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Reference - PMID:31089172 - Kinesin-6 Klp9 plays motor-dependent and -independent roles in collaboration with Kinesin-5 Cut7 and the microtubule crosslinker Ase1 in fission yeast.

Reference summary

PubMed ID
PMID:31089172
Title
Kinesin-6 Klp9 plays motor-dependent and -independent roles in collaboration with Kinesin-5 Cut7 and the microtubule crosslinker Ase1 in fission yeast.
Authors
Yukawa M, Okazaki M, Teratani Y, Furuta K, Toda T
Citation
Sci Rep 2019 May 14;9(1):7336
Publication year
2019
Abstract
Bipolar mitotic spindles play a critical part in accurate chromosome segregation. During late mitosis, spindle microtubules undergo drastic elongation in a process called anaphase B. Two kinesin motors, Kinesin-5 and Kinesin-6, are thought to generate outward forces to drive spindle elongation, and the microtubule crosslinker Ase1/PRC1 maintains structural integrity of antiparallel microtubules. However, how these three proteins orchestrate this process remains unknown. Here we explore the functional interplay among fission yeast Kinesin-5/Cut7, Kinesin-6/Klp9 and Ase1. Using total internal reflection fluorescence microscopy, we show that Klp9 forms homotetramers and that Klp9 is a processive plus end-directed motor. klp9Δase1Δ is synthetically lethal. Surprisingly, this lethality is not ascribable to the defective motor activity of Klp9; instead, it is dependent upon a nuclear localisation signal and coiled coil domains within the non-motor region. We isolated a cut7 mutant (cut7-122) that displays temperature sensitivity only in the absence of Klp9. Interestingly, cut7-122 alone is impaired in spindle elongation during anaphase B, and furthermore, cut7-122klp9Δ double mutants exhibit additive defects. We propose that Klp9 plays dual roles during anaphase B; one is motor-dependent that collaborates with Cut7 in force generation, while the other is motor-independent that ensures structural integrity of spindle microtubules together with Ase1.

Annotation

GO cellular component

GO:1990023 - mitotic spindle midzone

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GO:0005654 - nucleoplasm

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GO molecular function

GO:0008574 - plus-end-directed microtubule motor activity

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Multi-locus phenotype

FYPO:0005343 - decreased rate of mitotic spindle elongation during anaphase B

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Genotypes:

FYPO:0002061 - inviable vegetative cell population

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FYPO:0002060 - viable vegetative cell population

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Single locus phenotype

FYPO:0003350 - abolished protein localization to mitotic spindle midzone during anaphase B

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FYPO:0006918 - abolished protein localization to nucleoplasm during mitotic interphase

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FYPO:0004753 - abolished protein localization to nucleus during mitotic interphase

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FYPO:0004833 - decreased protein localization to mitotic spindle midzone during anaphase B

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FYPO:0006644 - decreased protein localization to mitotic spindle midzone, with protein distributed along spindle, during anaphase B

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FYPO:0003268 - decreased rate of mitotic spindle elongation

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Genotypes:

FYPO:0005343 - decreased rate of mitotic spindle elongation during anaphase B

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Genotypes:

FYPO:0002061 - inviable vegetative cell population

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FYPO:0000324 - mitotic metaphase/anaphase transition delay

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FYPO:0006917 - normal onset of mitotic metaphase/anaphase transition

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FYPO:0004692 - normal protein localization to mitotic spindle midzone

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FYPO:0006919 - normal protein localization to nucleus during mitotic interphase

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Subunit composition

PBO:0015242 - homomeric(4)

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