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Genetic variation in EIF2AK3 alters astrocyte-dependent stress tolerance in neurons

Created on 01 Oct 2026

Authors

Ghura, S., Alvarez Periel, E., Newton, S. E. B., Akay-Espinoza, C., Jordan-Sciutto, K.

Abstract

Subtle variations in the activity and signaling of PERK, an endoplasmic reticulum kinase, can shift stress response outcomes. PERK has three commonly occurring exonic single-nucleotide variants frequently inherited together as part of the PERK haplotype B (PERK B), which occurs in 28% of the global population and is associated with several chronic neurodegenerative diseases, although its impact on PERK activity remains controversial. We hypothesized that PERK-B was associated with increased activity, altering stress response and stress tolerance, and that minorly but consistently elevated PERK activity, in combination with additional environmental or genetic risk factors, would lead to adverse outcomes. Comparison of stress response between PERK A, the major PERK haplotype, and PERK B in neuronal cultures using novel knock-in PERK-B mice alongside wild-type PERK A mice revealed differential, transient changes. Following ER stress, astrocyte-containing neuronal cultures, but not neuron-only cultures expressing PERK B exhibited similar levels of eIF2 phosphorylation, the canonical PERK substrate at PERK peak activation point (2h), but showed higher levels at 4 to 6 h, consistent with altered kinetics of PERK signaling. PERK-B neuronal cultures pretreated with a low dose PERK-specific activator exhibited increased vulnerability to N-methyl-D-aspartate-induced death compared to PERK-A neuronal cultures, indicating impaired acquired stress tolerance. Additionally, neuron-astrocyte coculture experiments revealed that the observed difference in acquired stress tolerance was dependent on the astrocyte genotype. The association of PERK-B with transient changes in stress response and reduced stress tolerance with higher vulnerability to cellular stress, albeit transient and small/moderate in size, has clinical relevance based on its potential contribution to the overall genetic vulnerability in neurodegenerative diseases.

Preprint server: bioRxiv
The authors list and abstract were imported from bioRxiv on 01 Oct 2026.

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