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Reactive Astrocytes Drive Extracellular Acidification to Mediate α-Synuclein Neurodegeneration

Song, J.-J.; Park, H.; Choi, Y.; Ryu, T.; Shin, J.; Kim, S.-H.; Park, A.; Wang, J.; Biswas, D.; Chou, S.-C.; Ha, S.; Jang, Y.; Shin, Y.; Chen, G.; Hong, I.; Wemmie, J.; Svenningsson, P.; Troncoso, J.; Xu, J.; Na, C. H.; Dawson, V. L.; Dawson, T.; Kam, T.-I.

2026-01-07 neuroscience
10.64898/2026.01.06.697893 bioRxiv
Show abstract

Astrocytes are increasingly recognized as key players in neurodegeneration1-3, yet the molecular mechanisms by which they drive disease remain elusive. Here, we uncover a fundamental pathway in which reactive astrocytes fuel neurodegeneration in -synucleinopathies--including Dementia with Lewy bodies and Parkinsons disease dementia--by acidifying the brains extracellular environment. We demonstrate that both human patient tissue and a gut-to-brain -synuclein mouse model exhibit accumulation of reactive astrocytes and extracellular acidosis. Mechanistically, we show that astrocytic lysosomal exocytosis releases acidic contents, driving a drop in pH that activates neuronal acid-sensing ion channel 1a (ASIC1a), resulting in neuronal loss and behavioral decline. Blocking this pathway--either by inhibiting astrocytic lysosomal exocytosis or genetically or pharmacologically targeting neuronal ASIC1a--mitigates pathology and rescues neurodegenerative phenotypes in vivo. These findings provide a conceptual advance by establishing a mechanistic link between glial inflammation, acid-base homeostasis, and neuronal vulnerability, and suggest that targeting astrocyte-driven acidification or ASIC1a signaling could offer new avenues for disease modification in -synucleinopathies.

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