essential details, like the
intricate set of instructions sent between cells, are
missed. Single-cell technologies now allow researchers
to isolate and profile each cell individually, capturing
its unique molecular signature. This has opened up a
whole new toolkit for understanding complex biological
systems – such as piecing together the biological events
of early pregnancy.
Dr. Roser Vento-Tormo, a group leader at the
Sanger Wellcome Institute, heads a research team
investigating women’s reproductive health and the
developmental trajectory of early pregnancy using
single-cell technologies. “The maternal–fetal interface
embodies a delicate equilibrium between growth,
invasion and immune tolerance – processes that are
Credit: iStock/Tempura
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INNOVATIONS IN CELL SCIENCE 26
fascinating at a fundamental biological level but also
central to many pregnancy complications,” explained
Vento-Tormo. ‘‘The biology itself adds complexity and
drawing robust conclusions requires larger sample sizes
than in more static tissues, as well as experimental and
computational technologies that enable us to disentangle
this complexity.”
The single-cell analysis toolkit
The fundamental shift in sequencing technology
was kick-started in 2009, when a pioneering study
performed the first single-cell genome-wide mRNA
sequencing on a mouse blastomere. This was
largely enabled by the emergence of next-generation
sequencing. The field has rapidly developed ever since,
and today, single-cell RNA sequencing (scRNAseq) is a
go-to tool for many researchers.
In a landmark study published in Nature in 2018, Vento-
Tormo and her team used scRNAseq to investigate
the early stage of pregnancy, where placental cells
detach and migrate into the maternal uterus, forming
branch-like structures that attach to the uterus.
“These placental cells remodel the maternal arteries
to ensure adequate nutrient delivery to the embryo,”
explained Vento-Tormo. “For decades, we lacked a
human-specific, cellular-resolution view of the maternal
uterine–fetal placental interface to understand what
‘normal’ implantation and placentation looks like.
Our 2018 single-cell atlas of the decidua and placenta
provided that baseline and a window into how maternal
and fetal cells interact.”
These high-resolution maps of gene expression are now
becoming a blueprint for the multiomics era. Where
scRNAseq allowed researchers to define a cells identity
and state, essentially creating a “parts-list” of a tissue,
multiomics opens the possibility to ask the question
Figure 1: Single-cell sequencing can be used to measure the genome (scDNA-seq), the DNA-methylome or the
transcriptome (scRNA-seq) of each cell from a population of cells.
Credit: Technology Networks
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INNOVATIONS IN CELL SCIENCE 27
“why is the cell in that particular state?” and “how is
the cell being regulated?”. By simultaneously profiling
the genome, epigenome or proteome alongside the
transcriptome, researchers can examine different cell
states in parallel, capturing a much more dynamic
and comprehensive picture of cell behavior (Figure 1).
For example, examining epigenetic regulation of cells
alongside gene expression can help explain why certain
genes are turned on or off by examining epigenetic
factors like chromatin and DNA methylation.
Spatial transcriptomics is also changing the landscape
of single-cell technologies. Single-cell methods require
cells to be dissociated first, losing information about
where they are in relation to other cells. Huge advances
in this field mean that it is now possible to keep this
positional information by attaching unique spatial
barcodes to the RNA, allowing researchers to map
where different genes are being expressed within the
tissue after sequencing.
In a recent paper published in Nature, Vento-Tormo
and her team built on their previous research and used
multiomics to define the full developmental trajectory of
the placental cells migrating to and interacting with the
uterus. They also used spatial transcriptomics to provide
spatial context, mapping gene expression to its specific
location in the tissue. “To understand what goes wrong in
disease, we first need a clear reference for what ‘healthy’
looks like,” explained Vento-Tormo. “In our 2023
study, we were able to describe the microenvironments
affecting cellular behavior across the full maternal-fetal
interface, including the layer of smooth muscle under the
endometrium, and how the immune cells have a key role
in modulating placental invasion.”
Creating a human cell atlas
Vento-Tormo is also a key contributor to the Human Cell
Atlas (HCA) – a global consortium of scientists with a
mission to map every cell type in the human body. The
rapid rise of single-cell and multiomics technologies has
paved the way for this ambitious project. The HCA was
co-founded in 2016 by Sarah Teichmann, professor of
stem cell medicine at the University of Cambridge and
former head of cellular genetics at the Sanger Institute.
