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Coordination of histone chaperones for parental histone segregation and epigenetic inheritance. | LitMetric

AI Article Synopsis

  • Chromatin-based epigenetic memory depends on how parental histone H3-H4 tetramers are distributed in new DNA strands, with Mcm2 and Dpb3/4 playing key roles in this process.
  • A study using fission yeast revealed that a mutation in Mcm2 significantly hinders heterochromatin inheritance, while mutations in Dpb3/4 only slightly affect it; interestingly, mutations in both can stabilize inheritance.
  • The FACT histone chaperone is crucial for transferring parental histones to both strands, working with Mcm2 and Dpb3/4 to ensure proper density and distribution during DNA replication, which is essential for maintaining epigenetic inheritance.

Article Abstract

Chromatin-based epigenetic memory relies on the accurate distribution of parental histone H3-H4 tetramers to newly replicated DNA strands. Mcm2, a subunit of the replicative helicase, and Dpb3/4, subunits of DNA polymerase ε, govern parental histone H3-H4 deposition to the lagging and leading strands, respectively. However, their contribution to epigenetic inheritance remains controversial. Here, using fission yeast heterochromatin inheritance systems that eliminate interference from initiation pathways, we show that a Mcm2 histone binding mutation severely disrupts heterochromatin inheritance, while mutations in Dpb3/4 cause only moderate defects. Surprisingly, simultaneous mutations of Mcm2 and Dpb3/4 stabilize heterochromatin inheritance. eSPAN (enrichment and sequencing of protein-associated nascent DNA) analyses confirmed the conservation of Mcm2 and Dpb3/4 functions in parental histone H3-H4 segregation, with their combined absence showing a more symmetric distribution of parental histone H3-H4 than either single mutation alone. Furthermore, the FACT histone chaperone regulates parental histone transfer to both strands and collaborates with Mcm2 and Dpb3/4 to maintain parental histone H3-H4 density and faithful heterochromatin inheritance. These results underscore the importance of both symmetric distribution of parental histones and their density at daughter strands for epigenetic inheritance and unveil distinctive properties of parental histone chaperones during DNA replication.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10982699PMC
http://dx.doi.org/10.1101/gad.351278.123DOI Listing

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