CTCF-anchored chromatin loop dynamics during human meiosis.

IF 4.5 1区 生物学 Q1 BIOLOGY BMC Biology Pub Date : 2025-03-20 DOI:10.1186/s12915-025-02181-3
Vera B Kaiser, Colin A Semple
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Abstract

Background: During meiosis, the mammalian genome is organised within chromatin loops, which facilitate synapsis, crossing over and chromosome segregation, setting the stage for recombination events and the generation of genetic diversity. Chromatin looping is thought to play a major role in the establishment of cross overs during prophase I of meiosis, in diploid early primary spermatocytes. However, chromatin conformation dynamics during human meiosis are difficult to study experimentally, due to the transience of each cell division and the difficulty of obtaining stage-resolved cell populations. Here, we employed a machine learning framework trained on single cell ATAC-seq and RNA-seq data to predict CTCF-anchored looping during spermatogenesis, including cell types at different stages of meiosis.

Results: We find dramatic changes in genome-wide looping patterns throughout meiosis: compared to pre-and-post meiotic germline cell types, loops in meiotic early primary spermatocytes are more abundant, more variable between individual cells, and more evenly spread throughout the genome. In preparation for the first meiotic division, loops also include longer stretches of DNA, encompassing more than half of the total genome. These loop structures then influence the rate of recombination initiation and resolution as cross overs. In contrast, in later mature sperm stages, we find evidence of genome compaction, with loops being confined to the telomeric ends of the chromosomes.

Conclusion: Overall, we find that chromatin loops do not orchestrate the gene expression dynamics seen during spermatogenesis, but loops do play important roles in recombination, influencing the positions of DNA breakage and cross over events.

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人类减数分裂过程中 CTCF 锚定染色质环的动态变化
背景:在减数分裂期间,哺乳动物基因组在染色质环内组织,这促进了突触,交叉和染色体分离,为重组事件和遗传多样性的产生奠定了基础。染色质环被认为在二倍体早期初级精母细胞减数分裂前期I期交叉的建立中起主要作用。然而,人类减数分裂过程中的染色质构象动力学很难进行实验研究,因为每次细胞分裂都是短暂的,而且很难获得阶段分辨的细胞群。在这里,我们采用了单细胞ATAC-seq和RNA-seq数据训练的机器学习框架来预测精子发生过程中ctcf锚定的环,包括减数分裂不同阶段的细胞类型。结果:我们发现在整个减数分裂过程中全基因组环模式发生了巨大变化:与减数分裂前和减数分裂后的种系细胞类型相比,减数分裂早期初级精母细胞中的环更丰富,单个细胞之间的变化更大,并且在整个基因组中分布更均匀。在准备第一次减数分裂时,环也包括更长的DNA片段,包含了总基因组的一半以上。然后,这些环结构影响了交叉时重组起始和分解的速率。相比之下,在较晚的成熟精子阶段,我们发现基因组压实的证据,环被限制在染色体的端粒末端。结论:总的来说,我们发现染色质环在精子发生过程中并不协调基因表达动态,但环在重组中发挥重要作用,影响DNA断裂和交叉事件的位置。
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来源期刊
BMC Biology
BMC Biology 生物-生物学
CiteScore
7.80
自引率
1.90%
发文量
260
审稿时长
3 months
期刊介绍: BMC Biology is a broad scope journal covering all areas of biology. Our content includes research articles, new methods and tools. BMC Biology also publishes reviews, Q&A, and commentaries.
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