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A high‐fat diet reverses metabolic disorders and premature aging by modulating insulin and IGF1 signaling in SIRT6 knockout mice

机译:高脂饮食通过调节SIRT6基因敲除小鼠的胰岛素和IGF1信号传导来逆转代谢紊乱和过早衰老

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摘要

Mammalian sirtuin 6 (SIRT6) is involved in the regulation of many essential processes, especially metabolic homeostasis. SIRT6 knockout mice undergo premature aging and die at age ~4 weeks. Severe glycometabolic disorders have been found in SIRT6 knockout mice, and whether a dietary intervention can rescue SIRT6 knockout mice remains unknown. In our study, we found that at the same calorie intake, a high‐fat diet dramatically increased the lifespan of SIRT6 knockout mice to 26 weeks (males) and 37 weeks (females), reversed multi‐organ atrophy, and reduced body weight, hypoglycemia, and premature aging. Furthermore, the high‐fat diet partially but significantly normalized the global gene expression profile in SIRT6 knockout mice. Regarding the mechanism, excessive glucose uptake and glycolysis induced by the SIRT6 deficiency were attenuated in skeletal muscle through inhibition of insulin and IGF1 signaling by the high‐fat diet. Similarly, fatty acids but not ketone bodies inhibited glucose uptake, glycolysis, and senescence in SIRT6 knockout fibroblasts, whereas PI3K inhibition antagonized the effects of a high‐fatty‐acid medium in vitro. Overall, the high‐fat diet dramatically reverses numerous consequences of SIRT6 deficiency through modulation of insulin and IGF1 signaling, providing a new basis for elucidation of SIRT6 and fatty‐acid functions and supporting novel therapeutic approaches against metabolic disorders and aging‐related diseases.
机译:哺乳动物sirtuin 6(SIRT6)参与许多重要过程的调节,尤其是代谢稳态。 SIRT6基因敲除小鼠会过早衰老,并在〜4周龄时死亡。在SIRT6基因敲除小鼠中发现了严重的糖代谢紊乱,饮食干预能否挽救SIRT6基因敲除小鼠仍然未知。在我们的研究中,我们发现以相同的卡路里摄入量摄入高脂饮食可以将SIRT6基因敲除小鼠的寿命显着延长至26周(雄性)和37周(雌性),逆转多器官萎缩并减轻体重,低血糖和过早衰老。此外,高脂饮食部分但显着地使SIRT6基因敲除小鼠的整体基因表达谱正常化。关于机制,通过高脂饮食抑制胰岛素和IGF1信号传导,可减轻骨骼肌中SIRT6缺乏引起的过量葡萄糖摄取和糖酵解。同样,在SIRT6基因敲除的成纤维细胞中,脂肪酸而不是酮体抑制了葡萄糖的吸收,糖酵解和衰老,而PI3K的抑制作用则在体外拮抗了高脂肪酸培养基的作用。总体而言,高脂饮食通过调节胰岛素和IGF1信号传导显着逆转SIRT6缺乏的许多后果,为阐明SIRT6和脂肪酸功能提供了新的基础,并支持针对代谢性疾病和衰老相关疾病的新型治疗方法。

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