生物
线粒体核糖体
线粒体
细胞生物学
翻译(生物学)
线粒体DNA
胞浆
细胞
DNAJA3公司
核糖体
表型
T细胞
粒线体疾病
线粒体融合
CD8型
程序性细胞死亡
衰老
细胞生理学
线粒体载体
作者
Jingwen Chen,Lili Su,Bangze Pan,Junhao Sang,Linlin Li,Junsong Huang,Zhao‐Lan Hu,Lixin Wang,Xiaojie Zhang,Jun Jin
标识
DOI:10.1073/pnas.2608102123
摘要
Mitochondrial dysfunction drives T cell aging in mice. Yet, due to fundamental differences in T cell aging mechanisms between species, whether human T cells exhibit similar mitochondrial alterations remains unclear, with existing evidence often conflicting. Using cryoelectron tomography, we resolved the structure and spatial organization of mitochondrial ribosomes in primary human CD8 + T cells under physiological conditions. Comparative analysis with human aging models revealed an age-related reduction in mitoribosome abundance and in higher-order mitoribosome organization, which is necessary for cooperative translation. Defective mitochondrial translation suppressed cytosolic ribosomal protein expression, thereby limiting mitochondrial biogenesis. The consequent reduction in mitochondrial mass induced an aged T cell phenotype characterized by compromised memory phenotypes and proliferative capacity. Enhancing mitochondrial translation via overexpression of the mitoribosomal component Mrps5 reversed aged T cell phenotypes in a mouse model of viral infection or tumor. Together, our findings provide nanoscale-resolution views of internal mitochondrial structures in situ, revealing an age-related loss of mitoribosomes. This loss contributes to mitochondrial dysfunction and the subsequent decline in T cell function observed in older individuals. Restoring mitochondrial translation may therefore represent a strategy for mitigating T cell dysfunction in the aging population.
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