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单细胞表观基因组学和转录组学分析揭示了潜在的调节有丝分裂/减数分裂转换的转录因子。

Single cell epigenomic and transcriptomic analysis uncovers potential transcription factors regulating mitotic/meiotic switch.

机构信息

College of Life Sciences, Qingdao Agricultural University, Qingdao, 266109, China.

Department of Biomedicine and Prevention, University of Rome Tor Vergata, Rome, 00133, Italy.

出版信息

Cell Death Dis. 2023 Feb 17;14(2):134. doi: 10.1038/s41419-023-05671-w.

Abstract

In order to reveal the complex mechanism governing the mitotic/meiotic switch in female germ cells at epigenomic and genomic levels, we examined the chromatin accessibility (scATAC-seq) and the transcriptional dynamics (scRNA-seq) in germ cells of mouse embryonic ovary between E11.5 to 13.5 at single-cell resolution. Adopting a strict transcription factors (TFs) screening framework that makes it easier to understand the single-cell chromatin signature and a TF interaction algorithm that integrates the transcript levels, chromatin accessibility, and motif scores, we identified 14 TFs potentially regulating the mitotic/meiotic switch, including TCFL5, E2F1, E2F2, E2F6, E2F8, BATF3, SP1, FOS, FOXN3, VEZF1, GBX2, CEBPG, JUND, and TFDP1. Focusing on TCFL5, we constructed Tcfl5 mice which showed significantly reduced fertility and found that decreasing TCFL5 expression in cultured E12.5 ovaries by RNAi impaired meiotic progression from leptotene to zygotene. Bioinformatics analysis of published results of the embryonic germ cell transcriptome and the finding that in these cells central meiotic genes (Stra8, Tcfl5, Sycp3, and E2f2) possess open chromatin status already at the mitotic stage together with other features of TCFL5 (potential capability to interact with core TFs and activate meiotic genes, its progressive activation after preleptotene, binding sites in the promoter region of E2f2 and Sycp3), indicated extensive amplification of transcriptional programs associated to mitotic/meiotic switch with an important contribution of TCFL5. We conclude that the identified TFs, are involved in various stages of the mitotic/meiotic switch in female germ cells, TCFL5 primarily in meiotic progression. Further investigation on these factors might give a significant contribution to unravel the molecular mechanisms of this fundamental process of oogenesis and provide clues about pathologies in women such as primary ovarian insufficiency (POI) due at least in part to meiotic defects.

摘要

为了揭示雌性生殖细胞在表观基因组和基因组水平上有丝分裂/减数分裂转换的复杂机制,我们在单细胞分辨率下,研究了 E11.5 至 13.5 天的小鼠胚胎卵巢生殖细胞的染色质可及性(scATAC-seq)和转录动力学(scRNA-seq)。采用严格的转录因子(TFs)筛选框架,这使得更容易理解单细胞染色质特征,以及一种 TF 相互作用算法,该算法整合了转录水平、染色质可及性和基序分数,我们鉴定出 14 个潜在调节有丝分裂/减数分裂转换的 TFs,包括 TCFL5、E2F1、E2F2、E2F6、E2F8、BATF3、SP1、FOS、FOXN3、VEZF1、GBX2、CEBPG、JUND 和 TFDP1。我们重点关注 TCFL5,构建了 Tcfl5 小鼠,发现其生育能力显著降低,并且通过 RNAi 降低培养的 E12.5 卵巢中的 TCFL5 表达会损害从细线期到偶线期的减数分裂进程。对发表的胚胎生殖细胞转录组的生物信息学分析结果以及发现这些细胞中的中心减数分裂基因(Stra8、Tcfl5、Sycp3 和 E2f2)在有丝分裂阶段就已经具有开放的染色质状态,以及 TCFL5 的其他特征(与核心 TF 相互作用和激活减数分裂基因的潜在能力,其在preleptotene 之后的逐渐激活,E2f2 和 Sycp3 启动子区域的结合位点),表明与有丝分裂/减数分裂转换相关的转录程序广泛扩增,TCFL5 具有重要贡献。我们得出结论,鉴定出的 TFs 参与了雌性生殖细胞有丝分裂/减数分裂转换的各个阶段,TCFL5 主要参与减数分裂进程。对这些因素的进一步研究可能会对阐明卵子发生这一基本过程的分子机制做出重大贡献,并为女性的病理学提供线索,例如原发性卵巢功能不全(POI),至少部分原因是减数分裂缺陷。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/329f/9935506/b0325965e6d9/41419_2023_5671_Fig1_HTML.jpg

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