In vivo profiling of astrocyte secretome reveals brain-region specific regulatory networks in a mouse model of amyloid pathology
- Mol Neurodegener. 2026 May 23. doi: 10.1186/s13024-026-00956-y.
- 1. Department of Neurology and Centre for Clinical Neuroscience, Daping Hospital, Army Medical University (Third Military Medical University), Chongqing, 400042, China.
- 2. Chongqing Key Laboratory of Ageing and Brain Diseases, Chongqing, 400042, China.
- 3. Shigatse Branch, Xinqiao Hospital, Army Medical University (Third Military Medical University), Tibet, 857012, China.
- 4. Department of Cognitive Impairment Research, Chongqing Institute for Brain and Intelligence, Guangyang Bay Laboratory, Chongqing, 401336, China.
- 5. Department of Neurology and Centre for Clinical Neuroscience, Daping Hospital, Army Medical University (Third Military Medical University), Chongqing, 400042, China. [email protected].
- 6. Chongqing Key Laboratory of Ageing and Brain Diseases, Chongqing, 400042, China. [email protected].
- 7. Department of Cognitive Impairment Research, Chongqing Institute for Brain and Intelligence, Guangyang Bay Laboratory, Chongqing, 401336, China. [email protected].
- 8. Department of Neurology and Centre for Clinical Neuroscience, Daping Hospital, Army Medical University (Third Military Medical University), Chongqing, 400042, China. [email protected].
- 9. Chongqing Key Laboratory of Ageing and Brain Diseases, Chongqing, 400042, China. [email protected].
- # Contributed equally.
Coordinated cell-to-cell communications is crucial for the proper functioning and maintenance of brain activities, and its disruption contributes to neurological disorders, including Alzheimer's disease (AD). Altered astrocyte-neuron communications have been implicated in AD progression, yet the underlying regulatory networks remain poorly understood. Given that secretory proteins mediate both local and long-range intercellular signaling, we constructed a spatiotemporal profile of the astrocyte-derived secretome using in vivo TurboID proximity labeling in mice of amyloid pathology. Early alterations in the entorhinal cortex secretome were identified and enriched in metabolic pathways, whereas changes in the hippocampus were observed later, correlating with neuronal and synaptic maintenance. These findings suggest that early remodeling of the astrocyte secretome in the entorhinal cortex may be involved in AD pathogenesis, while later changes in the hippocampus contribute to neurodegeneration and cognitive decline. This work provides a systematic map of the dynamic, region-specific remodeling of the astrocyte secretome in AD, identifying novel spatiotemporal vulnerabilities and potential therapeutic targets.
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target: Lactate DehydrogenaseResearch Areas: Cancer
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