Molecular docking analysis reveals the functional inhibitory effect of Genistein and Quercetin on TMPRSS2: SARS-COV-2 cell entry facilitator spike protein

被引:21
|
作者
Manjunathan, Reji [1 ,2 ]
Periyaswami, Vijayalakshmi [3 ]
Mitra, Kartik [4 ]
Rosita, Arokiaraj Sherlin [5 ]
Pandya, Medha [6 ]
Selvaraj, Jayaraman [7 ]
Ravi, Lokesh [8 ]
Devarajan, Nalini [9 ]
Doble, Mukesh [4 ,10 ]
机构
[1] Univ Madras, Dr ALM Post Grad Inst Basic Med Sci, Dept Genet, Taramani Campus, Chennai, Tamil Nadu, India
[2] Chengalpattu Govt Med Coll & Hosp, Multidisciplinary Res Unit, Chengalpattu 603001, Tamil Nadu, India
[3] Bharathidasan Univ, Holy Cross Coll, Dept Biotechnol & Bioinformat, Trichy, Tamil Nadu, India
[4] Indian Inst Technol Madras, Dept Biotechnol, Bioengn & Drug Design Lab, Chennai, Tamil Nadu, India
[5] Bharathidasan Univ, Bishop Heber Coll Autonomous, Dept Bioinformat, Tiruchirapalli, Tamil Nadu, India
[6] Maharaja KrishnakumarSinhiji Bhavnagar Univ, KPES Sci Coll, Bhavnagar, Gujarat, India
[7] Saveetha Dent Coll & Hosp, Saveetha Inst Med & Tech Sci, Chennai, Tamil Nadu, India
[8] St Josephs Coll, Dept Bot, Bangalore, Karnataka, India
[9] Meenakshi Ammal Dent Coll, Cent Res Lab, Chennai, Tamil Nadu, India
[10] Saveetha Dent Coll & Hosp, Dept Cariol, Chennai 600077, Tamil Nadu, India
关键词
Transmembrane serine protease 2; SARS-Cov-2; coronavirus; Phyto compounds; Bioinformatics tools; Molecular docking; Molecular dynamics; ANGIOTENSIN-CONVERTING ENZYME; SIMULATIONS; BINDING; CANCER; ALPHA;
D O I
10.1186/s12859-022-04724-9
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Background The Transmembrane Serine Protease 2 (TMPRSS2) of human cell plays a significant role in proteolytic cleavage of SARS-Cov-2 coronavirus spike protein and subsequent priming to the receptor ACE2. Approaching TMPRSS2 as a therapeutic target for the inhibition of SARS-Cov-2 infection is highly promising. Hence, in the present study, we docked the binding efficacy of ten naturally available phyto compounds with known anti-viral potential with TMPRSS2. The aim is to identify the best phyto compound with a high functional affinity towards the active site of the TMPRSS2 with the aid of two different docking software. Molecular Dynamic Simulations were performed to analyse the conformational space of the binding pocket of the target protein with selected molecules. Results Docking analysis using PyRx version 0.8 along with AutoDockVina reveals that among the screened phyto compounds, Genistein shows the maximum binding affinity towards the hydrophobic substrate-binding site of TMPRSS2 with three hydrogen bonds interaction ( - 7.5 kcal/mol). On the other hand, molecular docking analysis using Schrodinger identified Quercetin as the most potent phyto compound with a maximum binding affinity towards the hydrophilic catalytic site of TMPRSS2 ( - 7.847 kcal/mol) with three hydrogen bonds interaction. The molecular dynamics simulation reveals that the Quercetin-TMPRSS complex is stable until 50 ns and forms stable interaction with the protein ( - 22.37 kcal/mol of MM-PBSA binding free energy). Genistein creates a weak interaction with the loop residues and hence has an unstable binding and exits from the binding pocket. Conclusion The compounds, Quercetin and Genistein, can inhibit the TMPRSS2 guided priming of the spike protein. The compounds could reduce the interaction of the host cell with the type I transmembrane glycoprotein to prevent the entry of the virus. The critical finding is that compared to Genistein, Quercetin exhibits higher binding affinity with the catalytic unit of TMPRSS2 and forms a stable complex with the target. Thus, enhancing our innate immunity by consuming foods rich in Quercetin and Genistein or developing a novel drug in the combination of Quercetin and Genistein could be the brilliant choices to prevent SARS-Cov-2 infection when we consider the present chaos associated with vaccines and anti-viral medicines.
