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Functional exploration of heterotrimeric kinesin-II in IFT and ciliary length control in Chlamydomonas.


ABSTRACT: Heterodimeric motor organization of kinesin-II is essential for its function in anterograde IFT in ciliogenesis. However, the underlying mechanism is not well understood. In addition, the anterograde IFT velocity varies significantly in different organisms, but how this velocity affects ciliary length is not clear. We show that in Chlamydomonas motors are only stable as heterodimers in vivo, which is likely the key factor for the requirement of a heterodimer for IFT. Second, chimeric CrKinesin-II with human kinesin-II motor domains functioned in vitro and in vivo, leading to a ~ 2.8 fold reduced anterograde IFT velocity and a similar fold reduction in IFT injection rate that supposedly correlates with ciliary assembly activity. However, the ciliary length was only mildly reduced (~15%). Modeling analysis suggests a nonlinear scaling relationship between IFT velocity and ciliary length that can be accounted for by limitation of the motors and/or its ciliary cargoes, e.g. tubulin.

SUBMITTER: Li S 

PROVIDER: S-EPMC7652414 | biostudies-literature | 2020 Oct

REPOSITORIES: biostudies-literature

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Functional exploration of heterotrimeric kinesin-II in IFT and ciliary length control in <i>Chlamydomonas</i>.

Li Shufen S   Wan Kirsty Y KY   Chen Wei W   Tao Hui H   Liang Xin X   Pan Junmin J  

eLife 20201028


Heterodimeric motor organization of kinesin-II is essential for its function in anterograde IFT in ciliogenesis. However, the underlying mechanism is not well understood. In addition, the anterograde IFT velocity varies significantly in different organisms, but how this velocity affects ciliary length is not clear. We show that in <i>Chlamydomonas</i> motors are only stable as heterodimers in vivo, which is likely the key factor for the requirement of a heterodimer for IFT. Second, chimeric CrKi  ...[more]

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