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Quantifying the Heat Dissipation from a Molecular Motor’s Transport Properties in Nonequilibrium Steady States
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  • 作者:Wonseok Hwang ; Changbong Hyeon
  • 刊名:The Journal of Physical Chemistry Letters
  • 出版年:2017
  • 出版时间:January 5, 2017
  • 年:2017
  • 卷:8
  • 期:1
  • 页码:250-256
  • 全文大小:489K
  • ISSN:1948-7185
文摘
Theoretical analysis, which maps single-molecule time trajectories of a molecular motor onto unicyclic Markov processes, allows us to evaluate the heat dissipated from the motor and to elucidate its dependence on the mean velocity and diffusivity. Unlike passive Brownian particles in equilibrium, the velocity and diffusion constant of molecular motors are closely inter-related. In particular, our study makes it clear that the increase of diffusivity with the heat production is a natural outcome of active particles, which is reminiscent of the recent experimental premise that the diffusion of an exothermic enzyme is enhanced by the heat released from its own catalytic turnover. Compared with freely diffusing exothermic enzymes, kinesin-1, whose dynamics is confined on one-dimensional tracks, is highly efficient in transforming conformational fluctuations into a locally directed motion, thus displaying a significantly higher enhancement in diffusivity with its turnover rate. Putting molecular motors and freely diffusing enzymes on an equal footing, our study offers a thermodynamic basis to understand the heat-enhanced self-diffusion of exothermic enzymes.

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