“This ‘reference map’ allows us to better understand
how healthy cells function and communicate, and how
they work synergistically to form tissues and organs,”
explained Teichmann. “As we add disease datasets into
the atlas, we begin to better understand pathology and
support development of new diagnostics and treatments.”
Formed of over 3,600 scientists globally, the HCA
community has already made significant and impactful
discoveries. Teichman’s research team recently
published a paper in Nature, in collaboration with others
from the HCA Heart BioNetwork, that sought to map
the cells of the cardiac conduction system. The team
“Working at the
crossroads of
genomics, computation
and human biology
allows us to explore
these processes in
unprecedented detail,
and to translate
those insights
into meaningful
improvements
in maternal and
reproductive health.”
– Dr. Roser Vento-Tormo.
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INNOVATIONS IN CELL SCIENCE 28
made the unexpected finding that human pacemaker
cells (which set the pace of our heartbeats) express a
particular receptor that is the target of a gut hormone,
and its synthetic analogues, which are found in diabetes
drugs. As Teichmann explained, this supports a direct
mechanism for increased heart rate when taking these
medications, which was observed clinically but not
explained at a molecular mechanistic level before.
This work shows how the HCA has already been
instrumental in describing how different organs talk to
each other, and how it can help to interpret the effects
of drugs. The HCA is currently integrating this vast
collection of data towards a first draft atlas of cells in
the human body.
Big data
As the cell atlas moves into three dimensions by
incorporating multiple layers of data from the different
omics modalities, the role of computational tools
can’t be underestimated. The shift from single-cell to
multiomics technologies has created a data deluge—vast
datasets that span a huge number of cells, with billions
of potential data points. Advanced computational
tools that can extract biologically meaningful data
from this are essential. Machine learning (ML)
tools can integrate high-dimensional data, learning
the complex relationships between the different
modalities. ML is also the primary tool for pattern
recognition, like identifying cellular “neighborhoods”
or microenvironments within a tissue or detecting
anomalies in the data.
The role of computational biologists and
bioinformaticians in the biology lab has never been
more critical. To delve deeper into the developmental
journey of placental cells, Vento-Tormo and her team
developed a computational method to reconstruct the
differentiation of these cells by combining the cells’
gene expression similarity and proximity in space. Marie
Moullet is a PhD student working in Vento-Tormo’s
group, and focuses on developing deep learning models
for single-cell omics data. “This method allowed us to
investigate branches and decision points during the
differentiation process of the placenta cells,” Moullet
said. “In general, machine learning helps us to learn
structure from high-dimensional data and to standardize
analyses across cohort, platform and laboratories.”
“Computation is at the heart of everything we do, from
preprocessing and integration of multi-modal data
to inference of cell-cell communication and spatial
patterning,” explained Vento-Tormo.
Machine learning tools are also being increasingly
developed for predictive analysis and are already
used to help reconstruct dynamic processes, such
as developmental pathways, or predict cell-cell
interactions. As the field continues to develop, ML
tools will shift towards a more predictive and simulative
role, with deep learning models predicting clinical
outcomes, such as drug efficacy and optimal dosage.
This could have a significant clinical impact, shifting
from reactive treatments (based on symptoms having
already appeared) to a more predictive and preventive
healthcare model, as ML models utilize cell data to
forecast the risk of disease. “We are in an exciting time
in this domain due to the opportunities from deep
learning, generative AI and AI agents,” said Teichmann.
Looking ahead to the future of
single-cell technologies
Looking towards the next decade, both Teichmann and
Vento-Tormo predict that technologies will become
cheaper, higher-throughput and more readily available.
“I expect multiomics at cellular resolution on clinically
sized cohorts will become routine,” said Vento-Tormo.
Teichmann adds that access to large clinical sample
sets will further accelerate understanding of disease
pathways and treatment responses. Advances in
computational approaches will also increasingly be
used to optimize experimental designs, potentially
refining in vitro model systems and making them more
physiologically accurate.
