Tania Veuthey, Jeremy T Florman, Sebastián Giunti, Stefano Romussi, María José De Rosa, Mark J Alkema, Diego Rayes
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引用次数: 0
摘要
DAF-2/胰岛素/胰岛素样生长因子信号通路(IIS)在调节生殖发育、寿命和抗逆性方面起着进化保守的作用。在秀丽隐杆线虫中,DAF-2/IIS信号由一系列具有不同时空表达模式的胰岛素样肽(ILPs)调节。然而,这些ILPs在适应不同环境条件时的释放动力学和具体功能尚不清楚。在这里,我们发现ILP胰岛素-3 (INS-3)在秀丽隐杆线虫调节对各种环境应激源的反应中起着至关重要的作用。in -3突变体对热、氧化应激和饥饿的抵抗力增强;然而,在有利条件下,这种优势被较慢的生殖发育所抵消。我们发现in -3的表达在环境压力下被下调,而在急性飞行反应中释放的神经激素酪胺则增加了in -3的表达。我们发现酪胺通过激活TYRA-3受体诱导肠道钙(Ca2+)瞬态。我们的数据支持一个模型,即酪胺通过激活tyra -3- g - αq- ip3途径刺激肠道释放INS-3,从而对环境胁迫抗性产生负面影响。INS-3的释放系统性激活DAF-2通路,从而抑制DAF-16/FOXO介导的细胞保护机制。这些研究提供了对脑-肠通信途径的机制见解,该途径衡量了对急性和长期压力源作出反应的适应性策略。
The neurohormone tyramine stimulates the secretion of an insulin-like peptide from the Caenorhabditis elegans intestine to modulate the systemic stress response.
The DAF-2/insulin/insulin-like growth factor signaling (IIS) pathway plays an evolutionarily conserved role in regulating reproductive development, life span, and stress resistance. In Caenorhabditis elegans, DAF-2/IIS signaling is modulated by an extensive array of insulin-like peptides (ILPs) with diverse spatial and temporal expression patterns. However, the release dynamics and specific functions of these ILPs in adapting to different environmental conditions remain poorly understood. Here, we show that the ILP, insulin-3 (INS-3), plays a crucial role in modulating the response to various environmental stressors in C. elegans. ins-3 mutants display increased resistance to heat, oxidative stress, and starvation; however, this advantage is countered by slower reproductive development under favorable conditions. We find that ins-3 expression is downregulated in response to environmental stressors, whereas, the neurohormone tyramine, which is released during the acute flight response, increases ins-3 expression. We show that tyramine induces intestinal calcium (Ca2+) transients through the activation of the TYRA-3 receptor. Our data support a model in which tyramine negatively impacts environmental stress resistance by stimulating the release of INS-3 from the intestine via the activation of a TYRA-3-Gαq-IP3 pathway. The release of INS-3 systemically activates the DAF-2 pathway, resulting in the inhibition of cytoprotective mechanisms mediated by DAF-16/FOXO. These studies offer mechanistic insights into a brain-gut communication pathway that weighs adaptive strategies to respond to acute and long-term stressors.
期刊介绍:
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