1.Single-nucleus profiling unveils a geroprotective role of the FOXO3 in primate skeletal muscle aging.
Ying JING ; Yuesheng ZUO ; Yang YU ; Liang SUN ; Zhengrong YU ; Shuai MA ; Qian ZHAO ; Guoqiang SUN ; Huifang HU ; Jingyi LI ; Daoyuan HUANG ; Lixiao LIU ; Jiaming LI ; Zijuan XIN ; Haoyan HUANG ; Juan Carlos Izpisua BELMONTE ; Weiqi ZHANG ; Si WANG ; Jing QU ; Guang-Hui LIU
Protein & Cell 2023;14(7):497-512
Age-dependent loss of skeletal muscle mass and function is a feature of sarcopenia, and increases the risk of many aging-related metabolic diseases. Here, we report phenotypic and single-nucleus transcriptomic analyses of non-human primate skeletal muscle aging. A higher transcriptional fluctuation was observed in myonuclei relative to other interstitial cell types, indicating a higher susceptibility of skeletal muscle fiber to aging. We found a downregulation of FOXO3 in aged primate skeletal muscle, and identified FOXO3 as a hub transcription factor maintaining skeletal muscle homeostasis. Through the establishment of a complementary experimental pipeline based on a human pluripotent stem cell-derived myotube model, we revealed that silence of FOXO3 accelerates human myotube senescence, whereas genetic activation of endogenous FOXO3 alleviates human myotube aging. Altogether, based on a combination of monkey skeletal muscle and human myotube aging research models, we unraveled the pivotal role of the FOXO3 in safeguarding primate skeletal muscle from aging, providing a comprehensive resource for the development of clinical diagnosis and targeted therapeutic interventions against human skeletal muscle aging and the onset of sarcopenia along with aging-related disorders.
Animals
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Humans
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Sarcopenia/metabolism*
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Forkhead Box Protein O3/metabolism*
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Muscle, Skeletal/metabolism*
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Aging/metabolism*
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Primates/metabolism*
2.A single-nucleus transcriptomic atlas of primate testicular aging reveals exhaustion of the spermatogonial stem cell reservoir and loss of Sertoli cell homeostasis.
Daoyuan HUANG ; Yuesheng ZUO ; Chen ZHANG ; Guoqiang SUN ; Ying JING ; Jinghui LEI ; Shuai MA ; Shuhui SUN ; Huifen LU ; Yusheng CAI ; Weiqi ZHANG ; Fei GAO ; Andy PENG XIANG ; Juan Carlos Izpisua BELMONTE ; Guang-Hui LIU ; Jing QU ; Si WANG
Protein & Cell 2023;14(12):888-907
The testis is pivotal for male reproduction, and its progressive functional decline in aging is associated with infertility. However, the regulatory mechanism underlying primate testicular aging remains largely elusive. Here, we resolve the aging-related cellular and molecular alterations of primate testicular aging by establishing a single-nucleus transcriptomic atlas. Gene-expression patterns along the spermatogenesis trajectory revealed molecular programs associated with attrition of spermatogonial stem cell reservoir, disturbed meiosis and impaired spermiogenesis along the sequential continuum. Remarkably, Sertoli cell was identified as the cell type most susceptible to aging, given its deeply perturbed age-associated transcriptional profiles. Concomitantly, downregulation of the transcription factor Wilms' Tumor 1 (WT1), essential for Sertoli cell homeostasis, was associated with accelerated cellular senescence, disrupted tight junctions, and a compromised cell identity signature, which altogether may help create a hostile microenvironment for spermatogenesis. Collectively, our study depicts in-depth transcriptomic traits of non-human primate (NHP) testicular aging at single-cell resolution, providing potential diagnostic biomarkers and targets for therapeutic interventions against testicular aging and age-related male reproductive diseases.
Animals
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Male
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Testis
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Sertoli Cells/metabolism*
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Transcriptome
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Spermatogenesis/genetics*
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Primates
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Aging/genetics*
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Stem Cells
3.Single-nucleus transcriptomics reveals a gatekeeper role for FOXP1 in primate cardiac aging.
Yiyuan ZHANG ; Yandong ZHENG ; Si WANG ; Yanling FAN ; Yanxia YE ; Yaobin JING ; Zunpeng LIU ; Shanshan YANG ; Muzhao XIONG ; Kuan YANG ; Jinghao HU ; Shanshan CHE ; Qun CHU ; Moshi SONG ; Guang-Hui LIU ; Weiqi ZHANG ; Shuai MA ; Jing QU
Protein & Cell 2023;14(4):279-293
Aging poses a major risk factor for cardiovascular diseases, the leading cause of death in the aged population. However, the cell type-specific changes underlying cardiac aging are far from being clear. Here, we performed single-nucleus RNA-sequencing analysis of left ventricles from young and aged cynomolgus monkeys to define cell composition changes and transcriptomic alterations across different cell types associated with age. We found that aged cardiomyocytes underwent a dramatic loss in cell numbers and profound fluctuations in transcriptional profiles. Via transcription regulatory network analysis, we identified FOXP1, a core transcription factor in organ development, as a key downregulated factor in aged cardiomyocytes, concomitant with the dysregulation of FOXP1 target genes associated with heart function and cardiac diseases. Consistently, the deficiency of FOXP1 led to hypertrophic and senescent phenotypes in human embryonic stem cell-derived cardiomyocytes. Altogether, our findings depict the cellular and molecular landscape of ventricular aging at the single-cell resolution, and identify drivers for primate cardiac aging and potential targets for intervention against cardiac aging and associated diseases.
Aged
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Animals
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Humans
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Aging/genetics*
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Forkhead Transcription Factors/metabolism*
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Myocytes, Cardiac/metabolism*
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Primates/metabolism*
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Repressor Proteins/metabolism*
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Transcriptome
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Macaca fascicularis/metabolism*