Free Energy of Bare and Capped Gold Nanoparticles Permeating through a Lipid Bilayer

被引:9
|
作者
Mhashal, Anil R. [1 ,2 ]
Roy, Sudip [1 ]
机构
[1] CSIR Natl Chem Lab, Div Phys Chem, Pune 411008, Maharashtra, India
[2] Bar Ilan Univ, Dept Chem, Ramat Gan, Israel
关键词
capping; free energy; gold; lipid bilayers; nanoparticles; MOLECULAR-DYNAMICS SIMULATIONS; COARSE-GRAINED MODEL; MONTE-CARLO; MEMBRANE-FLUIDITY; LIGAND-SHELL; FORCE-FIELD; MONOLAYER; SIZE; TRANSLOCATION; NANOTECHNOLOGY;
D O I
10.1002/cphc.201600690
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
Herein, we study the permeation free energy of bare and octane-thiol-capped gold nanoparticles (AuNPs) translocating through a lipid membrane. To investigate this, we have pulled the bare and capped AuNPs from bulk water to the membrane interior and estimated the free energy cost. The adsorption of the bare AuNP on the bilayer surface is energetically favorable but further loading inside it requires energy. However, the estimated free-energy barrier for loading the capped AuNP into the lipid membrane is much higher compared to bare AuNP. We also demonstrate the details of the permeation process of bare and capped AuNPs. Bare AuNP induces the curvature in the lipid membrane whereas capped AuNP creates an opening in the interacting monolayer and get inserted into the membrane. The insertion of capped AuNP induces a partial unzipping of the lipid bilayer, which results in the ordering of the local lipids interacting with the nanoparticle. However, bare AuNP disrupts the lipid membrane by pushing the lipid molecules inside the membrane. We also analyze pore formation due to the insertion of capped AuNP into the membrane, which results in water molecules penetrating the hydrophobic region.
引用
收藏
页码:3504 / 3514
页数:11
相关论文
共 50 条
  • [1] Behavior of Citrate-Capped Ultrasmall Gold Nanoparticles on a Supported Lipid Bilayer Interface at Atomic Resolution
    Kariuki, Rashad
    Penman, Rowan
    Bryant, Saffron J.
    Orrell-Trigg, Rebecca
    Meftahi, Nastaran
    Crawford, Russell J.
    McConville, Chris F.
    Bryant, Gary
    Voitchovsky, Kislon
    Conn, Charlotte E.
    Christofferson, Andrew J.
    Elbourne, Aaron
    ACS NANO, 2022, 16 (10) : 17179 - 17196
  • [2] Agglomeration behavior of lipid-capped gold nanoparticles
    Ranjan, Rajeev
    Kirillova, Maria A.
    Esimbekova, Elena N.
    Zharkov, Sergey M.
    Kratasyuk, Valentina A.
    JOURNAL OF NANOPARTICLE RESEARCH, 2018, 20 (04)
  • [3] Agglomeration behavior of lipid-capped gold nanoparticles
    Rajeev Ranjan
    Maria A. Kirillova
    Elena N. Esimbekova
    Sergey M. Zharkov
    Valentina A. Kratasyuk
    Journal of Nanoparticle Research, 2018, 20
  • [4] FREE-ENERGY OF DEFORMATION OF LIPID BILAYER
    PYATNITSKY, AM
    BIOLOGICHESKIE MEMBRANY, 1992, 9 (06): : 655 - 666
  • [5] Amyloid-β Aggregation with Gold Nanoparticles on Brain Lipid Bilayer
    Lee, Hyojin
    Kim, Yuna
    Park, Anna
    Nam, Jwa-Min
    SMALL, 2014, 10 (09) : 1779 - 1789
  • [6] Convergence of Free Energy Profile of Coumarin in Lipid Bilayer
    Paloncyova, Marketa
    Berka, Karel
    Otyepka, Michal
    JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2012, 8 (04) : 1200 - 1211
  • [7] Simulated Permeation and Characterization of PEGylated Gold Nanoparticles in a Lipid Bilayer System
    Oroskar, Priyanka A.
    Jameson, Cynthia J.
    Murad, Sohail
    LANGMUIR, 2016, 32 (30) : 7541 - 7555
  • [8] Penetration of polymer-grafted nanoparticles through a lipid bilayer
    Liang, Qing
    SOFT MATTER, 2013, 9 (23) : 5594 - 5601
  • [9] Energy transfer in gold nanoparticles capped with α-functionalized thiophene dendrons.
    Deng, SX
    Baba, A
    Locklin, J
    Advincula, R
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2005, 229 : U913 - U913
  • [10] Tethered Bilayer Lipid Membranes to Monitor Heat Transfer between Gold Nanoparticles and Lipid Membranes
    Alghalayini, Amani
    Jiang, Lele
    Gu, Xi
    Yeoh, Guan Heng
    Cranfield, Charles G.
    Timchenko, Victoria
    Cornell, Bruce A.
    Valenzuela, Stella M.
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2020, (166): : 1 - 12