As more computational tools and artificial intelligence/
ML models become increasingly available, one of the
challenges researchers will face is navigating this new,
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CANCER RESEARCH 29
vast landscape of advanced technology. The challenge
of choosing the “right” tool to analyze the data will shift
the bottleneck of discovery from data generation to data
interpretation. Some groups are already performing
large-scale benchmarking studies to help create more
standardization in the field.
Clinically, the application of single-cell multiomics is
still in its early stages, but discoveries from the HCA
community have already provided new insights into
cancer, COVID-19, lung diseases such as cystic fibrosis,
bowel disease and heart disease, among others. As
cellular maps move into three dimensions, scientists can
start addressing questions that have so far remained a
mystery—like unravelling the biological mysteries of
early pregnancy to shed light on common and devastating
complications like pre-eclampsia and miscarriage.
“Deeper understanding of complex disease biology
can translate into real improvements for patients”
said Vento-Tormo. “Working at the crossroads of
genomics, computation and human biology allows us to
explore these processes in unprecedented detail, and to
translate those insights into meaningful improvements
in maternal and reproductive health.”
Undoubtedly, single-cell technologies are not just a new
technique, but an entire shift in how we can ask and
answer questions about human biology.
MEET THE INTERVIEWEES:
Dr. Roser Vento-Tormo is a group leader at the Sanger Wellcome
Institute. Her research investigates the female reproductive system
and women’s health, with particular focus on the maternal-fetal
interface during pregnancy. Vento-Tormo has a background in
immunology and completed her postdoctoral work with Professor
Sarah Teichmann.
Marie Moullet is completing her PhD in Dr Roser Vento-Tormo’s group,
and her research looks at machine learning methods to characterize
in vivo and in vitro cell states in women’s health and disease.
Dr. Sarah Teichmann, is a professor of stem cell medicine at the
University of Cambridge, the co-founder of the Human Cell Atlas
and the former head of cellular genetics at the Sanger Institute.
Her research utilizes genomics and artificial intelligence methods
to investigate gene regulation and protein interactions in the
immune system.
30 INNOVATIONS IN CELL SCIENCE
The Future Is Bright:
Advances and Developments
in Flow Cytometry
Kate Harrison, PhD
For almost six decades, flow cytometry (FC) has been
a cornerstone of clinical and laboratory research, with
applications in a wide range of fields, including immunephenotyping,
diagnostics, cell counting, and cell cycle
analysis. FC is a powerful tool for multi-parametric cell
characterization, even in complex, mixed samples, due
to its ability to assess cell properties by light scatter
and fluorescence. Cells suspended in a saline solution
flow past laser light sources in a single-file manner,
known as hydrodynamic focusing. When the laser hits
the cells, any visible light scattered forwards (forward
scatter—FSC) gives information about the cell diameter,
while light scattered sideways (side scatter—SSC)
provides information about the granularity of the cell.
Further phenotypical characterization of the cell can
be achieved with fluorescent dyes or fluorophoreconjugated
antibodies. Flow cytometers can also be
used for cell sorting, i.e., the physical separation of
cells into distinct populations, known as fluorescenceactivated
cell sorting (FACS).
For many years, FC advances were defined by
increasing the number of parameters that could be
simultaneously measured, though the fundamental
processes of fluorescence-based, polychromatic
FC remained largely unchanged. While early
flow cytometers could only analyze one or two
parameters, modern fluorescence-based instruments
can simultaneously measure up to 30 parameters.
However, this meant that FC reached a technological
ceiling—since each color channel requires its own
detector, the number of detectors in a single machine
Credit: iStock/anamejia18
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INNOVATIONS IN CELL SCIENCE 31
became the limiting factor. Other challenges in
traditional FC techniques include relatively high limits of
detection, subjective interpretation of results, unstable
fluorophores, and the need for large numbers of controls.
A range of recent developments are tackling these
challenges and helping to advance the field of FC
significantly, including spectral FC, nanoparticle
cytometry, and droplet cytometry. These advances
are improving the accuracy and efficiency of FC and
opening up new research and clinical applications.
Looking at the full spectral picture:
Spectral flow cytometry
In traditional, polychromatic FC, fluorescent light
signals are produced when fluorophore-labelled probes
are excited by lasers of a corresponding wavelength
range. The peak emission spectrum from each
fluorophore is isolated by a series of dichroic mirrors
and bandpass filters and captured by a single detector.
