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IGF1R levels in the brain negatively correlate with longevity in 16 rodent species

机译:脑中IGF1R水平与16种啮齿动物的寿命负相关

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摘要

The insulin/insulin-like growth factor signaling (IIS) pathway is a major conserved regulator of aging. Nematode, fruit fly and mouse mutants with reduced IIS signaling exhibit extended lifespan. These mutants are often dwarfs leading to the idea that small body mass correlates with longevity within species. However, when different species are compared, larger animals are typically longer-lived. Hence, the role of IIS in the evolution of life history traits remains unresolved. Here we used comparative approach to test whether IGF1R signaling changes in response to selection on lifespan or body mass and whether specific tissues are involved. The IGF1R levels in the heart, lungs, kidneys, and brains of sixteen rodent species with highly diverse lifespans and body masses were measured via immunoblot after epitope conservation analysis. We report that IGF1R levels display strong negative correlation with maximum lifespan only in brain tissue and no significant correlations with body mass for any organ. The brain-IGF1R and lifespan correlation holds when phylogenetic non-independence of data-points is taken into account. These results suggest that modulation of IGF1R signaling in nervous tissue, but not in the peripheral tissues, is an important factor in the evolution of longevity in mammals.
机译:胰岛素/胰岛素样生长因子信号传导(IIS)途径是衰老的主要保守调节因子。 IIS信号减少的线虫,果蝇和小鼠突变体的寿命延长。这些突变体通常是矮人,导致人们认为小体重与物种内的寿命有关。但是,当比较不同物种时,大型动物通常寿命更长。因此,IIS在生活史特征演变中的作用仍未解决。在这里,我们使用比较方法来测试IGF1R信号传导是否响应寿命或体重的选择而发生变化,并且是否涉及特定组织。经过抗原表位保守性分析后,通过免疫印迹法测量了16种寿命和体重差异很大的啮齿动物的心,肺,肾和脑中的IGF1R水平。我们报告说,IGF1R水平仅在脑组织中显示与最大寿命的强烈负相关,而与任何器官的体重均无显着相关。当考虑数据点的系统发育非独立性时,大脑-IGF1R和寿命相关性成立。这些结果表明,在神经组织而非外周组织中对IGF1R信号传导的调节是哺乳动物长寿进化的重要因素。

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