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Rules of engagement for condensins and cohesins guide mitotic chromosome formation.
Samejima, Kumiko; Gibcus, Johan H; Abraham, Sameer; Cisneros-Soberanis, Fernanda; Samejima, Itaru; Beckett, Alison J; Puceková, Nina; Abad, Maria Alba; Medina-Pritchard, Bethan; Paulson, James R; Xie, Linfeng; Jeyaprakash, A Arockia; Prior, Ian A; Mirny, Leonid A; Dekker, Job; Goloborodko, Anton; Earnshaw, William C.
Afiliación
  • Samejima K; Wellcome Centre for Cell Biology, Institute of Cell Biology, University of Edinburgh; Edinburgh, UK.
  • Gibcus JH; Department of Systems Biology, University of Massachusetts Chan Medical School; Worcester, USA.
  • Abraham S; Institute for Medical Engineering and Science and Department of Physics, Massachusetts Institute of Technology; Cambridge, USA.
  • Cisneros-Soberanis F; Wellcome Centre for Cell Biology, Institute of Cell Biology, University of Edinburgh; Edinburgh, UK.
  • Samejima I; Wellcome Centre for Cell Biology, Institute of Cell Biology, University of Edinburgh; Edinburgh, UK.
  • Beckett AJ; Department of Molecular and Clinical Cancer Medicine, University of Liverpool; Liverpool, UK.
  • Puceková N; Wellcome Centre for Cell Biology, Institute of Cell Biology, University of Edinburgh; Edinburgh, UK.
  • Abad MA; Wellcome Centre for Cell Biology, Institute of Cell Biology, University of Edinburgh; Edinburgh, UK.
  • Medina-Pritchard B; Wellcome Centre for Cell Biology, Institute of Cell Biology, University of Edinburgh; Edinburgh, UK.
  • Paulson JR; Department of Chemistry, University of Wisconsin-Oshkosh; Oshkosh, USA.
  • Xie L; Department of Chemistry, University of Wisconsin-Oshkosh; Oshkosh, USA.
  • Jeyaprakash AA; Gene Center Munich, Ludwig-Maximilians-Universität München; Munich, Germany.
  • Prior IA; Wellcome Centre for Cell Biology, Institute of Cell Biology, University of Edinburgh; Edinburgh, UK.
  • Mirny LA; Department of Molecular and Clinical Cancer Medicine, University of Liverpool; Liverpool, UK.
  • Dekker J; Institute for Medical Engineering and Science and Department of Physics, Massachusetts Institute of Technology; Cambridge, USA.
  • Goloborodko A; Department of Systems Biology, University of Massachusetts Chan Medical School; Worcester, USA.
  • Earnshaw WC; Howard Hughes Medical Institute; Chevy Chase, USA.
bioRxiv ; 2024 Apr 30.
Article en En | MEDLINE | ID: mdl-38659940
ABSTRACT
During mitosis, interphase chromatin is rapidly converted into rod-shaped mitotic chromosomes. Using Hi-C, imaging, proteomics and polymer modeling, we determine how the activity and interplay between loop-extruding SMC motors accomplishes this dramatic transition. Our work reveals rules of engagement for SMC complexes that are critical for allowing cells to refold interphase chromatin into mitotic chromosomes. We find that condensin disassembles interphase chromatin loop organization by evicting or displacing extrusive cohesin. In contrast, condensin bypasses cohesive cohesins, thereby maintaining sister chromatid cohesion while separating the sisters. Studies of mitotic chromosomes formed by cohesin, condensin II and condensin I alone or in combination allow us to develop new models of mitotic chromosome conformation. In these models, loops are consecutive and not overlapping, implying that condensins do not freely pass one another but stall upon encountering each other. The dynamics of Hi-C interactions and chromosome morphology reveal that during prophase loops are extruded in vivo at ~1-3 kb/sec by condensins as they form a disordered discontinuous helical scaffold within individual chromatids.

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Idioma: En Revista: BioRxiv Año: 2024 Tipo del documento: Article País de afiliación: Reino Unido

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Idioma: En Revista: BioRxiv Año: 2024 Tipo del documento: Article País de afiliación: Reino Unido