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Functional wiring of proteostatic and mitostatic modules ensures transient organismal survival during imbalanced mitochondrial dynamics

机译:蛋白质固定和线粒体模块的功能性接线可确保线粒体动力学失衡时的瞬时生物存活

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摘要

Being an assembly of protein machines, cells depend on adequate supply of energetic molecules for retaining their homeodynamics. Consequently, mitochondria functionality is ensured by quality control systems and mitochondrial dynamics (fusion/fission). Similarly, proteome stability is maintained by the machineries of the proteostasis network. We report here that reduced mitochondrial fusion rates in Drosophila caused developmental lethality or if induced in the adult accelerated aging. Imbalanced mitochondrial dynamics were tolerable for various periods in young flies, where they caused oxidative stress and proteome instability that mobilized Nrf2 and foxo to upregulate cytoprotective antioxidant/proteostatic modules. Consistently, proteasome inhibition or Nrf2, foxo knock down in young flies exaggerated perturbed mitochondrial dynamics toxicity. Neither Nrf2 overexpression (with concomitant proteasome activation) nor Atg8a upregulation suppressed the deregulated mitochondrial dynamics toxicity, which was mildly mitigated by antioxidants. Thus, despite extensive functional wiring of mitostatic and antioxidant/proteostatic modules, sustained loss-of mitostasis exhausts adaptation responses triggering premature aging.
机译:作为蛋白质机器的组装体,细胞依赖于充足的能量分子供应来保持其体内动力学。因此,质量控制系统和线粒体动力学(融合/裂变)可确保线粒体功能。类似地,蛋白质组稳定性由蛋白质稳定网络的机构维持。我们在这里报告说,果蝇中线粒体融合率降低会导致发育致死率,或者如果在成人中引起老化加速。幼虫在不同时期都可以忍受线粒体动力学失衡,它们会引起氧化应激和蛋白质组不稳定,从而动员Nrf2和foxo来上调细胞保护性抗氧化剂/蛋白质调节模块。始终如一地,蛋白酶体抑制或Nrf2,foxo在年轻果蝇中被击倒,加剧了线粒体动力学的扰动。 Nrf2过表达(伴随蛋白酶体激活)和Atg8a上调均未抑制线粒体动力学毒性的失调,而抗氧化剂可轻微缓解线粒体动力学的毒性。因此,尽管拟静态和抗氧化剂/维持蛋白的模块功能广泛的布线,持续的趋狭性丧失仍然耗尽了触发早衰的适应性反应。

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