皮层突触线粒体蛋白质组的时间特征分析确定了与稳定性相关的衰老调节因子。
Temporal Profiling of the Cortical Synaptic Mitochondrial Proteome Identifies Ageing Associated Regulators of Stability.
机构信息
The Roslin Institute, University of Edinburgh, Easter Bush Campus, Midlothian EH25 9RG, UK.
Euan MacDonald Centre, Chancellor's Building, University of Edinburgh, 49 Little France Crescent, Edinburgh EH16 4SB, UK.
出版信息
Cells. 2021 Dec 2;10(12):3403. doi: 10.3390/cells10123403.
Synapses are particularly susceptible to the effects of advancing age, and mitochondria have long been implicated as organelles contributing to this compartmental vulnerability. Despite this, the mitochondrial molecular cascades promoting age-dependent synaptic demise remain to be elucidated. Here, we sought to examine how the synaptic mitochondrial proteome (including strongly mitochondrial associated proteins) was dynamically and temporally regulated throughout ageing to determine whether alterations in the expression of individual candidates can influence synaptic stability/morphology. Proteomic profiling of wild-type mouse cortical synaptic and non-synaptic mitochondria across the lifespan revealed significant age-dependent heterogeneity between mitochondrial subpopulations, with aged organelles exhibiting unique protein expression profiles. Recapitulation of aged synaptic mitochondrial protein expression at the neuromuscular junction has the propensity to perturb the synaptic architecture, demonstrating that temporal regulation of the mitochondrial proteome may directly modulate the stability of the synapse in vivo.
突触特别容易受到年龄增长的影响,线粒体长期以来一直被认为是导致这部分脆弱性的细胞器。尽管如此,促进年龄相关性突触丧失的线粒体分子级联仍有待阐明。在这里,我们试图研究在整个衰老过程中,突触线粒体蛋白质组(包括与线粒体密切相关的蛋白质)如何动态和时间上受到调节,以确定单个候选物的表达变化是否会影响突触的稳定性/形态。对野生型小鼠皮质突触和非突触线粒体在整个生命周期中的蛋白质组进行分析,揭示了线粒体亚群之间存在显著的年龄依赖性异质性,衰老的细胞器表现出独特的蛋白质表达谱。在神经肌肉连接处重现衰老的突触线粒体蛋白质表达倾向于破坏突触结构,表明线粒体蛋白质组的时间调节可能直接调节体内突触的稳定性。
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