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Ion Binding Energies Determining Functional Transport of C1C Proteins 被引量:1

Ion Binding Energies Determining Functional Transport of C1C Proteins
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摘要 The ClC-type proteins, a large family of chloride transport proteins ubiquitously expressed in biological organisms, have been extensively studied for decades. Biological function of ClC proteins can be reflected by analyzing the binding situation of C1- ions. We investigate ion binding properties of C1C-ecl protein with the atomic molecular dynamics simulation approach. The calculated electrostatic binding energy results indicate that C1- at the central binding site Seen has more binding stability than the internal binding site Sint. Quantitative comparison between the latest experimental heat release data isothermal titration calorimetry (ITC) and our calculated results demonstrates that chloride ions prefer to bind at Scen than Si.t in the wild-type C1C-ecl structure and prefer to bind at Sext and Scen than Sint in mutant E148A/E148Q structures. Even though the chloride ions make less contribution to heat release when binding to Sint and are relatively unstable in the Cl- pathway, they are still part contributors for the Cl- functional transport. This work provides a guide rule to estimate the importance of Cl- at the binding sites and how chloride ions have influences on the function of C1C proteins. The ClC-type proteins, a large family of chloride transport proteins ubiquitously expressed in biological organisms, have been extensively studied for decades. Biological function of ClC proteins can be reflected by analyzing the binding situation of C1- ions. We investigate ion binding properties of C1C-ecl protein with the atomic molecular dynamics simulation approach. The calculated electrostatic binding energy results indicate that C1- at the central binding site Seen has more binding stability than the internal binding site Sint. Quantitative comparison between the latest experimental heat release data isothermal titration calorimetry (ITC) and our calculated results demonstrates that chloride ions prefer to bind at Scen than Si.t in the wild-type C1C-ecl structure and prefer to bind at Sext and Scen than Sint in mutant E148A/E148Q structures. Even though the chloride ions make less contribution to heat release when binding to Sint and are relatively unstable in the Cl- pathway, they are still part contributors for the Cl- functional transport. This work provides a guide rule to estimate the importance of Cl- at the binding sites and how chloride ions have influences on the function of C1C proteins.
出处 《Chinese Physics Letters》 SCIE CAS CSCD 2014年第6期241-245,共5页 中国物理快报(英文版)
基金 Supported by the National Natural Science Foundation of China under Grant Nos 11304123 and 31270761, China Scholarship Council Foundation, and Scientific Research Foundation of Jianghan University under Grant No 2013016.
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