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HSF1 controls transcriptional programs that establish thalamostriatal shaft synaptic architecture and preserve cognitive flexibility

Rozema, N. B.; Zarate, N.; Mansky, R. H.; Gu, P.; Gerlach, K.; Bhowmik, A.; Cho, J. H.; Zhang, Y.; Hamid, A. A.; Graves, S. M.; Gomez-Pastor, R.

2026-08-07 neuroscience
10.64898/2026.08.03.742053 bioRxiv
Show abstract

Cognitive flexibility (CF) declines during aging and is further impaired in neurodegenerative diseases such as Huntingtons disease (HD), yet the molecular mechanisms underlying these deficits remain poorly understood. Thalamostriatal (T-S) synapses are critical for CF, and we previously identified Heat Shock Factor 1 (HSF1) as a regulator of T-S density in HD. However, how HSF1 regulates T-S synapses and whether it modulates cognitive flexibility (CF) remained unclear. Here, we combined HSF1 ChIP-seq, transcriptomics, synapto-proteomics, targeted genetic manipulations and behavioral analyses to study how HSF1 regulates T-S synapses and CF. We found HSF1 directly controls a transcriptional program governing postsynaptic architecture and actin cytoskeletal dynamics, which are disrupted in aging and HD. Loss of HSF1 drives selective destabilization of actin patches at T-S shaft synapses and impaired CF decline. Our results underscore a novel function for HSF1 in the regulation of striatal neural circuits with essential implications in the neurobiology of cognitive flexibility.

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