Genetic Disruption of KLF1 K74 SUMOylation in Hematopoietic System Promotes Healthy Longevity in Mice.
Yu-Chiau ShyuPo-Cheng LiaoTing-Shou HuangChun-Ju YangMu-Jie LuShih-Ming HuangXin-Yu LinCai-Cin LiouYu-Hsiang KaoChi-Huan LuHui-Ling PengJim-Ray ChenWen-Jin CherngNing-I YangYung-Chang ChenHeng-Chih PanSi-Tse JiangChih-Chin HsuGigin LinShin-Sheng YuanPaul Wei-Che HsuKou-Juey WuTung-Liang LeeChe-Kun James ShenPublished in: Advanced science (Weinheim, Baden-Wurttemberg, Germany) (2022)
The quest for rejuvenation and prolonged lifespan through transfusion of young blood has been studied for decades with the hope of unlocking the mystery of the key substance(s) that exists in the circulating blood of juvenile organisms. However, a pivotal mediator has yet been identified. Here, atypical findings are presented that are observed in a knockin mouse model carrying a lysine to arginine substitution at residue 74 of Krüppel-like factor 1 (KLF1/EKLF), the SUMOylation-deficient Klf1 K74R/K74R mouse, that displayed significant improvement in geriatric disorders and lifespan extension. Klf1 K74R/K74R mice exhibit a marked delay in age-related physical performance decline and disease progression as evidenced by physiological and pathological examinations. Furthermore, the KLF1(K74R) knockin affects a subset of lymphoid lineage cells; the abundance of tumor infiltrating effector CD8 + T cells and NKT cells is increased resulting in antitumor immune enhancement in response to tumor cell administration. Significantly, infusion of hematopoietic stem cells (HSCs) from Klf1 K74R/K74R mice extends the lifespan of the wild-type mice. The Klf1 K74R/K74R mice appear to be an ideal animal model system for further understanding of the molecular/cellular basis of aging and development of new strategies for antiaging and prevention/treatment of age-related diseases thus extending the healthspan as well as lifespan.
Keyphrases
- wild type
- high fat diet induced
- transcription factor
- stem cells
- mouse model
- induced apoptosis
- bone marrow
- insulin resistance
- low dose
- physical activity
- cell cycle arrest
- single cell
- type diabetes
- cardiac surgery
- genome wide
- signaling pathway
- cell therapy
- metabolic syndrome
- immune response
- endoplasmic reticulum stress
- cell proliferation
- acute kidney injury
- skeletal muscle
- middle aged