Drosophila SUMM4 complex couples insulator function and DNA replication control

Author:

Andreyeva Evgeniya N1,Emelyanov Alexander V1,Nevil Markus2,Sun Lu3,Vershilova Elena1,Hill Christina A4,Keogh Michael-C3ORCID,Duronio Robert J4567,Skoultchi Arthur I1,Fyodorov Dmitry V1ORCID

Affiliation:

1. Department of Cell Biology, Albert Einstein College of Medicine

2. UNC-SPIRE, University of North Carolina

3. EpiCypher

4. Integrative Program for Biological and Genome Sciences, University of North Carolina at Chapel Hill

5. Lineberger Comprehensive Cancer Center, University of North Carolina

6. Department of Biology, University of North Carolina

7. Department of Genetics, University of North Carolina

Abstract

Asynchronous replication of chromosome domains during S phase is essential for eukaryotic genome function, but the mechanisms establishing which domains replicate early versus late in different cell types remain incompletely understood. Intercalary heterochromatin domains replicate very late in both diploid chromosomes of dividing cells and in endoreplicating polytene chromosomes where they are also underreplicated. Drosophila SNF2-related factor SUUR imparts locus-specific underreplication of polytene chromosomes. SUUR negatively regulates DNA replication fork progression; however, its mechanism of action remains obscure. Here, we developed a novel method termed MS-Enabled Rapid protein Complex Identification (MERCI) to isolate a stable stoichiometric native complex SUMM4 that comprises SUUR and a chromatin boundary protein Mod(Mdg4)-67.2. Mod(Mdg4) stimulates SUUR ATPase activity and is required for a normal spatiotemporal distribution of SUUR in vivo. SUUR and Mod(Mdg4)-67.2 together mediate the activities of gypsy insulator that prevent certain enhancer–promoter interactions and establish euchromatin–heterochromatin barriers in the genome. Furthermore, SuUR or mod(mdg4) mutations reverse underreplication of intercalary heterochromatin. Thus, SUMM4 can impart late replication of intercalary heterochromatin by attenuating the progression of replication forks through euchromatin/heterochromatin boundaries. Our findings implicate a SNF2 family ATP-dependent motor protein SUUR in the insulator function, reveal that DNA replication can be delayed by a chromatin barrier, and uncover a critical role for architectural proteins in replication control. They suggest a mechanism for the establishment of late replication that does not depend on an asynchronous firing of late replication origins.

Funder

National Institutes of Health

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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