4.6 Article

Unraveling three-dimensional chromatin structural dynamics during spermatogonial differentiation

Journal

JOURNAL OF BIOLOGICAL CHEMISTRY
Volume 298, Issue 2, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.jbc.2021.101559

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Funding

  1. National Natural Science Foundation of China [31772605, 32002178]
  2. First-class University and Academic Program from Northwest AF University [Z102021906]
  3. Open Fund of Farm Animal Genetic Resources Exploration and Innovation Key Laboratory of Sichuan Province [SNDK-KF-201804]

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By analyzing porcine undifferentiated spermatogonia and differentiating spermatogonia, researchers found that differentiating spermatogonia exhibited less compact chromatin structural organization, weakened compartmentalization, and diminished topologically associating domains compared to undifferentiated spermatogonia. These findings suggest that the diminished higher-order chromatin architecture in meiotic cells may be preprogrammed in differentiating spermatogonia. The study also revealed the relationship between A/B compartments, topologically associating domains, and dynamic gene expression during spermatogonial differentiation, providing novel insights into mechanisms for SSC self-renewal and differentiation.
Spermatogonial stem cells (SSCs) are able to undergo both self-renewal and differentiation. Unlike self-renewal, which replenishes the SSC and progenitor pool, differentiation is an irreversible process committing cells to meiosis. Although the preparations for meiotic events in differentiating spermatogonia (Di-SG) are likely to be accompanied by alterations in chromatin structure, the three-dimensional chromatin architectural differences between SSCs and Di-SG, and the higher-order chromatin dynamics during spermatogonial differentiation, have not been systematically investigated. Here, we performed in situ high-throughput chromosome conformation capture, RNA-seq, and chromatin immunoprecipitation-sequencing analyses on porcine undifferentiated spermatogonia (which consist of SSCs and progenitors) and Di-SG. We identified that Di-SG exhibited less compact chromatin structural organization, weakened compartmentalization, and diminished topologically associating domains in comparison with undifferentiated spermatogonia, suggesting that diminished higher-order chromatin architecture in meiotic cells, as shown by recent reports, might be preprogrammed in Di-SG. Our data also revealed that A/B compartments, representing open or closed chromatin regions respectively, and topologically associating domains were related to dynamic gene expression during spermatogonial differentiation. Furthermore, we unraveled the contribution of promoter-enhancer interactions to pre meiotic transcriptional regulation, which has not been accomplished in previous studies due to limited cell input and resolution. Together, our study uncovered the three-dimensional chromatin structure of SSCs/progenitors and Di-SG, as well as the interplay between higher-order chromatin architecture and dynamic gene expression during spermatogonial differentiation. These findings provide novel insights into the mechanisms for SSC self-renewal and differentiation and have implications for diagnosis and treatment of male sub-/infertility.

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