Proteostasis Rebalancing by LET-607 Deficiency Promotes Longevity.

Tong, Haixiang; Li, Wei; Yuan, Pangui; Li, Feng; Liu, Qin; Pang, Shanshan; Tang, Haiqing · Aging Cell · 2026

basic_science · Level V

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Abstract

Disruption of proteostasis is a hallmark of aging. Given that cellular resources are limited, this necessitates a coordinated orchestration of different proteostatic subsystems. Yet, the principles governing this process, including the potential role of trade-offs, are not well defined. Here, we report a trade-off between the endoplasmic reticulum unfolded protein response (UPR<sup>ER</sup>) and the cytosolic UPR (UPR<sup>cyto</sup>) in C. elegans that influences lifespan. We find that wild-type animals maintain high UPR<sup>ER</sup> activity but low UPR<sup>cyto</sup> activity, a balance actively enforced by the transcription factor LET-607 (ortholog of mammalian CREBH). Consequently, LET-607 deficiency releases this trade-off, causing a seesaw-like rebalancing: UPR<sup>ER</sup> activity decreases while UPR<sup>cyto</sup> increases. Strikingly, this rebalancing contributes to longevity: animals lacking LET-607 exhibited extended lifespan in a UPR<sup>cyto</sup> dependent manner. Mechanistically, LET-607 deficiency downregulates one-carbon cycle, which provides the methyl donor S-adenosylmethionine. This subsequently alleviates H3K9me-mediated repression at the promoters of UPR<sup>cyto</sup> genes, a process involving the regulators and readers of this histone mark, leading to UPR<sup>cyto</sup> activation. Our study reveals a transcriptional mechanism that enforces a proteostatic trade-off and demonstrates that evolutionarily acquired UPR balance in wild-type animals is suboptimal for longevity, supporting the antagonistic pleiotropic theory of aging.

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