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Reference - PMID:25375240 - The kinetochore protein Kis1/Eic1/Mis19 ensures the integrity of mitotic spindles through maintenance of kinetochore factors Mis6/CENP-I and CENP-A.

Reference summary

PubMed ID
PMID:25375240
Title
The kinetochore protein Kis1/Eic1/Mis19 ensures the integrity of mitotic spindles through maintenance of kinetochore factors Mis6/CENP-I and CENP-A.
Authors
Hirai H, Arai K, Kariyazono R, Yamamoto M, Sato M
Citation
PLoS One 2014;9(11):e111905
Publication year
2014
Abstract
Microtubules play multiple roles in a wide range of cellular phenomena, including cell polarity establishment and chromosome segregation. A number of microtubule regulators have been identified, including microtubule-associated proteins and kinases, and knowledge of these factors has contributed to our molecular understanding of microtubule regulation of each relevant cellular process. The known regulators, however, are insufficient to explain how those processes are linked to one another, underscoring the need to identify additional regulators. To find such novel mechanisms and microtubule regulators, we performed a screen that combined genetics and microscopy for fission yeast mutants defective in microtubule organization. We isolated approximately 900 mutants showing defects in either microtubule organization or the nuclear envelope, and these mutants were classified into 12 categories. We particularly focused on one mutant, kis1, which displayed spindle defects in early mitosis. The kis1 mutant frequently failed to assemble a normal bipolar spindle. The responsible gene encoded a kinetochore protein, Mis19 (also known as Eic1), which localized to the interface of kinetochores and spindle poles. We also found that the inner kinetochore proteins Mis6/CENP-I and Cnp1/CENP-A were delocalized from kinetochores in the kis1 cells and that kinetochore-microtubule attachment was defective. Another mutant, mis6, also displayed similar spindle defects. We conclude that Kis1 is required for inner kinetochore organization, through which Kis1 ensures kinetochore-microtubule attachment and spindle integrity. Thus, we propose an unexpected relationship between inner kinetochore organization and spindle integrity.

Annotation

GO biological process

GO:0034080 - CENP-A containing chromatin assembly

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GO cellular component

GO:0034506 - chromosome, centromeric core domain

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GO:0000776 - kinetochore

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Multi-locus phenotype

FYPO:0004396 - normal mitotic spindle elongation

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FYPO:0002060 - viable vegetative cell population

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Single locus phenotype

FYPO:0003304 - abnormal mitotic spindle midzone assembly

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FYPO:0006175 - abnormal protein localization to centromere during mitotic metaphase

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FYPO:0006174 - abolished mitotic spindle elongation during anaphase B

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FYPO:0000634 - abolished protein localization to centromere during vegetative growth

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FYPO:0001270 - complete but unequal mitotic sister chromatid segregation

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FYPO:0005215 - decreased protein localization to kinetochore during mitotic M phase

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FYPO:0002638 - increased activation of mitotic spindle assembly checkpoint

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FYPO:0001489 - inviable vegetative cell

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FYPO:0002061 - inviable vegetative cell population

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FYPO:0006172 - mitotic spindle collapse without elongation during anaphase B

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FYPO:0002574 - normal protein localization to centromere during vegetative growth

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FYPO:0000732 - short bipolar mitotic spindle

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