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Updated: Jan 7, 2026

Drug Repurposing Hypothesis Generation Using the "RE:fine Drugs" System
Published on: December 11, 2016
Drug Development
1Merck & Co., Boston, MA, USA.
Background:
Trem2 gain-of-function therapeutic approaches are actively being pursued as immune-stimulatory, disease-modifying strategies in the clinic.
Method:
We developed robust pharmacological tools to selectively stimulate and dissect pathway signaling and determined the extracellular activation profile with the goal of identifying genetically-implicated cytokine signatures in multiple cell systems. Through a rigorous genetic and pharmacological validation strategy, we identified a conserved fingerprint of chemokine secretion. Translatability of chemokine biomarkers in preclinical models of neurodegeneration was interrogated by profiling cytokine signatures in brain tissue from mice with amyloid pathology, tauopathy, or chemically-induced CNS demyelination using an innovative multiplexing immunoassay that enables simultaneous measurement of up to 70 targets in a single analysis.
Result:
We showed that a robust upregulation of a Trem2-dependent chemokine biomarker signature was consistent across different mouse models establishing strong in vitro and in vivo agreement. For preclinical pharmacological validation of the defined chemokine signature as PKPD endpoints, a highly potent Trem2 mouse surrogate Trem2 antibody was acutely dosed; a robust, dose-dependent brain chemokine response in Trem2-expressing WT mice as well as plaque-burden mice was found, while this response was abolished in Trem2-deficient mice, thus providing further evidence for target-specific induction of selected chemokine biomarkers triggered by Trem2 signaling in activated microglia.
Conclusion:
The current data therefore describe novel biomarker and functional insights into a key microglial pathway implicated in human disease and furthermore lay the framework for a translational biomarker strategy to support progression of Trem2 therapies for clinical development.
Insights
Researchers identified a Trem2-dependent chemokine biomarker signature in preclinical models, validating its potential for Trem2 therapies. This signature shows promise for monitoring treatment response in neurodegenerative diseases.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Trem2 (Triggering Receptor Expressed on Myeloid cells 2) gain-of-function therapies are being developed to modulate immune responses for treating diseases.
- Identifying reliable biomarkers is crucial for advancing these immune-stimulatory, disease-modifying strategies.
Purpose of the Study:
- To develop pharmacological tools to stimulate and dissect Trem2 pathway signaling.
- To identify and validate a conserved chemokine signature as a biomarker for Trem2 activity.
- To assess the translatability of these biomarkers in preclinical models of neurodegeneration.
Main Methods:
- Developed pharmacological tools for selective Trem2 pathway stimulation and signaling analysis.
- Identified a conserved chemokine secretion profile across multiple cell systems.
- Validated chemokine biomarkers in mouse models of amyloid pathology, tauopathy, and demyelination using multiplex immunoassays.
Main Results:
- A robust Trem2-dependent chemokine biomarker signature was consistently upregulated across different mouse models.
- Pharmacological validation using a Trem2 antibody demonstrated a dose-dependent brain chemokine response in wild-type and plaque-burden mice.
- This response was absent in Trem2-deficient mice, confirming target-specific induction by Trem2 signaling in microglia.
Conclusions:
- The study identified novel biomarkers and functional insights into the microglial Trem2 pathway.
- These findings provide a framework for a translational biomarker strategy to support the clinical development of Trem2 therapies.
- Validated chemokine biomarkers can serve as pharmacodynamic endpoints for Trem2-targeting drugs.
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