Amino acids and proteins at ZnO-water interfaces in molecular dynamics simulations

被引:45
作者
Nawrocki, Grzegorz [1 ]
Cieplak, Marek [1 ]
机构
[1] Polish Acad Sci, Inst Phys, PL-02668 Warsaw, Poland
关键词
FORCE-FIELD; STATISTICAL-MECHANICS; ADSORPTION; BINDING; PEPTIDE; STABILITY; SURFACES;
D O I
10.1039/c3cp52198b
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
We determine potentials of the mean force for interactions of amino acids with four common surfaces of ZnO in aqueous solutions. The method involves all-atom molecular dynamics simulations combined with the umbrella sampling technique. The profiled nature of the density of water with the strongly adsorbed first layer affects the approach of amino acids to the surface and generates either repulsion or weak binding. The largest binding energy is found for tyrosine interacting with the surface in which the Zn ions are at the top. It is equal to 7 kJ mol(-1) which is comparable to that of the hydrogen bonds in a protein. This makes the adsorption of amino acids onto the ZnO surface much weaker than onto the well studied surface of gold. Under vacuum, binding energies are more than 40 times stronger (for one of the surfaces). The precise manner in which water molecules interact with a given surface influences the binding energies in a way that depends on the surface. Among the four considered surfaces the one with Zn at the top is recognized as binding almost all amino acids with an average binding energy of 2.60 kJ mol(-1). Another (O at the top) is non-binding for most amino acids. For binding situations the average energy is 0.66 kJ mol(-1). The remaining two surfaces bind nearly as many amino acids as they do not and the average binding energies are 1.46 and 1.22 kJ mol(-1). For all of the surfaces the binding energies vary between amino acids significantly: the dispersion in the range of 68-154% of the mean. A small protein is shown to adsorb onto ZnO only intermittently and with only a small deformation. Various adsorption events lead to different patterns in mobilities of amino acids within the protein.
引用
收藏
页码:13628 / 13636
页数:9
相关论文
共 49 条
  • [31] Stability of peptide (P1 and P2) binding to a graphene sheet via an all-atom to all-residue coarse-grained approach
    Pandey, R. B.
    Kuang, Zhifeng
    Farmer, B. L.
    Kim, Steve S.
    Naik, Rajesh R.
    [J]. SOFT MATTER, 2012, 8 (35) : 9101 - 9109
  • [32] A reactive force field (ReaxFF) for zinc oxide
    Raymand, David
    van Duin, Adri C. T.
    Baudin, Micael
    Hermansson, Kersti
    [J]. SURFACE SCIENCE, 2008, 602 (05) : 1020 - 1031
  • [33] Rossler U., 1999, LANDOLT BORNSTEIN
  • [34] Molecular biomimetics: nanotechnology through biology
    Sarikaya, M
    Tamerler, C
    Jen, AKY
    Schulten, K
    Baneyx, F
    [J]. NATURE MATERIALS, 2003, 2 (09) : 577 - 585
  • [35] Mechanical Strength of 17 134 Model Proteins and Cysteine Slipknots
    Sikora, Mateusz
    Sulkowska, Joanna I.
    Cieplak, Marek
    [J]. PLOS COMPUTATIONAL BIOLOGY, 2009, 5 (10)
  • [36] Somorjai G.A., 2010, INTRO SURFACE CHEM C
  • [37] Denaturation of proteins near polar surfaces
    Starzyk, Anna
    Cieplak, Marek
    [J]. JOURNAL OF CHEMICAL PHYSICS, 2011, 135 (23)
  • [38] Mechanical stretching of proteins - a theoretical survey of the Protein Data Bank
    Sulkowska, Joanna I.
    Cieplak, Marek
    [J]. JOURNAL OF PHYSICS-CONDENSED MATTER, 2007, 19 (28)
  • [39] Identification and characterization of Cu2O- and ZnO-binding polypeptides by Escherichia coli cell surface display:: Toward an understanding of metal oxide binding
    Thai, CK
    Dai, HX
    Sastry, MSR
    Sarikaya, M
    Schwartz, DT
    Baneyx, F
    [J]. BIOTECHNOLOGY AND BIOENGINEERING, 2004, 87 (02) : 129 - 137
  • [40] Material-binding peptide application-ZnO crystal structure control by means of a ZnO-binding peptide
    Togashi, Takanari
    Yokoo, Nozomi
    Umetsu, Mitsuo
    Ohara, Satoshi
    Naka, Takashi
    Takami, Seiichi
    Abe, Hiroya
    Kumagai, Izumi
    Adschiri, Tadafumi
    [J]. JOURNAL OF BIOSCIENCE AND BIOENGINEERING, 2011, 111 (02) : 140 - 145