Investigation of motility of mirotubule-besed motor proteins by simulation system on periodic ratchet

碩士 === 國立清華大學 === 物理系 === 102 ===   The motilities of microtubule-based motor proteins, kinesin and dynein, are investigated with vibrating ratchet-based simulation systems. These two motor proteins are reported being able to transport cargos along microtubule. Most dynamic features are established...

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Main Authors: Hsiao, Yi-Feng, 蕭逸風
Other Authors: Chou, Ya-Chang
Format: Others
Language:en_US
Published: 2014
Online Access:http://ndltd.ncl.edu.tw/handle/55156404655736877981
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spelling ndltd-TW-102NTHU51982082016-03-09T04:31:13Z http://ndltd.ncl.edu.tw/handle/55156404655736877981 Investigation of motility of mirotubule-besed motor proteins by simulation system on periodic ratchet 利用週期性棘齒上的模擬系統探討馬達蛋白在維管上的能動性 Hsiao, Yi-Feng 蕭逸風 碩士 國立清華大學 物理系 102   The motilities of microtubule-based motor proteins, kinesin and dynein, are investigated with vibrating ratchet-based simulation systems. These two motor proteins are reported being able to transport cargos along microtubule. Most dynamic features are established with reasonable explanations for the simulating kinesin and dynein on the asymmetric ratchet plate which is similar to the outer surface of microtubule. Kinesin motor is composed of the head domain binding to microtubule, the tail domain holding cargos, and the stalk domain connecting the two heads and the tail domains. We propose a new dynamic model for kinesin. According to the recent AFM results that the stalk domain lies sideward to on microtubule, we consider the force is generated by the randomly moving stalk on microtubule. The force produces greater tension on the trailing head than the leading head. The trailing head can be randomly triggered to flip over the leading head, processing a similar hand-over-hand motion. Otherwise, the inchworm type of motion is also possible under the influence of stochastic force.   As for dynein, in our model, the force is believed to be originated from the collision between the linker and the outer surface of microtubule. The bidirectional motion, processive stepping, the velocity-force relation, and the ATP concentration dependence of velocity for dynein on microtubule are demonstrated with the simulation system. The ratchet-based simulation systems for microtubule-based motor proteins give an alternative approach to investigate the motility of kinesin and dynein. Chou, Ya-Chang 周亞謙 2014 學位論文 ; thesis 46 en_US
collection NDLTD
language en_US
format Others
sources NDLTD
description 碩士 === 國立清華大學 === 物理系 === 102 ===   The motilities of microtubule-based motor proteins, kinesin and dynein, are investigated with vibrating ratchet-based simulation systems. These two motor proteins are reported being able to transport cargos along microtubule. Most dynamic features are established with reasonable explanations for the simulating kinesin and dynein on the asymmetric ratchet plate which is similar to the outer surface of microtubule. Kinesin motor is composed of the head domain binding to microtubule, the tail domain holding cargos, and the stalk domain connecting the two heads and the tail domains. We propose a new dynamic model for kinesin. According to the recent AFM results that the stalk domain lies sideward to on microtubule, we consider the force is generated by the randomly moving stalk on microtubule. The force produces greater tension on the trailing head than the leading head. The trailing head can be randomly triggered to flip over the leading head, processing a similar hand-over-hand motion. Otherwise, the inchworm type of motion is also possible under the influence of stochastic force.   As for dynein, in our model, the force is believed to be originated from the collision between the linker and the outer surface of microtubule. The bidirectional motion, processive stepping, the velocity-force relation, and the ATP concentration dependence of velocity for dynein on microtubule are demonstrated with the simulation system. The ratchet-based simulation systems for microtubule-based motor proteins give an alternative approach to investigate the motility of kinesin and dynein.
author2 Chou, Ya-Chang
author_facet Chou, Ya-Chang
Hsiao, Yi-Feng
蕭逸風
author Hsiao, Yi-Feng
蕭逸風
spellingShingle Hsiao, Yi-Feng
蕭逸風
Investigation of motility of mirotubule-besed motor proteins by simulation system on periodic ratchet
author_sort Hsiao, Yi-Feng
title Investigation of motility of mirotubule-besed motor proteins by simulation system on periodic ratchet
title_short Investigation of motility of mirotubule-besed motor proteins by simulation system on periodic ratchet
title_full Investigation of motility of mirotubule-besed motor proteins by simulation system on periodic ratchet
title_fullStr Investigation of motility of mirotubule-besed motor proteins by simulation system on periodic ratchet
title_full_unstemmed Investigation of motility of mirotubule-besed motor proteins by simulation system on periodic ratchet
title_sort investigation of motility of mirotubule-besed motor proteins by simulation system on periodic ratchet
publishDate 2014
url http://ndltd.ncl.edu.tw/handle/55156404655736877981
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