As a consequence, the number of detectors available
becomes the limiting factor. In addition, as the number of
parameters increases, the more individual fluorophores
must be used and the closer their emission peaks become,
making experiments extremely complex. Spectral
cytometry is a rapidly growing technology that captures
the full emission spectra of each fluorophore using an
array of detectors, overcoming these limitations.
“It became apparent that there was a physical
limitation of about 28–30 colors for polychromatic
FC,” says J. Paul Robinson, distinguished professor of
cytometry at Purdue University. “However, this is not
the case with spectral cytometry. We don’t talk about
instruments being restricted by colors, because we don’t
yet know the upper limits of how many different colors a
spectral cytometer can collect.” Robinson was involved
in the development of spectral cytometry technology in
the early 2000s, and his lab filed a patent on it in 2004.
This patent was then the basis of the first commercially
available spectral flow cytometer.
Spectral cytometry captures the emission spectra
for each fluorophore across multiple detectors,
allowing it to differentiate between fluorochromes
with overlapping emission peaks. In order to quantify
the signal of each fluorophore, the spectra must be
separated, using a spectral unmixing algorithm that fits
and identifies individual fluorophores by comparison
with single-stained controls. One of the benefits of
spectral cytometry is that it is less reliant on subjective,
manual compensation. “Compensation is a very
personal thing, dependent on experience. The math of
spectral unmixing is essentially the same as the math of
compensation,” explains Robinson. “It’s just performed
in an automated manner, which gives it much better
consistency and greater accuracy.”
The applications of spectral cytometry have already
shown enormous potential. Spectral FC is able to
calculate cellular autofluorescence and treat it as
another channel. Thus, noise in complex samples is
reduced, and identification of rare cell subsets in highly
autofluorescent samples such as blood is improved.
Its role in advancing cancer research has also become
apparent, having been used to study subtle changes in
immune signatures and characterize complex tumor
infiltrates in response to novel treatments.
Robinson believes that spectral cytometry has even
more to offer. “Spectral FC has already achieved
around 50 colors in one experiment, and I suspect it
will achieve 100 eventually”, he says. “As the numbers
of potential parameters increases, we could be able to
look at enough biomarkers to predict when a patient’s
physiological environment has changed, even before
symptoms appear.”
Life in nanoscale: Nanoparticle
flow cytometry
FC is instrumental in characterizing cells and continues
to enable significant advances across clinical and life
sciences. However, the sensitivity limitations of most
conventional flow cytometers and assays mean that
observations are limited to biomarkers present either
intracellularly, or on the surface of cells. Secreted,
extracellular biomarkers such as proteins, metabolites,
and molecules contained in extracellular vesicles (EVs)
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INNOVATIONS IN CELL SCIENCE 32
generally fall below the lower limits of light scatter
detection of conventional flow cytometers, with far
dimmer signals.
EVs are nano-sized, cargo-carrying vesicles secreted
from cells into the extracellular environment. They are
becoming increasingly recognized as both important
biomarkers in a range of physiological functions and
processes such as aging and the immune response,
and for their potential clinical applications. Traditional
methods of EV analysis such as polymerase chain
reaction (PCR) or mass spectrometry can measure the
total amount of EV components in a sample, but cannot
give a comprehensive picture of the distribution of those
components. “These methods are limited in their ability
to identify informative biomarkers or bioactive cargo,
two key translational goals of EV research,” explains
Prof. John Nolan, of the Scintillon Research Institute.
Nolan’s lab develops new tools for analysis of EVs, their
formation and their interactions with cells—including
custom-built nanoparticle flow cytometers along with
optimized and validated assays.
“A new generation of more sensitive [FC] instruments
and optimized assays with improved specificity and
reproducibility make it possible to measure even the
smallest EVs and their cargo, down to < 40 nm and 10
or fewer molecules,”
he says. However, there are still challenges; even for
more sensitive machines, detection efficiencies can
vary and create inconsistencies in reporting. To combat
this, Nolan is part of a working group developing
a framework for standardizing EV FC experiment
reporting, known as MIFlowCyt-EV. “By designing and
optimizing assays that include the proper positive and
negative controls, calibrating instruments and reporting
results in absolute units of number and brightness,
we can address these challenges, enabling results to
be compared across instruments and between labs,”
explains Nolan. “Standardization is essential for the
effective translation of findings from basic research labs
into new clinical biomarkers and therapeutics.”
