克隆谱系示踪和单细胞转录组学揭示小鼠胎肝造血干细胞的功能异质性

生物 造血 转录组 干细胞 谱系(遗传) 胎儿 转录调控 骨髓 细胞生物学 基因 遗传学 造血干细胞 免疫学 谱系标记 转录因子 句号(音乐) 基因表达谱 核糖核酸 基因表达调控 分子生物学
作者
Zhang Man,Ni Yanli,Ni Yanli,Di Liu,Xiang Dong,Gaoke Liu,Zhou Jie,Lan Yu,Zongcheng Li,Zongcheng Li
出处
期刊:Zoological Research [Science Press]
卷期号:47 (5): 1613-1625
标识
DOI:10.24272/j.issn.2095-8137.2026.321
摘要

The relationship between lineage output and transcriptional features of hematopoietic stem cells (HSCs) has been reported in adult bone marrow, yet it remains unclear in fetal liver, given their distinct developmental stage and microenvironment. Here, we systematically characterized the functions of E14.5 mouse fetal liver HSCs by lentiviral barcode labeling followed by transplantation, with subsequent single‑cell RNA sequencing and clonal analysis performed on HSCs derived from recipient bone marrow. We identified three HSC subtypes based on the lineage bias, with myeloid-biased and balanced subtypes predominating. Importantly, within the same subtype, HSCs and their progeny share several transcriptional programs, and these programs show minimal overlap between subtypes. We term the retention of subtype-specific transcriptional features across lineages as ‘transcriptional persistence’. Notably, this phenomenon was not observed in adult bone marrow. Alternatively, classification by progeny output activity revealed the presence of low-output and high-output subtypes within fetal liver HSCs. Although these two subtypes showed no significant difference in stemness features, they still exhibited distinct transcriptional features and signaling activation states, which also differed from their counterparts in bone marrow, indicating that the biological characteristics of HSCs with different output activities vary by developmental stage. Of note, in both fetal liver and adult bone marrow, transcriptional persistence showed no obvious correlation with output activity, suggesting a specific coupling relationship between transcriptional persistence and lineage bias. Collectively, our study provides a clonal-resolution view of fetal liver HSC heterogeneity, enhancing our understanding of HSC diversity across different developmental stages.
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