The regulation of chromosome segregation via centromere loops.
Adenosine Triphosphatases
/ metabolism
Animals
Cell Cycle Proteins
/ metabolism
Chromosomal Proteins, Non-Histone
/ metabolism
Chromosome Segregation
/ physiology
DNA
/ metabolism
DNA-Binding Proteins
/ metabolism
Heterochromatin
/ metabolism
Humans
Kinetochores
/ physiology
Microtubules
/ metabolism
Mitosis
/ physiology
Multiprotein Complexes
/ metabolism
Neoplasms
/ metabolism
Phylogeny
Saccharomyces cerevisiae
/ physiology
Spindle Apparatus
/ metabolism
Cohesins
Centromere
DNA loops
chromosome segregation
cohesin
condensin
kinetochore
mitosis
pericentromere
Journal
Critical reviews in biochemistry and molecular biology
ISSN: 1549-7798
Titre abrégé: Crit Rev Biochem Mol Biol
Pays: England
ID NLM: 8903774
Informations de publication
Date de publication:
08 2019
08 2019
Historique:
pubmed:
2
10
2019
medline:
9
4
2020
entrez:
2
10
2019
Statut:
ppublish
Résumé
Biophysical studies of the yeast centromere have shown that the organization of the centromeric chromatin plays a crucial role in maintaining proper tension between sister kinetochores during mitosis. While centromeric chromatin has traditionally been considered a simple spring, recent work reveals the centromere as a multifaceted, tunable shock absorber. Centromeres can differ from other regions of the genome in their heterochromatin state, supercoiling state, and enrichment of structural maintenance of chromosomes (SMC) protein complexes. Each of these differences can be utilized to alter the effective stiffness of centromeric chromatin. In budding yeast, the SMC protein complexes condensin and cohesin stiffen chromatin by forming and cross-linking chromatin loops, respectively, into a fibrous structure resembling a bottlebrush. The high density of the loops compacts chromatin while spatially isolating the tension from spindle pulling forces to a subset of the chromatin. Paradoxically, the molecular crowding of chromatin via cohesin and condensin also causes an outward/poleward force. The structure allows the centromere to act as a shock absorber that buffers the variable forces generated by dynamic spindle microtubules. Based on the distribution of SMCs from bacteria to human and the conserved distance between sister kinetochores in a wide variety of organisms (0.4 to 1 micron), we propose that the bottlebrush mechanism is the foundational principle for centromere function in eukaryotes.
Identifiants
pubmed: 31573359
doi: 10.1080/10409238.2019.1670130
pmc: PMC6856439
mid: NIHMS1540972
doi:
Substances chimiques
Cell Cycle Proteins
0
Chromosomal Proteins, Non-Histone
0
DNA-Binding Proteins
0
Heterochromatin
0
Multiprotein Complexes
0
condensin complexes
0
DNA
9007-49-2
Adenosine Triphosphatases
EC 3.6.1.-
Types de publication
Journal Article
Review
Langues
eng
Sous-ensembles de citation
IM
Pagination
352-370Subventions
Organisme : NIGMS NIH HHS
ID : R37 GM032238
Pays : United States
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