Neurological disorders affect billions worldwide, yet established protein biomarkers capture only a fraction of the underlying pathology driving these complex diseases.
Researchers need approaches that move beyond targeted biomarker panels focused on established CNS markers to uncover the full scope of disease biology across multiple pathways and stages.
This infographic explores a scalable system-level proteomics approach that reveals novel biomarker candidates and deepens our understanding of the biology driving neurological diseases.
Download this infographic to discover:
- How system-level proteomics uncovers biology beyond established markers
- A robust, scalable proteomic platform enabling a high-specific, multi-pathway approach
- How this approach is helping to advance neurological disease research, including Alzheimer's, Parkinson's, and multiple sclerosis and more
For research use only. Not for use in diagnostic procedures.
Beyond Established Markers:
Mapping Complex
Neurobiology at Scale
Neurological disorders affect over 3.4 billion
people worldwide, representing the leading
cause of global disease burden.1 These
diseases are driven by complex, interconnected
pathways; yet established protein biomarkers
capture just a fraction of the underlying
pathology, leaving critical drivers of disease
across interconnected pathways undetected.
This infographic explores
a comprehensive, robust
proteomics platform that moves
beyond established markers
toward a scalable, high-specificity,
multi-pathway approach that
helps uncover what truly
drives disease and accelerate
translational progress.
Targeted biomarker panels
How does PEA technology work?
System-level proteomics
Why current approaches fall short and the
rise of system-level proteomics
The right proteomics platform for a
systems-level approach
Uncover the biology behind neurological disease
with extensive biomarker coverage
The Olink Explore HT and Olink Reveal panels enable broad, high-performance proteomic
profiling through a comprehensive library of assays designed for disentangling complex
disease biology.
To move forward, neurology research must overcome the limitations of current biomarker
frameworks and adopt strategies capable of capturing the full complexity of disease biology.
Based on the Proximity Extension Assay (PEA), Olink offers a system-level proteomic
platform that supports seamless progression from discovery to translational research.
When established dementia biomarkers are mapped onto the human proteome, they capture
only a small fraction of the underlying disease biology. Recent large-scale proteomics studies
are expanding this landscape, revealing hundreds of additional protein associations across
diverse biological pathways.
Powering neurology research with
Olink solutions
Large-scale, comprehensive proteomics on the Olink PEA platform is revealing biology
beyond established markers—capturing signals across pathways and disease stages that
more targeted approaches may overlook.
Turning proteomic insights into
neurological impact
Olink Explore HT and Reveal platforms offer a systems-biology, broad, pathway-level view
leading to biomarker discovery, while the Olink Target 48 panels enable researchers to refine
analysis and focus on key and emerging markers. Powerful both individually or combined,
these approaches offer comprehensive and scalable libraries without compromising data
quality and specificity.
Anchor your discoveries in what is known
Curated in collaboration with neuroscience experts, Olink Target 48
Neurodegeneration brings together established and emerging biomarkers
spanning the biological processes most relevant to neurological disease.
• Two DNA-tagged antibodies conjugates
bind to the same target protein.
• The DNA tags hybridize and extend,
creating a unique DNA barcode for
each protein.
• This barcode is read by qPCR or
next-generation sequencing.
PEA enables simultaneous measurement
of 10s to 1000s of protein biomarkers
while maintaining exceptional specificity,
sensitivity, and analytical performance from
minimal sample input.
When exploring a disease biomarker fingerprint, the results obtained
using each of these approaches can be substantially different.
Expanding the molecular fingerprint of dementia
Predefined biological scope
Built around established biomarkers and
predefined hypotheses
Fragmented view of disease complexity
May miss interacting pathways, emerging
biology, and molecular drivers
Limited biological context
Limited ability to compare discoveries
against broader biological networks and
population-scale datasets
An expanded, multi-pathway disease fingerprint
generated through large-scale proteomics,
revealing novel biomarker candidates and
underlying disease mechanisms.
Novel biological insight
Broad coverage enables exploration beyond
established biomarkers
System-level understanding
Reveals interconnected pathways driving
heterogeneity and progression
Deeper biological interpretation
Enables findings to be interpreted within
broader biological networks, molecular
pathways and large datasets
A focused view of dementia biology
centered around established biomarkers
such as amyloid, tau, NfL, and GFAP
C T C
T
T
T
G G
A C T A T A G
A
A A
Broad discovery
Hypothesis driven discovery
Analytical validation and translational research
Extensive library of
biomarkers covering all
major biological pathways.
Targeted panels including key
and emerging biomarkers for
neurodegenerative diseases
and critical immune mediators.
Custom-designed
panels to transition from
biomarker discovery to
translational research.
Olink
Explore HT
Olink
Reveal
Olink Target 48
Neurodegeneration
Olink Target 48
Cytokine
Olink
Flex
Olink
Focus
Olink Explore HT
Olink Reveal
5,400+ biomarkers, designed to mirror the human proteome
1,000+ biomarkers covering all major pathways
42 established and emerging
markers spanning multiple
disease mechanisms
Generate insights from
as little as 1 µL of
plasma or CSF
Absolute quantification
enables comparison across
scientific studies and cohorts
Olink Target 48 Neurodegeneration
Curated biological
coverage
Preserve precious
sample
Quantify with
confidence
Data-driven design, filtered for performance, curated by scientific advisors
Proteomic profiling uncovered stage-specific
microglial biology across AD progression,
revealing a shift from early innate immune
activation to broader immune involvement. An
18-protein signature distinguished preclinical
AD from dementia, providing a framework for
potential future inflammatory staging and a
deeper understanding of AD progression.
