Journal Article10.1111/FEBS.15770
Hallmarks of the aging T-cell system.
Huimin Zhang,Huimin Zhang,Cornelia M. Weyand,Cornelia M. Weyand,Jörg J. Goronzy,Jörg J. Goronzy +5 more
TL;DR: The adaptive immune system has the enormous challenge to protect the host through the generation and differentiation of pathogen-specific short-lived effector T cells while in parallel developing long-lived memory cells to control future encounters with the same pathogen.
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Abstract: The adaptive immune system has the enormous challenge to protect the host through the generation and differentiation of pathogen-specific short-lived effector T cells while in parallel developing long-lived memory cells to control future encounters with the same pathogen. A complex regulatory network is needed to preserve a population of naive cells over lifetime that exhibit sufficient diversity of antigen receptors to respond to new antigens, while also sustaining immune memory. In parallel, cells need to maintain their proliferative potential and the plasticity to differentiate into different functional lineages. Initial signs of waning immune competence emerge after 50 years of age, with increasing clinical relevance in the 7th-10th decade of life. Morbidity and mortality from infections increase, as drastically exemplified by the current COVID-19 pandemic. Many vaccines, such as for the influenza virus, are poorly effective to generate protective immunity in older individuals. Age-associated changes occur at the level of the T-cell population as well as the functionality of its cellular constituents. The system highly relies on the self-renewal of naive and memory T cells, which is robust but eventually fails. Genetic and epigenetic modifications contribute to functional differences in responsiveness and differentiation potential. To some extent, these changes arise from defective maintenance; to some, they represent successful, but not universally beneficial adaptations to the aging host. Interventions that can compensate for the age-related defects and improve immune responses in older adults are increasingly within reach.
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Citations
Biomarkers of aging
Hà Dương Xuân Bảo,Jiani Cao,Mengting Chen,Min Chen,Wei Chen,Xiao Chen,Yanhao Chen,Yu Chen,Yutian Chen,Zhiyang Chen,Jagadish K. Chhetri,Yingjie Ding,Junlin Feng,Jun Guo,Mengmeng Guo,Chuting He,Yujuan Jia,Haiping Jiang,Ying Jing,Dingfeng Li,Jiaming Li,Jingyi Li,Qinhao Liang,Rui Liang,Xiaoqian Liu,Zuojun Liu,Oscar Junhong Luo,Jianwei Lv,Jingyi Ma,Jiawei Nie,Xinhua Qiao,Xinpei Sun,Xiaoqiang Tang,Jianfang Wang,Qiaoran Wang,Siyuan Wang,Xuan Wang,Yaning Wang,Yuhan Wang,Kai Xia,Fuhui Liao,Lingyan Xu,Yingying Xu,Haoteng Yan,Liang Yang,Ruici Yang,Yuanxin Yang,Yilin Ying,Le Zhang,Weiwei Zhang,Wenwan Zhang,Xuning Zhang,Zhuo Zhang,Min Zhou,Rui Zhou,Qingchen Zhu,Zhengmao Zhu,Feng Cao,Zhongwei Cao,P. Chang,Chang Chen,Guobing Chen,Hou-Zao Chen,Jun Chen,Weimin Ci,Bi-Sen Ding,Qiurong Ding,Feng Gao,J.H. Han,Kai Huang,Zhenyu Ju,Qing-Peng Kong,Ji Li,Jian Li,Xin Li,Baohua Liu,Feng Liu,Lin Liu,Qiang Liu,Qiang Liu,Xingguo Liu,Yong Liu,Xianghang Luo,Shuai Ma,Xinran Ma,Zhiyong Mao,Jing Nie,Yaojin Peng,Jing Qu,Jie Ren,Ruibao Ren,Moshi Song,Zhou Songyang,Yi E. Sun,Mei Tian,Sheng Wang,Si Qi Wang,Xia Wang,Xiaoning Wang,Yan-Jiang Wang,Yunfang Wang,Catherine C L Wong,Andy Peng Xiang,Yichuan Xiao,Zhengwei Xie,Daichao Xu,Jing Ye,Rui Yue,Cuntai Zhang,Hongbo Zhang,Liang Zhang,Weiqi Zhang,Yong Zhang,Yun-wu Zhang,Zhuohua Zhang,Tongbiao Zhao,Yuzheng Zhao,Dahai Zhu,Weiguo Zou,Gang Pei,Guang-Hui Liu +120 more
TL;DR: Aging biomarkers are a combination of biological parameters to assess agerelated changes, track the physiological aging process, and predict the transition into a pathological status as discussed by the authors , which can help us answer the following three fundamental questions in aging research: How old are we? Why do we get old? And how can we age slower?
Cellular senescence and the tumour microenvironment
TL;DR: The features and roles of senescent cells in tumour microenvironment are discussed with emphasis on their context‐dependency that determines whether they promote or suppress cancer development.
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Natural Killer T-like Cells: Immunobiology and Role in Disease
Jani-Sofia Almeida,J. M. Casanova,Manuel Santos-Rosa,Raquel Tarazona,Rafael Solana,Paulo Rodrigues-Santos +5 more
TL;DR: A review of the literature on human NKT-like cells can be found in this article , where it is shown that the acquisition of innate characteristics by T cells could represent a remodeling process leading to successful aging.
Single-cell atlas of healthy human blood unveils age-related loss of NKG2C+GZMB-CD8+ memory T cells and accumulation of type 2 memory T cells.
Marina Terekhova,Amanda C Swain,Pavla Bohacova,E. Aladyeva,Laura Arthur,Anwesha Laha,Denis A. Mogilenko,Samantha Burdess,Vladimir Sukhov,Denis Kleverov,Barbora Echalar,Petr Tsurinov,Roman Chernyatchik,Kamila Husarcikova,Maxim N. Artyomov +14 more
TL;DR: Novel insights into healthy human aging are provided and a concerted age-associated increase in type 2/interleukin (IL)4-expressing memory subpopulations across CD4+ and CD8+ T cell compartments is found, suggesting a systematic functional shift in immune homeostasis with age.
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Impaired CD4+ T cell response in older adults is associated with reduced immunogenicity and reactogenicity of mRNA COVID-19 vaccination
Norihide Jo,Yumi Hidaka,Osamu Kikuchi,Masaru Fukahori,Takashi Sawada,Masahiko Aoki,Masayuki Yamamoto,Miki Nagao,Satoshi Morita,Takako Nakajima,Manabu Muto,Yoko Hamazaki +11 more
TL;DR: In this paper , older adults had fewer vaccine-induced spike-specific CD4 + T cells including CXCR3 + circulating follicular helper T cells and the T H 1 subset of T cells after the first dose, which correlated with their lower peak IgG levels and fewer systemic adverse effects after the second dose compared with younger adults.
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