Teaching an old cytometer new
tricks: Double droplet cytometry
Although advances in FC technology continue to expand
the field, the importance of standard flow cytometers
and FACS machines for research advances shouldn’t
be overlooked. Droplet microfluidics allows the highthroughput
analysis of millions of individual cells or
proteins, in volumes as small as 10-15 liters. While these
droplets and their cargo can be phenotypically sorted,
traditional single-layer water-in-oil droplets require
custom, technically demanding microfluidics devices,
which tend to be slower than standard FACS machines,
with limited color channels. Dr. Polly Fordyce, associate
professor of bioengineering and genetics at Stanford
University, has been developing double emulsion droplet
technology. The contents of double emulsion droplets
can be phenotyped and sorted using a standard flow
cytometer, allowing far higher throughput and multiparametric
analysis.
“A double emulsion droplet is an aqueous droplet, inside
an oil droplet that is surrounded again by an aqueous
buffer, similar to a cell membrane,” explains Fordyce.
“To a FACS machine, these droplets just look like
large cells, so they can be analyzed using a normal flow
cytometer.” However, there are still challenges. “We’ve
spent a lot of time figuring out how to stabilize the oil–
water interfaces, how to keep the droplets in suspension
and how to calibrate the FACS machine,” says Fordyce.
The Fordyce lab has been using machine learning to
characterize the effect of different variables on droplets,
to create a model that can predict the droplets produced
by given flow rates and surfactants, and then design
devices to create droplets with specific parameters.
“These are all the small things that will push the science
forward and make the technology more accessible,”
she says.
The double emulsion droplets provide a level of
protection from the shear forces of the FC fluidics,
allowing examination of more temporal or spatial
phenotypes. “The droplet creates a shell around a cell,
which enables you to examine secreted proteins that
would usually diffuse away. You can encapsulate cell
pairs to examine cell–cell interactions or encapsulate
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INNOVATIONS IN CELL SCIENCE 33
enzymes with their substrates to examine enzymatic
activity,” explains Fordyce. For Fordyce’s lab, the
aim is to use double droplet technology and FC to
understand how the sequence of a protein encodes
its functions. “Our main goal,” she says, “is pioneering
new ways to make thousands to millions of protein
variants, and then quantify what they do. For example,
understanding how the sequences of enzymes encode
the catalytic efficiency, their specificity and the different
parts of their enzymatic cycle.” By encapsulating these
protein variants in double emulsion droplets and using
fluorescent tags, FC and FACS can then be used as a
high-throughput methods to sort and identify the active,
functional variants.
Is the future fluorescent?
Even considering all the recent developments in
the field, the advancement of FC shows no signs of
slowing down. Robinson believes the next steps for
FC may be quantum. “Technology advances to a true
generation of quantum cytometers is likely to emerge
within 2–3 years”. Quantum measurement could allow
the detection of single fluorophores, in turn enabling
the identification of extremely rare biomarkers. This,
combined with single photon detectors, could see the
transition of FC from a somewhat subjective, qualitative
technology to a fully quantitative technology.
Nolan, too, believes the measurement of single
molecules to be a powerful tool for the future of
research. “New needs and applications tend to drive the
development of new techniques, rather than the other
way around.” He says “In EV research, the capabilities
of FC will help researchers test hypotheses about how
these systems work, and help us to understand, predict,
and control cells to improve health.”
However, as rapidly as FC advances, we cannot forget
about the basic principles that brought us to this point.
Novel technologies cannot flourish without labs and
institutions investing in the foundations of high-quality
FC, and the highly-skilled operators that perform it.
“Shared, core facilities with trained operators have
been key in turning FC into the powerful tool that
it is today,” says Fordyce, “and I hope to see more
institutions understanding the value of these central
facilities in the future.”
MEET THE INTERVIEWEES:
Dr. Polly Fordyce is an Associate Professor of Bioengineering
and Genetics and Institute Scholar of ChEM-H at Stanford,
where her lab develops and applies new microfluidic platforms
for quantitative and high-throughput biophysics, biochemistry
and single-cell biology. She graduated from the University of
Colorado at Boulder with undergraduate degrees in physics and
biology before moving to Stanford University, where she earned
a PhD in physics for work with Professor Steve Block developing
instrumentation and assays for single-molecule studies of kinesin
motor proteins.
