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Large deviation theory for the kinetics and energetics of turnover of enzyme catalysis in a chemiostatic flow

Publication Type : Journal Article

Publisher : Journal of Chemical Physics

Source : Journal of Chemical Physics, 148, 174104, 2018

Url : https://pubs.aip.org/aip/jcp/article-abstract/148/17/174104/195693/Large-deviation-theory-for-the-kinetics-and?redirectedFrom=fulltext

Campus : Coimbatore

School : School of Artificial Intelligence

Center : Center for Computational Engineering and Networking

Year : 2018

Abstract : In the framework of large deviation theory, we have characterized nonequilibrium turnover statistics of enzyme catalysis in a chemiostatic flow with externally controllable parameters, like substrate injection rate and mechanical force. In the kinetics of the process, we have shown the fluctuation theorems in terms of the symmetry of the scaled cumulant generating function (SCGF) in the transient and steady state regime and a similar symmetry rule is reflected in a large deviation rate function (LDRF) as a property of the dissipation rate through boundaries. Large deviation theory also gives the thermodynamic force of a nonequilibrium steady state, as is usually recorded experimentally by a single molecule technique, which plays a key role responsible for the dynamical symmetry of the SCGF and LDRF. Using some special properties of the Legendre transformation, here, we have provided a relation between the fluctuations of fluxes and dissipation rates, and among them, the fluctuation of the turnover rate is routinely estimated but the fluctuation in the dissipation rate is yet to be characterized for small systems. Such an enzymatic reaction flow system can be a very good testing ground to systematically understand the rare events from the large deviation theory which is beyond fluctuation theorem and central limit theorem.

Cite this Research Publication : Large deviation theory for the kinetics and energetics of turnover of enzyme catalysis in a chemiostatic flow, B. Das and G. Gangopadhyay, Journal of Chemical Physics, 148, 174104, 2018

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