Kinesin's neck-linker determines its ability to navigate obstacles on the microtubule surface
about
Axonal transport: cargo-specific mechanisms of motility and regulationNavigation Strategies of Motor Proteins on Decorated TracksFamily-specific Kinesin Structures Reveal Neck-linker Length Based on Initiation of the Coiled-coil.Phosphoregulation of Tau modulates inhibition of kinesin-1 motility.3D motion of vesicles along microtubules helps them to circumvent obstacles in cellsRegulation of microtubule-based transport by MAP4Processivity of the kinesin-2 KIF3A results from rear head gating and not front head gatingEffects of Obstacles on the Dynamics of Kinesins, Including Velocity and Run Length, Predicted by a Model of Two Dimensional Motion.Kinesin-2 KIF3AC and KIF3AB Can Drive Long-Range Transport along MicrotubulesThe Kinesin-1 Chemomechanical Cycle: Stepping Toward a Consensus.Microtubule Defects Influence Kinesin-Based Transport In Vitro.Intraflagellar transport: mechanisms of motor action, cooperation, and cargo delivery.The Kinesin-8 Kip3 switches protofilaments in a sideward random walk asymmetrically biased by force.Kinesin-1 motors can circumvent permanent roadblocks by side-shifting to neighboring protofilaments.A motor relay on ciliary tracks.Formation of helical membrane tubes around microtubules by single-headed kinesin KIF1A.Heterodimerization of Kinesin-2 KIF3AB Modulates Entry into the Processive Run.Functional differentiation of cooperating kinesin-2 motors orchestrates cargo import and transport in C. elegans cilia.Tau directs intracellular trafficking by regulating the forces exerted by kinesin and dynein teams.Acetylated Microtubules Are Preferentially Bundled Leading to Enhanced Kinesin-1 Motility.Kinesin Processivity Is Determined by a Kinetic Race from a Vulnerable One-Head-Bound State.The axonal transport motor kinesin-2 navigates microtubule obstacles via protofilament switching.Motor Reattachment Kinetics Play a Dominant Role in Multimotor-Driven Cargo Transport.Identification of tail binding effect of kinesin-1 using an elastic network model.
P2860
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P2860
Kinesin's neck-linker determines its ability to navigate obstacles on the microtubule surface
description
2014 nî lūn-bûn
@nan
2014 թուականի Ապրիլին հրատարակուած գիտական յօդուած
@hyw
2014 թվականի ապրիլին հրատարակված գիտական հոդված
@hy
2014年の論文
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2014年論文
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2014年論文
@zh-hant
2014年論文
@zh-hk
2014年論文
@zh-mo
2014年論文
@zh-tw
2014年论文
@wuu
name
Kinesin's neck-linker determin ...... les on the microtubule surface
@ast
Kinesin's neck-linker determin ...... les on the microtubule surface
@en
Kinesin's neck-linker determin ...... es on the microtubule surface.
@nl
type
label
Kinesin's neck-linker determin ...... les on the microtubule surface
@ast
Kinesin's neck-linker determin ...... les on the microtubule surface
@en
Kinesin's neck-linker determin ...... es on the microtubule surface.
@nl
prefLabel
Kinesin's neck-linker determin ...... les on the microtubule surface
@ast
Kinesin's neck-linker determin ...... les on the microtubule surface
@en
Kinesin's neck-linker determin ...... es on the microtubule surface.
@nl
P2093
P2860
P1433
P1476
Kinesin's neck-linker determin ...... les on the microtubule surface
@en
P2093
Andrew R Thompson
Christopher L Berger
Derrick P McVicker
Gregory J Hoeprich
P2860
P304
P356
10.1016/J.BPJ.2014.02.034
P407
P577
2014-04-01T00:00:00Z