Prof. John Nolan received BS degrees in biology and chemistry
from the University of Illinois and a PhD in biochemistry from Penn
State University. He did post-doctoral research at Los Alamos
National Laboratory and was the director of the National Flow
Cytometry Resource there. He is an elected Fellow of the American
Institute for Medical and Biological Engineering, past-president
of the International Society for Advancement of Cytometry and
founder of Cellarcus Biosciences, which provides products and
services for extracellular vesicle research.
Dr. J. Paul Robinson received his early education at the University
of NSW, Sydney, Australia where he received BSc (Hons), MSc
and PhD degrees. He was a postdoctoral fellow in the University
of Michigan Medical School. Dr. Robinson is currently the
Distinguished Professor of Cytometry and professor of biomedical
engineering in the Weldon School of Biomedical Engineering.
34
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INNOVATIONS IN CELL SCIENCE
CONTRIBUTORS
Alexandra Boussommier-
Calleja, PhD
Alexandra Boussommier-Calleja is an entrepreneur
trained in biomedical engineering with extensive
experience in biomechanical research and skilled in 2D
and 3D cell culture, microfluidic models, in vitro and in
vivo assay development. After spending years learning
to manipulate tissues and cells to mimic life in the lab,
she became fascinated with the ability to manipulate
cells to make life happen directly in the lab with in vitro
fertilization (IVF).
Cliff Dominy, PhD
Cliff Dominy is a freelance science writer and medical
journalist based in rural Ontario, Canada. He earned
his PhD in Molecular and Cell Biology and completed
postdoctoral fellowships at the University of Guelph and
McMaster University in Canada. His writing covers all of
the biomedical sciences, with a particular interest in how
digital technologies are enhancing our understanding of
chronic disease.
Debomita Chakraborty, PhD
Dr. Debomita Chakraborty works as researcher in the
field of translational medicine and novel therapies in
immuno-oncology, inflammatory, and fibrotic diseases
in different University hospitals in Germany. Her work
focuses on identifying aberrant regulatory mechanisms,
cell‑signalling pathways, and molecular targets in
disease, enabling her to develop and use patient‑derived
samples, animal models, and advanced culture systems
such as tumoroids and organoids.
Héctor Zamora Carreras, PhD
Héctor earned undergraduate degrees in biochemistry
and chemistry before completing a PhD in biochemistry
at the Blas Cabrera Institute for Physical Chemistry (IQF,
Madrid). After research appointments at the Karlsruhe
Institute of Technology, the Complutense University of
Madrid, and the Center for Biological Research (CIB,
Madrid), where he worked on optical tweezers, cell
mechanics, and nanoelectromechanical devices for
intracellular measurements, he is currently a lecturer at
the Valencia International University (VIU).
Kaja Ritzau-Reid, PhD
Kaja attained a BSc in genetics (2014), MRes in
neurotechnology (2017) and a PhD in bioengineering
(2022) at Imperial College London. During her PhD she
worked on bioengineering organoids and spent part of
her time working in an organoid group in Vienna, Austria.
Here, she developed a microfibrous scaffold platform
to guide brain organoid growth, which was patented
for commercialization. She is currently working as a
freelance science writer.
Kate Harrison, PhD
Kate has a BSc in Microbiology from the University of
Manchester and a PhD in virology from the University
of Edinburgh. Following this, she completed a post-doc
at the Jenner Institute, University of Oxford, developing
vaccines for neglected tropical diseases including dengue
and zika viruses. Realising that her passion lay in science
communication and public engagement rather than in the
lab, Kate made the leap into science writing in 2022.
Laura Elizabeth Lansdowne
As managing editor, Laura works with the editorial
director to create, inform and maintain the overall
editorial strategy for Technology Networks. After obtaining
a first-class honors degree in biology, Laura worked
as a quality assurance technologist before joining the
Wellcome Sanger Institute and undertaking an additional
qualification in clinical chemistry. In 2015, she left to
pursue pharmaceutical and editorial-based roles, before
joining Technology Networks in 2017.
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