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相关论文: Kinesin Is an Evolutionarily Fine-Tuned Molecular …

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Conventional kinesin is a homodimeric motor protein that is capable of walking unidirectionally along a cytoskeletal filament. While previous experiments indicated unyielding unidirectionality against an opposing load up to the so-called…

生物物理 · 物理学 2015-05-13 Wenwei Zheng , Dagong Fan , Min Feng , ZhisongWang

Conventional kinesin is a homodimeric motor protein that unidirectionally transports organelles along filamentous microtubule (MT) by hydrolyzing ATP molecules. This study shows that the load modulations of ATP turnover and head diffusion…

生物物理 · 物理学 2009-07-13 Dagong Fan , Wenwei Zheng , Ruizheng Hou , Fuli Li , Zhisong Wang

Two headed motor proteins, such as kinesin and dynein, hidrolyze environmental ATP in order to propel unidirectionally along cytoskeletal filaments such as microtubules. In the case of kinesin, protein heads bind primarily on the alpha…

统计力学 · 物理学 2007-05-23 G. P. Tsironis , K. Lindenberg

Kinesin-1 is an ATP-driven, two-headed motor protein that transports intracellular cargoes along microtubule. Based on recent experimental observations, we formulate a mechanochemical model for it, in which forward/backward/futile cycle of…

生物物理 · 物理学 2021-12-30 Beibei Shen , Yunxin Zhang

Conventional kinesin is a motor protein, which is able to walk along a microtubule processively. The exact mechanism of the stepping motion and force generation of kinesin is still far from clear. In this paper we argue that neck linker…

生物物理 · 物理学 2009-01-25 Andras Czovek , Gergely J. Szollosi , Imre Derenyi

The origin of biological motion can be traced back to the function of molecular motor proteins. Cytoplasmic dynein and kinesin transport organelles within our cells moving along a polymeric filament, the microtubule. The motion of the…

统计力学 · 物理学 2015-06-25 Imre Derenyi , Tamas Vicsek

The cytoskeleton is an active composite of filamentous proteins that dictates diverse mechanical properties and processes in eukaryotic cells by generating forces and autonomously restructuring itself. Enzymatic motors that act on the…

Kinesins are processive motor proteins that move along microtubules in a stepwise manner, and their motion is powered by the hydrolysis of ATP. Recent experiments have investigated the coupling between the individual steps of single kinesin…

软凝聚态物质 · 物理学 2009-11-10 Anatoly B. Kolomeisky , Evgeny B. Stukalin , Alex A. Popov

Conventional kinesin is a two-headed homodimeric motor protein, which is able to walk along microtubules processively by hydrolyzing ATP. Its neck linkers, which connect the two motor domains and can undergo a docking/undocking transition,…

生物大分子 · 定量生物学 2015-05-27 András Czövek , Gergely J Szöllősi , Imre Derényi

The kinesin superfamily of motor proteins is a major driver of anterograde transport of vesicles and organelles within eukaryotic cells via microtubules. Numerous studies have elucidated the step-size, velocities, forces, and navigation…

生物大分子 · 定量生物学 2024-10-07 Mason Grieb , Nimisha Krishnan , Jennifer L. Ross

Among the multiple steps constituting the kinesin's mechanochemical cycle, one of the most interesting events is observed when kinesins move an 8-nm step from one microtubule (MT)-binding site to another. The stepping motion that occurs…

软凝聚态物质 · 物理学 2009-11-13 Changbong Hyeon , José N. Onuchic

Kinesin and related motor proteins utilize ATP fuel to propel themselves along the external surface of microtubules in a processive and directional fashion. We show that the observed step-like motion is possible through time varying charge…

生物大分子 · 定量生物学 2007-05-23 A. Ciudad , J. M. Sancho , G. P. Tsironis

The molecular motor protein kinesin plays a key role in fundamental cellular processes such as intracellular transport, mitotic spindle formation, and cytokinesis, with important implications for neurodegenerative and cancer disease…

生物大分子 · 定量生物学 2014-11-18 B. D. Jacobson , L. J. Herskowitz , S. J. Koch , S. R. Atlas

Motor proteins display widely different stepping patterns as they move on microtubule tracks, from the deterministic linear or helical motion performed by the protein kinesin to the uncoordinated random steps made by dynein. How these…

亚细胞过程 · 定量生物学 2015-09-09 Zsolt Bertalan , Zoe Budrikis , Caterina A. M. La Porta , Stefano Zapperi

An inchworm processive mechanism is proposed to explain the motion of dimeric molecular motors such as kinesin. We present here preliminary results for this mechanism focusing on observables like mean velocity, coupling ratio and efficiency…

生物大分子 · 定量生物学 2009-11-13 A. Ciudad , J. M. Sancho , A. M. Lacasta

Kinesin is a molecular motor that transports cargo along microtubules. The results of many {\it in vitro} experiments on kinesin-1 are described by kinetic models \cite{Clancy11} in which one transition corresponds to the forward motion and…

统计力学 · 物理学 2018-05-30 Gert Knoops , Carlo Vanderzande

Molecular motor proteins such as Myosin V, Dynein or Kinesin are no ratchets, at least not with a flashing asymmetric potential; the crucial asymmetry is in the dynamical activity. We make that explicit in terms of a simple Markov model,…

统计力学 · 物理学 2015-09-11 Christian Maes , Winny O'Kelly de Galway

Intracellular transport of vesicular cargos, organelles, and other macromolecules is an essential process to move large items through a crowded, and inhomogeneous cellular environment. In an effort to dissect the fundamental effects of…

生物大分子 · 定量生物学 2014-09-12 Leslie Conway , Jennifer L. Ross

Kinesin motors have been studied extensively both experimentally and theoretically. However, the microscopic mechanism of the processive movement of kinesin is still an open question. In this paper, we propose a hand-over-hand model for the…

生物大分子 · 定量生物学 2009-11-10 Ping Xie , Shuo-Xing Dou , Peng-Ye Wang

Fueled by the hydrolysis of ATP, the motor protein kinesin literally walks on two legs along the biopolymer microtubule. The number of accidental backsteps that kinesin takes appears to be much larger than what one would expect given the…

亚细胞过程 · 定量生物学 2009-11-13 M. Bier , F. J. Cao
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