Inferring mechanical properties of the SARS-CoV-2 virus particle with nano-indentation tests and numerical simulations

被引:3
|
作者
Nonn, Aida [1 ]
Kiss, Balint [2 ,3 ]
Pezeshkian, Weria [4 ]
Tancogne-Dejean, Thomas [5 ]
Cerrone, Albert [6 ]
Kellermayer, Miklos [2 ,3 ]
Bai, Yuanli [7 ]
Li, Wei [8 ]
Wierzbicki, Tomasz [8 ]
机构
[1] OTH Regensburg, Fac Mech Engn, CMM Lab, D-93053 Regensburg, Germany
[2] Semmelweis Univ, Dept Biophys & Radiat Biol, H-1094 Budapest, Hungary
[3] ELKH SE Biophys Virol Res Grp, H-1094 Budapest, Hungary
[4] Univ Copenhagen, Niels Bohr Inst, Niels Bohr Int Acad, Blegdamsvej 17, DK-2100 Copenhagen, Denmark
[5] Swiss Fed Inst Technol, Dept Mech & Proc Engn, CH-8050 Zurich, Switzerland
[6] Univ Notre Dame, Computat Hydraul Lab, Notre Dame, IN 46556 USA
[7] Univ Cent Florida, Dept Mech & Aerosp Engn, 4000 Cent Florida Blvd, Orlando, FL 32816 USA
[8] MIT, Impact & Crashworthiness Lab, Cambridge, MA 02139 USA
关键词
Coronavirus; SARS-CoV-2; Nanoindentation; Finite element analysis (FEA); Molecular dynamics (MD) simulation; MOLECULAR-DYNAMICS SIMULATIONS; NANOINDENTATION; STABILITY; ENVELOPE; CAPSIDS; GROMACS;
D O I
10.1016/j.jmbbm.2023.106153
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The pandemic caused by the SARS-CoV-2 virus has claimed more than 6.5 million lives worldwide. This global challenge has led to accelerated development of highly effective vaccines tied to their ability to elicit a sustained immune response. While numerous studies have focused primarily on the spike (S) protein, less is known about the interior of the virus. Here we propose a methodology that combines several experimental and simulation techniques to elucidate the internal structure and mechanical properties of the SARS-CoV-2 virus. The mechanical response of the virus was analyzed by nanoindentation tests using a novel flat indenter and evaluated in comparison to a conventional sharp tip indentation. The elastic properties of the viral membrane were estimated by analytical solutions, molecular dynamics (MD) simulations on a membrane patch and by a 3D Finite Element (FE)-beam model of the virion's spike protein and membrane molecular structure. The FE-based inverse engineering approach provided a reasonable reproduction of the mechanical response of the virus from the sharp tip indentation and was successfully verified against the flat tip indentation results. The elastic modulus of the viral membrane was estimated in the range of 7-20 MPa. MD simulations showed that the presence of proteins significantly reduces the fracture strength of the membrane patch. However, FE simulations revealed an overall high fracture strength of the virus, with a mechanical behavior similar to the highly ductile behavior of engineering metallic materials. The failure mechanics of the membrane during sharp tip indentation includes progressive damage combined with localized collapse of the membrane due to severe bending. Furthermore, the results support the hypothesis of a close association of the long membrane proteins (M) with membrane-bound hexagonally packed ribonucleoproteins (RNPs). Beyond improved understanding of coronavirus structure, the present findings offer a knowledge base for the development of novel prevention and treatment methods that are independent of the immune system.
引用
收藏
页数:15
相关论文
共 17 条
  • [1] EVALUATION OF MECHANICAL PROPERTIES OF SOFC COMPONENTS BY NANO-INDENTATION TESTS
    Ito, Hideaki
    Sato, Kazuhisa
    Unemoto, Atsushi
    Amezawa, Koji
    Kawada, Tatsuya
    PROCEEDINGS OF THE ASME 8TH INTERNATIONAL CONFERENCE ON FUEL CELL SCIENCE, ENGINEERING, AND TECHNOLOGY 2010, VOL 2, 2010, : 381 - 385
  • [2] Estimation of elastic-plastic tensile properties using nano-indentation tests and FE simulations
    Kim, Yun-Jae
    Song, Tae-Kwang
    Hanh, Jun-Hee
    Park, Jun-Hyub
    Experimental Mechanics in Nano and Biotechnology, Pts 1 and 2, 2006, 326-328 : 361 - 364
  • [3] Nano-indentation and micro-compression tests on the measurement of mechanical properties in tribologically transformed surfaces (TTS)
    Tumbajoy-Spinel, D.
    Kermouche, G.
    Descartes, S.
    Bergheau, J. -M.
    Lacaille, V.
    Guillonneau, G.
    Michler, J.
    MATERIAUX & TECHNIQUES, 2015, 103 (03):
  • [4] Strengths and limitations of SARS-CoV-2 virus-like particle systems
    Sultana, Rokaia
    Stahelin, Robert V.
    VIROLOGY, 2025, 601
  • [5] Optimization and validation of a virus-like particle pseudotyped virus neutralization assay for SARS-CoV-2
    Liu, Shuo
    Zhang, Li
    Fu, Wangjun
    Liang, Ziteng
    Yu, Yuanling
    Li, Tao
    Tong, Jincheng
    Liu, Fan
    Nie, Jianhui
    Lu, Qiong
    Lu, Shuaiyao
    Huang, Weijin
    Wang, Youchun
    MEDCOMM, 2024, 5 (06):
  • [6] Comparison of Antigen Tests and qPCR in Rapid Diagnostics of Infections Caused by SARS-CoV-2 Virus
    Klajmon, Adrianna
    Olechowska-Jarzab, Aldona
    Salamon, Dominika
    Sroka-Oleksiak, Agnieszka
    Brzychczy-Wloch, Monika
    Gosiewski, Tomasz
    VIRUSES-BASEL, 2022, 14 (01):
  • [7] Characterization of Mechanical Properties for Ferritic Heat-Resisting Steels (12Cr-2W) with Different Creep-Fatigue Properties by Nano-Indentation
    Nagashima, Nobuo
    Hayakawa, Masao
    Kimura, Megumi
    MATERIALS TRANSACTIONS, 2019, 60 (04) : 495 - 502
  • [8] Mechanical properties of low-temperature gaseous carburizated layer in 316L stainless steel based on nano-indentation and four-point bending tests
    Jiang, Yong
    Wu, Qiang
    Li, Yang
    Peng, Yawei
    Gong, Jianming
    SURFACE & COATINGS TECHNOLOGY, 2020, 387
  • [9] Characterization of mechanical properties for ferritic heat-resisting steels (12Cr-2W) with different creep-fatigue properties by nano-indentation
    Nagashima N.
    Hayakawa M.
    Kimura M.
    2017, Society of Materials Science Japan (66) : 887 - 892
  • [10] Probing the mechanical properties of ORF3a protein, a transmembrane channel of SARS-CoV-2 virus: Molecular dynamics study
    Maymand, Vahid Mahmoudi
    Bavi, Omid
    Karami, Abbas
    CHEMICAL PHYSICS, 2023, 569