Merck
CN
  • Microtubule-sliding modules based on kinesins EG5 and PRC1-dependent KIF4A drive human spindle elongation.

Microtubule-sliding modules based on kinesins EG5 and PRC1-dependent KIF4A drive human spindle elongation.

Developmental cell (2021-04-29)
Kruno Vukušić, Ivana Ponjavić, Renata Buđa, Patrik Risteski, Iva M Tolić
摘要

Proper chromosome segregation into two future daughter cells requires the mitotic spindle to elongate in anaphase. However, although some candidate proteins are implicated in this process, the molecular mechanism that drives spindle elongation in human cells is unknown. Using combined depletion and inactivation assays together with CRISPR technology to explore redundancy between multiple targets, we discovered that the force-generating mechanism of spindle elongation consists of EG5/kinesin-5 together with the PRC1-dependent motor KIF4A/kinesin-4, with contribution from kinesin-6 and kinesin-8. Disruption of EG5 and KIF4A leads to total failure of chromosome segregation due to blocked spindle elongation, despite poleward chromosome motion. Tubulin photoactivation, stimulated emission depletion (STED), and expansion microscopy show that perturbation of both proteins impairs midzone microtubule sliding without affecting microtubule stability. Thus, two mechanistically distinct sliding modules, one based on a self-sustained and the other on a crosslinker-assisted motor, power the mechanism that drives spindle elongation in human cells.

材料
货号
品牌
产品描述

Sigma-Aldrich
蛋白酶 K 来源于林伯氏白色念球菌, buffered aqueous glycerol solution, for molecular biology, ≥800 units/mL
Sigma-Aldrich
四甲基乙二胺, BioReagent, for molecular biology, ≥99% (GC)
Sigma-Aldrich
丙烯酸钠, 97%
Sigma-Aldrich
戊二醛 溶液, Grade I, 50% in H2O, specially purified for use as an electron microscopy fixative or other sophisticated use