DNA polymerase epsilon binds histone H3.1-H4 and recruits MORC1 to mediate meiotic heterochromatin condensation.

Proc Natl Acad Sci U S A

State Key Laboratory of Genetic Engineering, Ministry of Education Key Laboratory of Biodiversity Sciences and Ecological Engineering, Institute of Plant Biology, School of Life Sciences, Fudan University, Shanghai 200438, China.

Published: October 2022

AI Article Synopsis

  • Heterochromatin is crucial for maintaining the stability of genomes in eukaryotes, but how it forms during meiosis is not well understood.
  • A study reveals that the POL2A subunit of DNA polymerase epsilon is necessary for the correct formation of meiotic heterochromatin, specifically through its interactions with MORC1 and histone proteins.
  • The findings suggest that POL2A's two distinct domains are involved in organizing meiotic heterochromatin, indicating that its functions extend beyond just DNA replication and may be similar across different species like animals and plants.

Article Abstract

Heterochromatin is essential for genomic integrity and stability in eukaryotes. The mechanisms that regulate meiotic heterochromatin formation remain largely undefined. Here, we show that the catalytic subunit (POL2A) of DNA polymerase epsilon (POL ε) is required for proper formation of meiotic heterochromatin. The POL2A N terminus interacts with the GHKL adenosine triphosphatase (ATPase) MORC1 (Microrchidia 1), and POL2A is required for MORC1's localization on meiotic heterochromatin. Mutations affecting the POL2A N terminus cause aberrant morphology of meiotic heterochromatin, which is also observed in . Moreover, the POL2A C-terminal zinc finger domain (ZF1) specifically binds to histone H3.1-H4 dimer or tetramer and is important for meiotic heterochromatin condensation. Interestingly, we also found similar H3.1-binding specificity for the mouse counterpart. Together, our results show that two distinct domains of POL2A, ZF1 and N terminus bind H3.1-H4 and recruit MORC1, respectively, to induce a continuous process of meiotic heterochromatin organization. These activities expand the functional repertoire of POL ε beyond its classic role in DNA replication and appear to be conserved in animals and plants.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9618065PMC
http://dx.doi.org/10.1073/pnas.2213540119DOI Listing

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