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bioRxiv · 10.1101/2021.04.29.441924

The JAK2-STAT3 pathway controls a beneficial proteostasis response of reactive astrocytes in Huntington disease

Abstract

Huntingtons disease is a fatal neurodegenerative disease characterized by striatal neurodegeneration, aggregation of mutant Huntingtin and the presence of reactive astrocytes. Astrocytes are important partners for neurons and engage in a specific reactive response in Huntingtons disease that involves morphological, molecular and functional changes. How reactive astrocytes contribute to Huntingtons disease is still an open question, especially because their reactive state is poorly reproduced in experimental mouse models. Here, we show that the JAK2-STAT3 pathway, a central cascade controlling astrocyte reactive response, is activated in the putamen of Huntingtons disease patients. Selective activation of this cascade in astrocytes through viral gene transfer reduces the number and size of mutant Huntingtin aggregates in neurons and improves neuronal defects in two complementary mouse models of Huntingtons disease. It also reduces striatal atrophy and increases glutamate levels, two central clinical outcomes measured by non-invasive magnetic resonance imaging. Moreover, astrocyte-specific transcriptomic analysis shows that activation of the JAK2-STAT3 pathway in astrocytes coordinates a transcriptional program that increases their intrinsic proteolytic capacity, through the lysosomal and ubiquitin-proteasome degradation systems. This pathway also enhances their production and exosomal release of the co-chaperone DNAJB1, which contributes to mutant Huntingtin clearance in neurons. Together, our results show that the JAK2-STAT3 pathway controls a beneficial proteostasis response in reactive astrocytes in Huntingtons disease, which involves bi-directional signalling with neurons to reduce mutant Huntingtin aggregation, eventually improving disease outcomes.

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BibTeXRIS

Abjean, L., Ben Haim, L., Riquelme-Perez, M., Gipchtein, P., Derbois, C., Palomares, M.-A., Petit, F., Herard, A.-S., Gaillard, M.-C., Guillermier, M., Gaudin, M., Sagar, N., Dufour, N., Robil, N., Kabani, M., Melki, R., De la grange, P., Bemelmans, A., Bonvento, G., Deleuze, J.-F., Hantraye, P., Bonnet, E., Brohard, S., Olaso, R., Brouillet, E., Carrillo-de Sauvage, M., Escartin, C.. 2021-04-29. The JAK2-STAT3 pathway controls a beneficial proteostasis response of reactive astrocytes in Huntington disease. https://doi.org/10.1101/2021.04.29.441924

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