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Biology subjects

Weaver, Y. M.

Publications and source records attributed to Weaver, Y. M..

2 recordsLinked to original sources

Proteolytic activation of fatty acid synthase signals pan-stress resolution

Chronic stress and inflammation are not only outcomes of pathological states but rather major drivers of many human diseases 1-4. Ideally, a given stress program is downregulated to basal levels upon restoration of homeostasis. Chronic responsiveness despite stress mitigation suggests a failure to sense the resolution of the initiating stressor. Here we show that a proteolytic cleavage event of fatty acid synthase (FASN) activates a global cue for stress resolution. FASN is well-established as the multifunctional enzyme catalyzing de novo biosynthesis of saturated fatty acid 5, 6. Surprisingly, our results demonstrate FASN functioning as a signaling molecule promoting an anti-inflammatory profile apart from fatty acid synthesis. Redox-dependent proteolytic cleavage of FASN by caspase activates a truncated C-terminal enzymatic fragment (FASN-CTF) that is sufficient to down-regulate multiple aspects of stress-responsiveness including gene expression and metabolic programs. Only a fraction of FASN is cleaved allowing for continued fat synthesis. FASN-CTF can signal stress resolution across tissues in a cell non-autonomous manner. Consistent with these findings, FASN processing is also seen in well-fed but not fasted mouse liver. As down-regulation of stress responsiveness is critical to health, our findings provide a potential pathway to control the magnitude for diverse aspects of stress responses.

molecular biology↗

Balancing p38 MAPK Signaling with Proteostasis Mechanisms Supports Tissue Integrity during Aging in C. elegans

Like other p38 MAPKs, C. elegans PMK-1 is activated by phosphorylation during stress responses and inactivated by phosphatases. PMK-1 initiates immune response and blocks development when hyperactivated. Here we show that PMK-1 signaling is essential for tissue homeostasis during aging. Loss of PMK-1 accelerates progressive declines in neuronal integrity and lysosome function compromising longevity. Enhancing p38 signaling with caspase cleavage-resistant PMK-1 protects lysosomal and neuronal integrity extending a youthful phase. The cleavage-resistant PMK-1 mutant behaves oppositely to the pmk-1 null in regulating both transcriptional and protein degradation programs supporting tissue homeostasis. PMK-1 activates a complex transcriptional program and requires UNC-62 (MEIS), FOS/JUN, and DAF-16 (FOXO) transcription factors to regulate lysosome formation which is both cell autonomous and non-cell autonomous. We show that during early aging the absolute phospho-p38 amount is nearly constant but maintained at a small percentage of total p38. The reservoir of non-phospho-p38 diminishes during early aging to enhance signaling without hyperactivation. CED-3 caspase cleavage limits phosphorylated PMK-1 and truncated PMK-1 is rapidly degraded by the proteasome. Modulating phospho-p38 ratio confers dynamic control for tissue-homeostasis without activating stress response to support longevity.

molecular biology↗