mTORC1型
PI3K/AKT/mTOR通路
肌萎缩
蛋白激酶B
骨骼肌
核糖体蛋白s6
下调和上调
生物
细胞生物学
雷帕霉素的作用靶点
肌肉肥大
内分泌学
自噬
泛素连接酶
FOXO3公司
内科学
信号转导
P70-S6激酶1
肌肉萎缩
磷酸化
老化
医学
泛素
遗传学
细胞凋亡
基因
作者
Marco Sandri,Laura Barberi,Astrid Y. Bijlsma,Bert Blaauw,Kenneth A. Dyar,Giulia Milan,Cristina Mammucari,Carel G. M. Meskers,Giorgia Pallafacchina,Antonio Paoli,Delphine Pion,Mila Roceri,Vanina Romanello,Antonio L. Serrano,L. Toniolo,Lars Larsson,Andrea B. Maier,Pura Muñoz‐Cánoves,Antonio Musarò,Mario Pende
出处
期刊:Biogerontology
[Springer Science+Business Media]
日期:2013-05-18
卷期号:14 (3): 303-323
被引量:328
标识
DOI:10.1007/s10522-013-9432-9
摘要
During ageing skeletal muscles undergo a process of structural and functional remodelling that leads to sarcopenia, a syndrome characterized by loss of muscle mass and force and a major cause of physical frailty. To determine the causes of sarcopenia and identify potential targets for interventions aimed at mitigating ageing-dependent muscle wasting, we focussed on the main signalling pathway known to control protein turnover in skeletal muscle, consisting of the insulin-like growth factor 1 (IGF1), the kinase Akt and its downstream effectors, the mammalian target of rapamycin (mTOR) and the transcription factor FoxO. Expression analyses at the transcript and protein level, carried out on well-characterized cohorts of young, old sedentary and old active individuals and on mice aged 200, 500 and 800 days, revealed only modest age-related differences in this pathway. Our findings suggest that during ageing there is no downregulation of IGF1/Akt pathway and that sarcopenia is not due to FoxO activation and upregulation of the proteolytic systems. A potentially interesting result was the increased phosphorylation of the ribosomal protein S6, indicative of increased activation of mTOR complex1 (mTORC1), in aged mice. This result may provide the rationale why rapamycin treatment and caloric restriction promote longevity, since both interventions blunt activation of mTORC1; however, this change was not statistically significant in humans. Finally, genetic perturbation of these pathways in old mice aimed at promoting muscle hypertrophy via Akt overexpression or preventing muscle loss through inactivation of the ubiquitin ligase atrogin1 were found to paradoxically cause muscle pathology and reduce lifespan, suggesting that drastic activation of the IGF1-Akt pathway may be counterproductive, and that sarcopenia is accelerated, not delayed, when protein degradation pathways are impaired.
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