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首页> 外文期刊>Aging cell. >Modulation of methuselah expression targeted to Drosophila insulin-producing cells extends life and enhances oxidative stress resistance
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Modulation of methuselah expression targeted to Drosophila insulin-producing cells extends life and enhances oxidative stress resistance

机译:靶向果蝇胰岛素产生细胞的methuselah表达的调节可延长寿命并增强抗氧化应激能力

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摘要

Ubiquitously reduced signaling via Methuselah (MTH), a G-protein-coupled receptor (GPCR) required for neurosecretion, has previously been reported to extend life and enhance stress resistance in flies. Whether these effects are due to reduced MTH signalling in specific tissues remains unknown. We determined that reduced expression of mth targeted to the insulin-producing cells (IPCs) of the fly brain was sufficient to extend life and enhance oxidative stress resistance. Paradoxically, we discovered that overexpression of mth targeted to the same cells has similar phenotypic effects to reduced expression due to MTH's interaction with β-arrestin, which uncouples GPCRs from their G-proteins. We confirmed the functional relationship between MTH and β-arrestin by finding that IPC-targeted overexpression of β-arrestin alone mimics the longevity phenotype of reduced MTH signaling. As reduced MTH signaling also inhibits insulin secretion from the IPCs, the most parsimonious mechanistic explanation of its longevity and stress-resistance enhancement might be through reduced insulin/IGF signaling (IIS). However, examination of phenotypic features of long-lived IPC-mth modulated flies as well as several downstream IIS targets implicates enhanced activity of the JNK stress-resistance pathway more directly than insulin signaling in the longevity and stress-resistance phenotypes.
机译:以前据报道,通过甲硫氨酸(MTH)(一种神经分泌所必需的G蛋白偶联受体(GPCR))无处减少的信号传导,可以延长果蝇的寿命并增强其抗逆性。这些作用是否归因于特定组织中MTH信号传导的降低尚不清楚。我们确定针对飞脑的胰岛素产生细胞(IPC)的mth的表达降低足以延长寿命并增强抗氧化应激能力。矛盾的是,我们发现,靶向Mth的相同细胞的过表达具有相似的表型效应,这是由于MTH与β-arrestin的相互作用而导致的表达降低,这使GPCR与G蛋白脱钩。我们通过发现IPC靶向的β-arrestin单独过表达模拟了MTH信号减少的寿命表型,从而证实了MTH与β-arrestin之间的功能关系。由于减少的MTH信号传导也抑制IPC分泌胰岛素,因此对其寿命和抗压力增强的最简约的机械解释可能是通过减少的胰岛素/ IGF信号传导(IIS)。但是,检查寿命长的IPC-mth调节型果蝇的表型特征以及几个下游的IIS目标,在寿命和抗逆性表型中比胰岛素信号传导更直接地暗示了JNK抗逆性途径的活性增强。

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