Suppressor mutation analysis combined with 3D modeling explains cohesin's capacity to hold and release DNA.
basic_science · Level V
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- Record sourced from PubMed, PMID 29735656.
- Also identified by DOI 10.1073/pnas.1803564115 and PMC identifier 6003501.
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Abstract
Cohesin is a fundamental protein complex that holds sister chromatids together. Separase protease cleaves a cohesin subunit Rad21/SCC1, causing the release of cohesin from DNA to allow chromosome segregation. To understand the functional organization of cohesin, we employed next-generation whole-genome sequencing and identified numerous extragenic suppressors that overcome either inactive separase/Cut1 or defective cohesin in the fission yeast <i>Schizosaccharomyces pombe</i> Unexpectedly, Cut1 is dispensable if suppressor mutations cause disorders of interfaces among essential cohesin subunits Psm1/SMC1, Psm3/SMC3, Rad21/SCC1, and Mis4/SCC2, the crystal structures of which suggest physical and functional impairment at the interfaces of Psm1/3 hinge, Psm1 head-Rad21, or Psm3 coiled coil-Rad21. Molecular-dynamics analysis indicates that the intermolecular β-sheets in the cohesin hinge of <i>cut1</i> suppressor mutants remain intact, but a large mobility change occurs at the coiled coil bound to the hinge. In contrast, suppressors of <i>rad21-K1</i> occur in either the head ATPase domains or the Psm3 coiled coil that interacts with Rad21. Suppressors of <i>mis4-G1326E</i> reside in the head of Psm3/1 or the intragenic domain of Mis4. These may restore the binding of cohesin to DNA. Evidence is provided that the head and hinge of SMC subunits are proximal, and that they coordinate to form arched coils that can hold or release DNA by altering the angles made by the arched coiled coils. By combining molecular modeling with suppressor sequence analysis, we propose a cohesin structure designated the "hold-and-release" model, which may be considered as an alternative to the prevailing "ring" model.
Medical subject headings
- Cell Cycle Proteins
- Chromosomal Proteins, Non-Histone
- DNA, Fungal
- Mutation
- Nuclear Proteins
- Phosphoproteins
- Schizosaccharomyces
- Schizosaccharomyces pombe Proteins