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A mitotic chromatin phase transition prevents perforation by microtubules.
Schneider, Maximilian W G; Gibson, Bryan A; Otsuka, Shotaro; Spicer, Maximilian F D; Petrovic, Mina; Blaukopf, Claudia; Langer, Christoph C H; Batty, Paul; Nagaraju, Thejaswi; Doolittle, Lynda K; Rosen, Michael K; Gerlich, Daniel W.
Afiliação
  • Schneider MWG; Institute of Molecular Biotechnology of the Austrian Academy of Sciences, Vienna BioCenter, Vienna, Austria. maximilian.schneider@imba.oeaw.ac.at.
  • Gibson BA; Vienna BioCenter PhD Program, Doctoral School of the University of Vienna and Medical University of Vienna, Vienna, Austria. maximilian.schneider@imba.oeaw.ac.at.
  • Otsuka S; Department of Biophysics and Howard Hughes Medical Institute, University of Texas Southwestern Medical Center, Dallas, USA.
  • Spicer MFD; Max Perutz Labs, a joint venture of the University of Vienna and the Medical University of Vienna, Vienna BioCenter, Vienna, Austria.
  • Petrovic M; Institute of Molecular Biotechnology of the Austrian Academy of Sciences, Vienna BioCenter, Vienna, Austria.
  • Blaukopf C; Vienna BioCenter PhD Program, Doctoral School of the University of Vienna and Medical University of Vienna, Vienna, Austria.
  • Langer CCH; Institute of Molecular Biotechnology of the Austrian Academy of Sciences, Vienna BioCenter, Vienna, Austria.
  • Batty P; Vienna BioCenter PhD Program, Doctoral School of the University of Vienna and Medical University of Vienna, Vienna, Austria.
  • Nagaraju T; Institute of Molecular Biotechnology of the Austrian Academy of Sciences, Vienna BioCenter, Vienna, Austria.
  • Doolittle LK; Institute of Molecular Biotechnology of the Austrian Academy of Sciences, Vienna BioCenter, Vienna, Austria.
  • Rosen MK; Institute of Molecular Biotechnology of the Austrian Academy of Sciences, Vienna BioCenter, Vienna, Austria.
  • Gerlich DW; Vienna BioCenter PhD Program, Doctoral School of the University of Vienna and Medical University of Vienna, Vienna, Austria.
Nature ; 609(7925): 183-190, 2022 09.
Article em En | MEDLINE | ID: mdl-35922507
Dividing eukaryotic cells package extremely long chromosomal DNA molecules into discrete bodies to enable microtubule-mediated transport of one genome copy to each of the newly forming daughter cells1-3. Assembly of mitotic chromosomes involves DNA looping by condensin4-8 and chromatin compaction by global histone deacetylation9-13. Although condensin confers mechanical resistance to spindle pulling forces14-16, it is not known how histone deacetylation affects material properties and, as a consequence, segregation mechanics of mitotic chromosomes. Here we show how global histone deacetylation at the onset of mitosis induces a chromatin-intrinsic phase transition that endows chromosomes with the physical characteristics necessary for their precise movement during cell division. Deacetylation-mediated compaction of chromatin forms a structure dense in negative charge and allows mitotic chromosomes to resist perforation by microtubules as they are pushed to the metaphase plate. By contrast, hyperacetylated mitotic chromosomes lack a defined surface boundary, are frequently perforated by microtubules and are prone to missegregation. Our study highlights the different contributions of DNA loop formation and chromatin phase separation to genome segregation in dividing cells.
Assuntos

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Cromatina / Microtúbulos / Mitose Idioma: En Ano de publicação: 2022 Tipo de documento: Article País de afiliação: Áustria

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Cromatina / Microtúbulos / Mitose Idioma: En Ano de publicação: 2022 Tipo de documento: Article País de afiliação: Áustria