Cryoelectron tomography reveals an age-related decline in mitoribosomes that contributes to T cell dysfunction in older individuals

J Jingwen Chen (Key Laboratory of Industrial Ecology and Environmental Engineering (MOE), Dalian Key Laboratory on Chemicals Risk Control and Pollution Prevention Technology, School of Environmental Science and Technology) L Lili Su (iHuman Institute, ShanghaiTech University) B Bangze Pan (iHuman Institute, ShanghaiTech University) J Junhao Sang (iHuman Institute, ShanghaiTech University) L Linlin Li (College of Materials Science and Technology) J Junsong Huang (Multiscale Research Institute for Complex Systems, Fudan University) Z Zhao-Lan Hu (Department of Anesthesiology, The Second Xiangya Hospital, Central South University) L Lixin Wang (Department of Chemistry) X Xiaojie Zhang (iHuman Institute, ShanghaiTech University) J Jun Jin

Abstract

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.

Article Details

Volume / Issue Vol. 123, Issue 31
Published August 04, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

J

Jingwen Chen

Key Laboratory of Industrial Ecology and Environmental Engineering (MOE), Dalian Key Laboratory on Chemicals Risk Control and Pollution Prevention Technology, School of Environmental Science and Technology

L

Lili Su

iHuman Institute, ShanghaiTech University

B

Bangze Pan

iHuman Institute, ShanghaiTech University

J

Junhao Sang

iHuman Institute, ShanghaiTech University

L

Linlin Li

College of Materials Science and Technology

J

Junsong Huang

Multiscale Research Institute for Complex Systems, Fudan University

Z

Zhao-Lan Hu

Department of Anesthesiology, The Second Xiangya Hospital, Central South University

L

Lixin Wang

Department of Chemistry

X

Xiaojie Zhang

iHuman Institute, ShanghaiTech University

J

Jun Jin