Selectivity and transport in aquaporins from molecular simulation studies

被引:5
|
作者
Padhi, Siladitya [1 ]
Priyakumar, U. Deva [2 ]
机构
[1] Tata Consultancy Serv Ltd, TCS Innovat Labs Hyderabad, Div Life Sci, Hyderabad, India
[2] Int Inst Informat Technol, Ctr Computat Nat Sci & Bioinformat, Hyderabad, India
来源
AQUAPORIN REGULATION | 2020年 / 112卷
关键词
ADDITIVE FORCE-FIELD; WATER PERMEATION; STRUCTURAL DETERMINANTS; PROTEIN INTERACTIONS; PROTON EXCLUSION; SIDE-CHAIN; DYNAMICS; CHANNEL; MECHANISM; PERMEABILITY;
D O I
10.1016/bs.vh.2019.10.001
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The transport of water through aquaporins is a dynamic process that involves rapid-movement of a chain of water molecules through the pore of the aquaporin. Structures of aquaporins solved using X-ray crystallography have provided some insights into how water is transported through these channels, and how certain structural features of the pore might help exclude other solutes from passing through the pore. However, such techniques provide only a static picture, and a dynamic picture of the transport and selectivity mechanism at work in aquaporins is possible with molecular dynamics (MD) simulations. In MD simulations, the forces between the different atoms in a system are computed, and the atoms are then allowed to move under the influence of these forces. This allows the sampling of different conformations of the molecule being studied, including conformations that are crucial in driving biological phenomena like water transport. Simulation studies have provided insights into a number of aspects of aquaporins, including the role of the asparagine-proline-alanine (NPA) motif and the aromatic/arginine (ar/R) constriction, water transport mechanism, mechanisms defining the selectivity of the channel, interaction with lipids, response to external electric field, and binding of putative drugmolecules. This chapter provides a brief review of the current status of computational modeling of aquaporins using MD simulations. Initially, a brief account of force fields and MD simulations is presented followed by an account of how MD simulations have contributed to further our understanding of different aspects of aquaporins.
引用
收藏
页码:47 / 70
页数:24
相关论文
共 50 条
  • [21] Molecular aspects of aquaporins
    Li, Suchun
    Li, Chunling
    Wang, Weidong
    VASOPRESSIN, 2020, 113 : 129 - 181
  • [22] Molecular Biology of Aquaporins
    Li, Chunling
    Wang, Weidong
    AQUAPORINS, 2017, 969 : 1 - 34
  • [23] TrpAQP: Computer simulations to determine the selectivity of aquaporins
    Dynowski, M.
    Ludewig, U.
    HIGH PERFORMANCE COMPUTING IN SCIENCE AND ENGINEERING '06, 2007, : 187 - 197
  • [24] Molecular dynamics study of substrate permeation and selectivity in E. coli aquaporins GlpF and AqpZ
    Wang, Y
    Schulten, K
    Tajkhorshid, E
    BIOPHYSICAL JOURNAL, 2005, 88 (01) : 152A - 152A
  • [25] Molecular physiology of water transport: Aquaporin nomenclature workshop. Mammalian aquaporins
    Agre, P
    BIOLOGY OF THE CELL, 1997, 89 (5-6) : 255 - 257
  • [26] Water transport in aquaporins: osmotic permeability matrix analysis of molecular dynamics simulations
    Hashido, Masanori
    Kidera, Akinori
    Ikeguchi, Mitsunori
    BIOPHYSICAL JOURNAL, 2007, 93 (02) : 373 - 385
  • [27] Molecular dynamics simulations of the transport of reactive oxygen species by mammalian and plant aquaporins
    Cordeiro, Rodrigo M.
    BIOCHIMICA ET BIOPHYSICA ACTA-GENERAL SUBJECTS, 2015, 1850 (09): : 1786 - 1794
  • [28] Aquaporins mediated arsenite transport in plants: Molecular mechanisms and applications in crop improvement
    Deng, Fenglin
    Liu, Xue
    Chen, Yanshan
    Rathinasabapathi, Bala
    Rensing, Christopher
    Chen, Jian
    Bi, Jue
    Xiang, Ping
    Ma, Lena Q.
    CRITICAL REVIEWS IN ENVIRONMENTAL SCIENCE AND TECHNOLOGY, 2020, 50 (16) : 1613 - 1639
  • [29] Thermodynamic and transport properties of carbon dioxide from molecular simulation
    Nieto-Draghi, Carlos
    de Bruin, Theodorus
    Perez-Pellitero, Javier
    Avalos, Josep Bonet
    Mackie, Allan D.
    JOURNAL OF CHEMICAL PHYSICS, 2007, 126 (06):
  • [30] Proton transport in carbonic anhydrase: Insights from molecular simulation
    Maupin, C. Mark
    Voth, Gregory A.
    BIOCHIMICA ET BIOPHYSICA ACTA-PROTEINS AND PROTEOMICS, 2010, 1804 (02): : 332 - 341