Across organisms, manipulation of biosynthetic capacity arrests development early in life, but can increase health- and lifespan post-developmentally. Here we demonstrate that this developmental arrest is not sickness but rather a regulated survival program responding to reduced cellular performance. We inhibited protein synthesis by reducing ribosome biogenesis (rps-11/RPS11 RNAi), translation initiation (ifg-1/EIF3G mutation and egl-45/EIF3A RNAi), or ribosome progression (cycloheximide treatment), all of which result in a specific arrest at larval stage 2 of C. elegans development. This quiescent state can last for weeks-beyond the normal C. elegans adult lifespan-and is reversible, as animals can resume reproduction and live a normal lifespan once released from the source of protein synthesis inhibition. The arrest state affords resistance to thermal, oxidative, and heavy metal stress exposure. In addition to cell-autonomous responses, reducing biosynthetic capacity only in the hypodermis was sufficient to drive organism-level developmental arrest and stress resistance phenotypes. Among the cell non-autonomous responses to protein synthesis inhibition is reduced pharyngeal pumping that is dependent upon AMPK-mediated signaling. The reduced pharyngeal pumping in response to protein synthesis inhibition is recapitulated by exposure to microbes that generate protein synthesis-inhibiting xenobiotics, which may mechanistically reduce ingestion of pathogen and toxin. These data define the existence of a transient arrest-survival state in response to protein synthesis inhibition and provide an evolutionary foundation for the conserved enhancement of healthy aging observed in post-developmental animals with reduced biosynthetic capacity.

译文

在整个生物体中,生物合成能力的操纵会阻止生命早期的发育,但会在发育后增加健康和寿命。在这里,我们证明这种发育停滞不是疾病,而是对细胞性能降低做出反应的规范生存计划。我们通过减少核糖体生物发生 (rps-11/RPS11 RNAi) 、翻译起始 (ifg-1/EIF3G突变和egl-45/EIF3A RNAi) 或核糖体进程 (环己酰亚胺处理) 来抑制蛋白质合成,所有这些都导致秀丽隐杆线虫发育的幼虫阶段2的特异性停滞。这种静止状态可以持续数周-超过正常的秀丽隐杆线虫成年寿命-并且是可逆的,因为一旦从蛋白质合成抑制的来源释放出来,动物就可以恢复繁殖并保持正常寿命。停滞状态可抵抗热,氧化和重金属应力暴露。除了细胞自主反应外,仅在皮下组织中降低生物合成能力足以驱动生物体水平的发育停滞和抗逆性表型。在细胞对蛋白质合成抑制的非自主反应中,依赖于AMPK介导的信号传导的咽泵减少。通过暴露于产生抑制蛋白质合成的异种生物的微生物,可以概括出减少对蛋白质合成抑制的咽泵,这可以机械地减少病原体和毒素的摄入。这些数据定义了响应于蛋白质合成抑制的瞬时停滞生存状态的存在,并为在生物合成能力降低的发育后动物中观察到的健康衰老的保守增强提供了进化基础。

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