机构:[1]Laboratory for Conservation and Utilization of Bio-Resources, Yunnan University, Kunming 650091, PR China[2]Laboratory ofMolecular Cardiology, Department of Cardiology, The First Affiliated Hospital of Kunming Medical University, Kunming 650032, PRChina昆明医科大学附属第一医院[3]Department of Applied Mathematics, Yunnan Agricultural University, Kunming 650201, PR China[4]Key Laboratory forTumor Molecular Biology of High Education in Yunnan Province, School of Life Sciences, Yunnan University, Kunming 650223, PRChina[5]Human Genetics Center and Division of Biostatistics, School of Public Health, The University of Texas Health ScienceCenter, Houston, TX, 77030, USA
Molecular dynamics (MD) simulations of a subtilisin-like serine protease VPR from the psychrophilic marine bacterium Vibrio sp. PA-44 and its mesophilic homologue, proteinase K (PRK), have been performed for 20ns at four different temperatures (300, 373, 473, and 573K). The comparative analyses of MD trajectories reveal that at almost all temperatures, VPR exhibits greater structural fluctuations/deviations, more unstable regular secondary structural elements, and higher global flexibility than PRK. Although these two proteases follow similar unfolding pathways at high temperatures, VPR initiates unfolding at a lower temperature and unfolds faster at the same high temperatures than PRK. These observations collectively indicate that VPR is less stable and more heat-labile than PRK. Analyses of the structural/geometrical properties reveal that, when compared to PRK, VPR has larger radius of gyration (Rg), less intramolecular contacts and hydrogen bonds (HBs), more protein-solvent HBs, and smaller burial of nonpolar area and larger exposure of polar area. These suggest that the increased flexibility of VPR would be most likely caused by its reduced intramolecular interactions and more favourable protein-solvent interactions arising from the larger exposure of the polar area, whereas the enhanced stability of PRK could be ascribed to its increased intramolecular interactions arising from the better optimized hydrophobicity. The factors responsible for the significant differences in local flexibility between these two proteases were also analyzed and ascertained. This study provides insights into molecular basis of thermostability of homologous serine proteases adapted to different temperatures.
基金:
National Natural Science Foundation of ChinaNational Natural Science Foundation of China [31160181, 31370715]; National Basic Research Program of ChinaNational Basic Research Program of China [2013CB127500]; Program for Excellent Young Talents, Yunnan University, China [XT412003]
第一作者机构:[1]Laboratory for Conservation and Utilization of Bio-Resources, Yunnan University, Kunming 650091, PR China
共同第一作者:
通讯作者:
通讯机构:[1]Laboratory for Conservation and Utilization of Bio-Resources, Yunnan University, Kunming 650091, PR China[4]Key Laboratory forTumor Molecular Biology of High Education in Yunnan Province, School of Life Sciences, Yunnan University, Kunming 650223, PRChina
推荐引用方式(GB/T 7714):
Du Xing,Sang Peng,Xia Yuan-Ling,et al.Comparative thermal unfolding study of psychrophilic and mesophilic subtilisin-like serine proteases by molecular dynamics simulations[J].JOURNAL OF BIOMOLECULAR STRUCTURE & DYNAMICS.2017,35(7):1500-1517.doi:10.1080/07391102.2016.1188155.
APA:
Du, Xing,Sang, Peng,Xia, Yuan-Ling,Li, Yi,Liang, Jing...&Liu, Shu-Qun.(2017).Comparative thermal unfolding study of psychrophilic and mesophilic subtilisin-like serine proteases by molecular dynamics simulations.JOURNAL OF BIOMOLECULAR STRUCTURE & DYNAMICS,35,(7)
MLA:
Du, Xing,et al."Comparative thermal unfolding study of psychrophilic and mesophilic subtilisin-like serine proteases by molecular dynamics simulations".JOURNAL OF BIOMOLECULAR STRUCTURE & DYNAMICS 35..7(2017):1500-1517