ArticleThe Journal of cell biology2025
TMBIM-2 orchestrates systemic mitochondrial stress response via facilitating Ca2+ oscillations.
Article in The Journal of cell biology, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 4 papers.
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Who cites it
4 citing papers in PubMed.
- Transcriptomic Evidence Identifies Two TMBIM Subgroups with Opposing Prognostic Associations in Glioma.Biology · 2026Article
- FUBL-3/FUBP1 mediates mitochondrial stress-induced chromatin remodeling and longevity.Science advances · 2026Article
- Mitochondrial unfolded protein response as a central stress-integration hub: mechanisms and implications in disease contexts.Burns & trauma · 2026Review
- Mitochondrial stress orchestrates chromatin remodeling and longevity via phosphoregulation of the NuRD component LIN-40.Science China. Life sciences · 2025Article
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Authors and funding
9 authors.
Funding
Abstract
Neuronal mitochondrial function is critical for orchestrating inter-tissue communication essential for overall fitness. Despite its significance, the molecular mechanism underlying the impact of prolonged mitochondrial stresses on neuronal activity and how they orchestrate metabolism and aging remains elusive. Here, we identified the evolutionarily conserved transmembrane protein XBX-6/TMBIM-2 as a key mediator in the neuronal-to-intestinal mitochondrial unfolded protein response (UPRmt). Our investigations reveal that intrinsic neuronal mitochondrial stress triggers spatiotemporal Ca2+ oscillations in a TMBIM-2-dependent manner through the Ca2+ efflux pump MCA-3. Notably, persistent Ca2+ oscillations at synapses of ADF neurons are critical for facilitating serotonin release and the subsequent activation of the neuronal-to-intestinal UPRmt. TMBIM2 expression diminishes with age; however, its overexpression counteracts the age-related decline in aversive learning behavior and extends the lifespan of Caenorhabditis elegans. These findings underscore the intricate integration of chronic neuronal mitochondrial stress into neurotransmission processes via TMBIM-2-dependent Ca2+ equilibrium, driving metabolic adaptation and behavioral changes for the regulation of aging.
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