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首页> 外文期刊>International Journal of Quantum Chemistry >Dynamics of meso and thermo citrate synthases with implicit solvation
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Dynamics of meso and thermo citrate synthases with implicit solvation

机译:含隐溶剂化的中柠檬酸热柠檬酸合酶的动力学

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The dynamics of hydration of meso and thermo citrate synthases has been investigated using the EEF1 methodology implemented with the CHARNM program. The native enzymes are composed of two identical subunits, each divided into a small and large domain. The dynamics behavior of both enzymes at 30 degrees C and 60 degrees C has been compared. The results of simulations show that during the hydration process, each subunit follows a different pathway of hydration, in spite of the identical sequence. The hydrated structures were compared with the crystalline structure, and the root mean square deviation (RMSD) of each residue along the trajectory was calculated. The regions with larger and smaller mobility were identified. In particular, helices belonging to the small domain are more mobile than those of the large domain. In contrast, the residues that constitute the active site show a much lower displacement compared with the crystalline structure. Hydration free energy calculations point out that Thermoplasma acidophilum citrate synthase (TCS) is more stable than chicken citrate synthase (CCS), at high temperatures. Such result has been ascribed to the higher number of superficial charges in the thermophilic homologue, which stabilizes the enzyme, while the mesophilic homologue denatures. These results are in accord with the experimental found that TCS keeps activity at temperatures farther apart from the catalysis regular temperature than the CCS. (c) 2005 Wiley Periodicals, Inc.
机译:使用由CHARNM程序实现的EEF1方法研究了介孔柠檬酸和柠檬酸热合酶的水合动力学。天然酶由两个相同的亚基组成,每个亚基分为一个小域和一个大域。比较了两种酶在30摄氏度和60摄氏度下的动力学行为。模拟结果表明,在水合过程中,尽管序列相同,每个亚基仍遵循不同的水合途径。将水合结构与晶体结构进行比较,并计算沿轨迹的每个残基的均方根偏差(RMSD)。确定了具有较大和较小迁移率的区域。特别是,属于小域的螺旋比大域的螺旋更具移动性。相反,与晶体结构相比,构成活性位点的残基显示出低得多的位移。水合自由能计算指出,在高温下嗜酸嗜热菌柠檬酸合酶(TCS)比鸡柠檬酸合酶(CCS)更稳定。该结果归因于嗜热同源物中较高数量的表面电荷,其使酶稳定,而嗜温同源物变性。这些结果与实验发现相符,TCS在比CCS更远离催化规则温度的温度下保持活性。 (c)2005年Wiley Periodicals,Inc.

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