Research utilizing proteomic profiling
identified ALS specific plasma signatures,
including many previously unreported
proteins, with strong replication across
independent cohorts. Integrated protein
models accurately classified ALS and
predicted future disease onset, expanding
the molecular landscape of ALS and
supporting potential future blood-based
detection of prodromal disease.
Identify disease mechanisms across
interconnected pathways to uncover
meaningful biological insights.
Leverage a comprehensive, scalable
portfolio and integrated data ecosystem
that advances research from discovery
to translational research.
Generate reliable data across
cohorts, sample types, and
longitudinal studies.
Accelerate progress through standardized
workflows, global datasets, and
partnerships spanning academia,
healthcare, and biopharma.
Plasma proteomics revealed molecular
changes years before MS onset, uncovering
a trajectory from early myelin injury to axonal
damage and later astrocyte activation. This
research data derived multi-protein models
which identified subjects before clinical
manifestation, providing mechanistic insight
into disease development before clinical onset.
Research data generated using broad
proteomic profiling supported the identification
of PD-associated proteins and a multiprotein signature with potential future use
in distinguishing PD from both healthy
individuals and other neurological disorders.
The publication reported independent
replication across cohorts and associations
with inflammatory and metabolic pathways,
providing disease-specific biological insights.
References
1. GBD 2021 Nervous System Disorders Collaborators. Global, regional, and national burden of disorders affecting the nervous system, 1990-2021: a systematic analysis for the
Global Burden of Disease Study 2021. Lancet Neurol. 2024;23(4):344-381. doi:10.1016/S1474-4422(24)00038-3
2. Blujdea ER, van Bokhoven P, Martino-Adami PV, et al. Microglia protein profiles in CSF across Alzheimer’s disease clinical stages. Nat Aging. 2026;6(3):520-533. doi:10.1038/
s43587-026-01088-0
3. Abdelhak A, Cerono G, Sheikhzadeh F, et al. Myelin injury precedes axonal injury and symptomatic onset in multiple sclerosis. Nat Med. 2026;32(1):362-368. doi:10.1038/
s41591-025-04014-w
4. Chia R, Moaddel R, Kwan JY, et al. A plasma proteomics-based candidate biomarker panel predictive of amyotrophic lateral sclerosis. Nat Med. 2025;31(10):3440-3450.
doi:10.1038/s41591-025-03890-6
5. Adewale B, Chia R, Moaddel R, et al. Machine learning model based on plasma proteomics for the identification of Parkinson’s disease. Brain. 2026. doi:10.1093/brain/
awag140
Move beyond fragmented insights.
Reveal complex neurobiology with confidence
Key proteins relevant for neurology research include:
Established Biomarker Fingerprint Emerging Proteomic Fingerprint
Profound insights
Key proteins relevant for neurology research include:
Exploring microglial biology across
Alzheimer’s disease (AD) stages2
Uncovering early molecular
signatures of ALS4
Mapping the pre-symptomatic
trajectory of multiple sclerosis (MS)3
Capturing the molecular complexity
of Parkinson’s disease (PD)5
Reveal complex neurobiology
with superior specificity
Drive discoveries to
translational insights
Leverage global
expertise and support
Make confident decisions
with trusted proteomics
OMG/OMGP, RTN4R
Myelin integrity and
axo-glia interaction
sRAGE, ITGAM
Neuroinflammation
immune activation
P53, KLK8
Protein aggregation and
Tau/Amyloid pathology
DDAH1, SDC4
Vascular and neurovascular
pathology
>30 markers including BDNF, Neurogranin,
PSD-95
Synaptic and neuronal
health markers
>90 markers, including PLAUR, YKL-40, TREM2
Cytokines and
neuroinflammatory markers
GLRX, FOXO3
Oxidative stress and
mitochondrial health
BMP7, WWOX
Neuroprotection and
regeneration
including Tau, TDP-43, alpha-synuclein
Key neuropathology markers
>30 markers including ICAM1, VCAM1,
ADAMTS13
Endothelial and vascular
health markers
NPTXR, SYT1, CLSTN3, NLGN1
Synaptic function and dysfunction
pTau217, AB 40, AB42, GFAP, NFL
Key markers
pg
NPTX, SYT1, VILIP-1, SNAP25, GAP43
Synaptic and neuronal
health markers
IL8, FOXO3, G-CSF, FGF21, CXCLs, CCLs
Cytokines and
neuroinflammatory markers
MOG, Parkin, BACE1
Key neuropathology markers
TIMPs, MMPs, BCAN
Endothelial and vascular
health markers
“The Target 48 Neurodegeneration is a critical tool that enables the
detection and quantification of key and emerging neurodegenerative
disease biomarkers from plasma and cerebrospinal fluid samples. By
generating quantitative data, it ensures reproducible results across
and within longitudinal studies, moving a step forward towards
clinical utilization.”
—Charlotte Teunissen, Professor in neurochemistry, Department of Laboratory
Medicine, Amsterdam University Medical Center
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