Protein permeation through an electrically tunable membrane

被引:9
作者
Jou, Ining A. [1 ]
Melnikov, Dmitriy V. [1 ]
Gracheva, Maria E. [1 ]
机构
[1] Clarkson Univ, Dept Phys, Potsdam, NY 13699 USA
基金
美国国家科学基金会;
关键词
protein filtering; Brownian dynamics; electro-osmotic flow; electrically tunable membrane; protein translocation; nanopore; INSULIN CRYSTALS; NANOPORES; SIMULATION; DIFFUSION; TRANSPORT; PDB2PQR; MODELS;
D O I
10.1088/0957-4484/27/20/205201
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Protein filtration is important in many fields of science and technology such as medicine, biology, chemistry, and engineering. Recently, protein separation and filtering with nanoporous membranes has attracted interest due to the possibility of fast separation and high throughput volume. This, however, requires understanding of the protein's dynamics inside and in the vicinity of the nanopore. In this work, we utilize a Brownian dynamics approach to study the motion of the model protein insulin in the membrane-electrolyte electrostatic potential. We compare the results of the atomic model of the protein with the results of a coarse-grained and a single-bead model, and find that the coarse-grained representation of protein strikes the best balance between the accuracy of the results and the computational effort required. Contrary to common belief, we find that to adequately describe the protein, a single-bead model cannot be utilized without a significant effort to tabulate the simulation parameters. Similar to results for nanoparticle dynamics, our findings also indicate that the electric field and the electro-osmotic flow due to the applied membrane and electrolyte biases affect the capture and translocation of the biomolecule by either attracting or repelling it to or from the nanopore. Our computational model can also be applied to other types of proteins and separation conditions.
引用
收藏
页数:9
相关论文
共 36 条
[1]   THE STRUCTURE OF 2ZN PIG INSULIN CRYSTALS AT 1.5-A RESOLUTION [J].
BAKER, EN ;
BLUNDELL, TL ;
CUTFIELD, JF ;
CUTFIELD, SM ;
DODSON, EJ ;
DODSON, GG ;
HODGKIN, DMC ;
HUBBARD, RE ;
ISAACS, NW ;
REYNOLDS, CD ;
SAKABE, K ;
SAKABE, N ;
VIJAYAN, NM .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY OF LONDON SERIES B-BIOLOGICAL SCIENCES, 1988, 319 (1195) :369-&
[2]   ATOMIC POSITIONS IN RHOMBOHEDRAL 2-ZINC INSULIN CRYSTALS [J].
BLUNDELL, TL ;
CUTFIELD, JF ;
CUTFIELD, SM ;
DODSON, EJ ;
DODSON, GG ;
HODGKIN, DC ;
MERCOLA, DA ;
VIJAYAN, M .
NATURE, 1971, 231 (5304) :506-&
[3]   MONOMERIC INSULINS OBTAINED BY PROTEIN ENGINEERING AND THEIR MEDICAL IMPLICATIONS [J].
BRANGE, J ;
RIBEL, U ;
HANSEN, JF ;
DODSON, G ;
HANSEN, MT ;
HAVELUND, S ;
MELBERG, SG ;
NORRIS, F ;
NORRIS, K ;
SNEL, L ;
SORENSEN, AR ;
VOIGT, HO .
NATURE, 1988, 333 (6174) :679-682
[4]   ON THE CALCULATION OF FIELD-DEPENDENT RELAXATION-TIMES FROM THE NONINERTIAL LANGEVIN EQUATION [J].
COFFEY, WT ;
KALMYKOV, YP ;
QUINN, KP .
JOURNAL OF CHEMICAL PHYSICS, 1992, 96 (07) :5471-5481
[5]   Protein Transport through a Narrow Solid-State Nanopore at High Voltage: Experiments and Theory [J].
Cressiot, Benjamin ;
Oukhaled, Abdelghani ;
Patriarche, Gilles ;
Pastoriza-Gallego, Manuela ;
Betton, Jean-Michel ;
Auvray, Loic ;
Muthukumar, Murugappan ;
Bacri, Laurent ;
Pelta, Juan .
ACS NANO, 2012, 6 (07) :6236-6243
[6]   PDB2PQR: an automated pipeline for the setup of Poisson-Boltzmann electrostatics calculations [J].
Dolinsky, TJ ;
Nielsen, JE ;
McCammon, JA ;
Baker, NA .
NUCLEIC ACIDS RESEARCH, 2004, 32 :W665-W667
[7]   PDB2PQR: expanding and upgrading automated preparation of biomolecular structures for molecular simulations [J].
Dolinsky, Todd J. ;
Czodrowski, Paul ;
Li, Hui ;
Nielsen, Jens E. ;
Jensen, Jan H. ;
Klebe, Gerhard ;
Baker, Nathan A. .
NUCLEIC ACIDS RESEARCH, 2007, 35 :W522-W525
[8]  
E-Muniz A, 2012, ACS NANO, V7, P7556
[9]   Brownian dynamics simulation of rigid particles of arbitrary shape in external fields [J].
Fernandes, MX ;
de la Torre, JG .
BIOPHYSICAL JOURNAL, 2002, 83 (06) :3039-3048
[10]   Electrically Facilitated Translocations of Proteins through Silicon Nitride Nanopores: Conjoint and Competitive Action of Diffusion, Electrophoresis, and Electroosmosis [J].
Firnkes, Matthias ;
Pedone, Daniel ;
Knezevic, Jelena ;
Doeblinger, Markus ;
Rant, Ulrich .
NANO LETTERS, 2010, 10 (06) :2162-2167