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Tau-induced ribosomal collisions impair memory through the activation of the integrated stress response

Evans, H. T.; Kalavai, S. V.; Wu, V.; Polavarapu, A.; Balamoti, E.; Liu, W. J.; Mosto, O.; Adler, D.; Jain, V.; Denil, E.; Yu, A.; Assenso, E.; Oliveria, M. M.; Moniz, T.; Golhan, E. N.; Zhang, X.; Sheehan, C. J.; Klann, E.

2026-01-13 neuroscience
10.64898/2026.01.12.699151 bioRxiv
Show abstract

The formation of new long-term memories is reliant upon the spatial and temporal regulation of mRNA translation. Translational control has been demonstrated to be disrupted in neurodegenerative diseases, which exhibit impairments in both homeostatic translation and memory formation, such as Alzheimers disease (AD) and frontotemporal dementia (FTD). However, the precise mechanisms by which this dysregulation occurs, as well as the pathogenic consequences of this dysregulation have yet to be described. Here we establish that FTD-associated tau mutations impair protein synthesis prior to the onset of memory impairments by slowing ribosomal elongation speed, causing ribosomes to collide upon mRNAs. We reveal that this tau-induced ribosomal collision ultimately impairs memory-associated translation through activation of the integrated stress response (ISR) via GCN2. Pharmacological prevention of this ISR activation not only rescues memory formation in the PS19 mouse model of FTD, but also attenuates neuronal death, decreases tau phosphorylation and accumulation, and improves survival. Collectively, our data elucidates a novel mechanism by which mRNA translation is impaired early in neurodegeneration, identifies several pathological phenotypes which are traceable to impairments in mRNA translation, and highlights the therapeutic potential of rescuing these translational impairments.

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