生物
精子
转录组
核糖核酸
小RNA
小RNA
遗传学
表型
后代
Piwi相互作用RNA
细胞生物学
端粒
深度测序
胚胎
生物发生
RNA序列
胚胎干细胞
老化
表观遗传学
合子
精子竞争
转基因
外小体复合体
信使核糖核酸
黑腹果蝇
衰老
非编码RNA
模式生物
斯塔斯明
人类遗传学
核糖核蛋白
基因组
RNA结合蛋白
RNA提取
作者
Junchao Shi,Xudong Zhang,Chen Cai,Shichao Liu,Jason C Yu,Emma James,Lihua Liu,Benjamin R Emery,Megan R McMurray Bires,Elizabeth Torres-Arce,Hukam C. Rawal,Joemy Ramsay,Jason Kunisaki,Changcheng Zhou,David S. Milstone,Mary Elizabeth Patti,Xiaoxu Yang,Tim G Jenkins,Aaron Quinlan,Bradley R. Cairns
出处
期刊:The EMBO Journal
[Springer Nature]
日期:2026-01-20
卷期号:45 (4): 1362-1380
被引量:1
标识
DOI:10.1038/s44318-025-00687-8
摘要
Sperm aging impacts male fertility and offspring health, highlighting the need for reliable aging biomarkers to guide reproductive decisions. However, the molecular determinants of sperm fitness during aging remain ill-defined. Here, we profiled sperm small non-coding RNAs (sncRNAs) using PANDORA-seq, which overcomes RNA modification-induced detection bias to capture previously undetectable sncRNA species associated with mouse and human spermatozoa throughout the lifespan. We identified an "aging cliff" in mouse sperm RNA profiles-a sharp age-specific transition marked by significant shifts in genomic and mitochondrial tRNA-derived small RNAs (tsRNAs) and rRNA-derived small RNAs (rsRNAs). Notably, rsRNAs in mouse sperm heads exhibited a transformative length shift, with longer rsRNAs increasing and shorter ones decreasing with age, suggesting altered biogenesis or processing with age. Remarkably, this sperm head-specific shift in rsRNA length was consistently observed in two independent human aging cohorts. Moreover, transfecting a combination of tsRNAs and rsRNAs resembling the RNA species in aged sperm was able to induce transcriptomic changes in mouse embryonic stem cells, impacting metabolism and neurodegeneration pathways, mirroring the phenotypes observed in offspring fathered by aged sperm. These findings provide novel insights into longitudinal dynamics of sncRNAs during sperm aging, highlighting an rsRNA length shift conserved in mice and humans.
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