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1.
J Cell Biol ; 223(9)2024 Sep 02.
Article in English | MEDLINE | ID: mdl-38869473

ABSTRACT

At each cell division, nanometer-scale motors and microtubules give rise to the micron-scale spindle. Many mitotic motors step helically around microtubules in vitro, and most are predicted to twist the spindle in a left-handed direction. However, the human spindle exhibits only slight global twist, raising the question of how these molecular torques are balanced. Here, we find that anaphase spindles in the epithelial cell line MCF10A have a high baseline twist, and we identify factors that both increase and decrease this twist. The midzone motors KIF4A and MKLP1 are together required for left-handed twist at anaphase, and we show that KIF4A generates left-handed torque in vitro. The actin cytoskeleton also contributes to left-handed twist, but dynein and its cortical recruitment factor LGN counteract it. Together, our work demonstrates that force generators regulate twist in opposite directions from both within and outside the spindle, preventing strong spindle twist during chromosome segregation.


Subject(s)
Anaphase , Kinesins , Microtubules , Spindle Apparatus , Humans , Spindle Apparatus/metabolism , Kinesins/metabolism , Kinesins/genetics , Microtubules/metabolism , Dyneins/metabolism , Dyneins/genetics , Torque , Chromosome Segregation , Actin Cytoskeleton/metabolism , Microtubule-Associated Proteins/metabolism , Microtubule-Associated Proteins/genetics
2.
bioRxiv ; 2023 Dec 10.
Article in English | MEDLINE | ID: mdl-38405786

ABSTRACT

At each cell division, nanometer-scale motors and microtubules give rise to the micron-scale spindle. Many mitotic motors step helically around microtubules in vitro, and most are predicted to twist the spindle in a left-handed direction. However, the human spindle exhibits only slight global twist, raising the question of how these molecular torques are balanced. Here, using lattice light sheet microscopy, we find that anaphase spindles in the epithelial cell line MCF10A have a high baseline twist, and we identify factors that both increase and decrease this twist. The midzone motors KIF4A and MKLP1 are redundantly required for left-handed twist at anaphase, and we show that KIF4A generates left-handed torque in vitro. The actin cytoskeleton also contributes to left-handed twist, but dynein and its cortical recruitment factor LGN counteract it. Together, our work demonstrates that force generators regulate twist in opposite directions from both within and outside the spindle, preventing strong spindle twist during chromosome segregation.

3.
Science ; 375(6578): 326-331, 2022 01 21.
Article in English | MEDLINE | ID: mdl-35050657

ABSTRACT

Microtubule (MT)-associated protein 7 (MAP7) is a required cofactor for kinesin-1-driven transport of intracellular cargoes. Using cryo-electron microscopy and single-molecule imaging, we investigated how MAP7 binds MTs and facilitates kinesin-1 motility. The MT-binding domain (MTBD) of MAP7 bound MTs as an extended α helix between the protofilament ridge and the site of lateral contact. Unexpectedly, the MTBD partially overlapped with the binding site of kinesin-1 and inhibited its motility. However, by tethering kinesin-1 to the MT, the projection domain of MAP7 prevented dissociation of the motor and facilitated its binding to available neighboring sites. The inhibitory effect of the MTBD dominated as MTs became saturated with MAP7. Our results reveal biphasic regulation of kinesin-1 by MAP7 in the context of their competitive binding to MTs.


Subject(s)
Kinesins , Microtubule-Associated Proteins , Microtubules , Humans , Binding Sites , Binding, Competitive , Cryoelectron Microscopy , Dyneins/chemistry , Dyneins/metabolism , Kinesins/chemistry , Kinesins/metabolism , Microtubule-Associated Proteins/chemistry , Microtubule-Associated Proteins/metabolism , Microtubules/metabolism , Models, Biological , Models, Molecular , Protein Binding , Protein Conformation, alpha-Helical , Protein Domains , Tubulin/chemistry , Tubulin/metabolism
4.
Annu Rev Biophys ; 50: 549-574, 2021 05 06.
Article in English | MEDLINE | ID: mdl-33957056

ABSTRACT

Dyneins make up a family of AAA+ motors that move toward the minus end of microtubules. Cytoplasmic dynein is responsible for transporting intracellular cargos in interphase cells and mediating spindle assembly and chromosome positioning during cell division. Other dynein isoforms transport cargos in cilia and power ciliary beating. Dyneins were the least studied of the cytoskeletal motors due to challenges in the reconstitution of active dynein complexes in vitro and the scarcity of high-resolution methods for in-depth structural and biophysical characterization of these motors. These challenges have been recently addressed, and there have been major advances in our understanding of the activation, mechanism, and regulation of dyneins. This review synthesizes the results of structural and biophysical studies for each class of dynein motors. We highlight several outstanding questions about the regulation of bidirectional transport along microtubules and the mechanisms that sustain self-coordinated oscillations within motile cilia.


Subject(s)
Cilia/chemistry , Dyneins/chemistry , Animals , Biological Transport , Cilia/metabolism , Dyneins/genetics , Dyneins/metabolism , Humans , Intracellular Space/chemistry , Intracellular Space/metabolism , Microtubules/chemistry
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