引用
收藏
页数:15
相关论文
共 50 条
  • [31] Discovery of potential small molecular SARS-CoV-2 entry blockers targeting the spike protein
    Wang, Lin
    Wu, Yan
    Yao, Sheng
    Ge, Huan
    Zhu, Ya
    Chen, Kun
    Chen, Wen-zhang
    Zhang, Yi
    Zhu, Wei
    Wang, Hong-yang
    Guo, Yu
    Ma, Pei-xiang
    Ren, Peng-xuan
    Zhang, Xiang-lei
    Li, Hui-qiong
    Ali, Mohammad A.
    Xu, Wen-qing
    Jiang, Hua-liang
    Zhang, Lei-ke
    Zhu, Li-li
    Ye, Yang
    Shang, Wei-juan
    Bai, Fang
    ACTA PHARMACOLOGICA SINICA, 2022, 43 (04) : 788 - 796
  • [32] In Silico Analysis Reveals the Inhibitory Potential of Madecassic Acid against Entry Factors of SARS-CoV-2
    Ganguly, Abhratanu
    Mandi, Moutushi
    Dutta, Anik
    Rajak, Prem
    ACS APPLIED BIO MATERIALS, 2023, 6 (02) : 652 - 662
  • [33] Olive Leaf Extract Downregulates the Protein Expression of Key SARS-CoV-2 Entry Enzyme ACE-2, TMPRSS2, and Furin
    Kocyigit, Abdurrahim
    Kanimdan, Ebru
    Yenigun, Vildan Betul
    Ozman, Zeynep
    Balibey, Fatmanur Babali
    Durmus, Ezgi
    Yasar, Oznur
    CHEMISTRY & BIODIVERSITY, 2024, 21 (08)
  • [34] SARS-CoV-2 entry inhibitors by dual targeting TMPRSS2 and ACE2: An in silico drug repurposing study
    Baby, Krishnaprasad
    Maity, Swastika
    Mehta, Chetan H.
    Suresh, Akhil
    Nayak, Usha Y.
    Nayak, Yogendra
    EUROPEAN JOURNAL OF PHARMACOLOGY, 2021, 896
  • [35] Computational Analysis of Targeting SARS-CoV-2, Viral Entry Proteins ACE2 and TMPRSS2, and Interferon Genes by Host MicroRNAs
    Pierce, Jacob B.
    Simion, Viorel
    Icli, Basak
    Perez-Cremades, Daniel
    Cheng, Henry S.
    Feinberg, Mark W.
    GENES, 2020, 11 (11) : 1 - 26
  • [36] Molecular docking simulation reveals ACE2 polymorphisms that may increase the affinity of ACE2 with the SARS-CoV-2 Spike protein
    Calcagnile, Matteo
    Forgez, Patricia
    Iannelli, Antonio
    Bucci, Cecilia
    Alifano, Marco
    Alifano, Pietro
    BIOCHIMIE, 2021, 180 : 143 - 148
  • [37] Drug repurposing for identification of potential spike inhibitors for SARS-CoV-2 using molecular docking and molecular dynamics simulations
    Lazniewski, Michal
    Dermawan, Doni
    Hidayat, Syahrul
    Muchtaridi, Muchtaridi
    Dawson, Wayne K.
    Plewczynski, Dariusz
    METHODS, 2022, 203 : 498 - 510
  • [38] Strong Binding of Leupeptin with TMPRSS2 Protease May Be an Alternative to Camostat and Nafamostat for SARS-CoV-2 Repurposed Drug: Evaluation from Molecular Docking and Molecular Dynamics Simulations
    Ramakrishnan, Jaganathan
    Kandasamy, Saravanan
    Iruthayaraj, Ancy
    Magudeeswaran, Sivanandam
    Chinnasamy, Kalaiarasi
    Poomani, Kumaradhas
    APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2021, 193 (06) : 1909 - 1923
  • [39] Systematic analysis of ACE2 and TMPRSS2 expression in salivary glands reveals underlying transmission mechanism caused by SARS-CoV-2
    Song, Jukun
    Li, Yamei
    Huang, Xiaolin
    Chen, Zhihong
    Li, Yongdi
    Liu, Chong
    Chen, Zhu
    Duan, Xiaofeng
    JOURNAL OF MEDICAL VIROLOGY, 2020, 92 (11) : 2556 - 2566
  • [40] Strong Binding of Leupeptin with TMPRSS2 Protease May Be an Alternative to Camostat and Nafamostat for SARS-CoV-2 Repurposed Drug: Evaluation from Molecular Docking and Molecular Dynamics Simulations
    Jaganathan Ramakrishnan
    Saravanan Kandasamy
    Ancy Iruthayaraj
    Sivanandam Magudeeswaran
    Kalaiarasi Chinnasamy
    Kumaradhas Poomani
    Applied Biochemistry and Biotechnology, 2021, 193 : 1909 - 1923