Department of Physical Medicine & Rehabilitation, University of Pittsburgh, Pittsburgh, United States.
Department of Environmental and Occupational Health, University of Pittsburgh, Pittsburgh, United States.
Elife. 2021 Apr 20;10:e61138. doi: 10.7554/eLife.61138.
Aging is accompanied by disrupted information flow, resulting from accumulation of molecular mistakes. These mistakes ultimately give rise to debilitating disorders including skeletal muscle wasting, or sarcopenia. To derive a global metric of growing 'disorderliness' of aging muscle, we employed a statistical physics approach to estimate the state parameter, entropy, as a function of genes associated with hallmarks of aging. Escalating network entropy reached an inflection point at old age, while structural and functional alterations progressed into oldest-old age. To probe the potential for restoration of molecular 'order' and reversal of the sarcopenic phenotype, we systemically overexpressed the longevity protein, Klotho, via AAV. Klotho overexpression modulated genes representing all hallmarks of aging in old and oldest-old mice, but pathway enrichment revealed directions of changes were, for many genes, age-dependent. Functional improvements were also age-dependent. Klotho improved strength in old mice, but failed to induce benefits beyond the entropic tipping point.
衰老是伴随着信息流的紊乱发生的,这种紊乱是由分子错误的积累引起的。这些错误最终导致衰弱性疾病,包括骨骼肌减少症或肌肉减少症。为了得出衡量衰老肌肉日益“无序”的全局指标,我们采用了一种统计物理方法来估计状态参数熵,熵是与衰老标志相关基因的函数。随着年龄的增长,网络熵逐渐达到一个拐点,而结构和功能的改变则进入最老年龄阶段。为了探究恢复分子“有序”和逆转肌肉减少症表型的可能性,我们通过 AAV 系统地过表达长寿蛋白 Klotho。Klotho 的过表达调节了代表衰老所有标志的基因,在年老和最老的小鼠中,但通路富集显示,对于许多基因,变化的方向是依赖年龄的。功能的改善也是依赖年龄的。Klotho 提高了年老小鼠的力量,但未能在熵转折点之外诱导获益。