Inhibitory interaction and pharmacological analyses of berries phenolics against Listeria monocytogenes virulent protein internalin B

被引:0
|
作者
Kumar, Abhishek [1 ]
Vimal, Archana [2 ,5 ]
Kumar, Awanish [3 ,4 ]
机构
[1] Indira Gandhi Natl Open Univ, Sch Agr, New Delhi, India
[2] Integral Univ, Dept Bioengn, Lucknow, Uttar Pradesh, India
[3] Natl Inst Technol, Dept Biotechnol, Raipur, Chhattisgarh, India
[4] Natl Inst Technol, Dept Biotechnol, Raipur 492010, Chhattisgarh, India
[5] Integral Univ, Dept Bioengn, Lucknow 266026, Uttar Pradesh, India
关键词
Berry plant; internalin B; Listeria monocytogenes; pharmacological analyses; phenolics; potent inhibitor; traditional medicine; ANTHOCYANINS; MECHANISMS; CRANBERRY; BINDING; ACIDS;
D O I
10.4103/2311-8571.364413
中图分类号
R [医药、卫生];
学科分类号
10 ;
摘要
Background: Traditional plants, their parts, and phytochemicals obtained from them are beneficial for human beings. They are used as potent antimicrobials, but very little research is conducted on the use of traditional medicine against food-borne infection. Different berry plants are rich in phenolic compounds and conventionally known to have many properties such as antioxidants, anti-carcinogenic, anti-inflammatory, anti-bacterial, and anti-diabetics. However, only limited polyphenols are known for their antilisterial effect. The present study aimed to explore the antimicrobial efficacy of phenolic compounds of berries for the treatment of food-borne infection caused by the bacteria Listeria monocytogenes. Materials and Methods: Molecular docking studies employing the SwissDOCK server were performed to evaluate the antimicrobial activity of phenolic compounds obtained from different varieties of berries. Internalin B (InlB), a virulence protein of L. monocytogenes was selected as a target. The absorption, distribution, metabolism, excretion, and toxicity profiling of each test ligand was done through the SwissADME tool. Results: Among all the test ligands, p-coumaric acid, epicatechins, chlorogenic acid, and quercetin showed better binding efficiency with the target protein InlB. The binding energy obtained for quercetin, p-coumaric acid, chlorogenic acid, and epicatechins was-8.93,-8.23,-8.18,-7.58, kcal/mol, respectively. Quercetin and p-coumaric acid were forming 4 H-bonds, whereas chlorogenic acid and epicatechins were forming 3-H bonds inside the binding pocket. Conclusion: In a nutshell, analyses indicated that identified ligands have the potential to block the virulent protein InlB of L. monocytogenes and help combat Listeria infection. These phenolic compounds could be a substitute for synthetic antimicrobials and can be used in food preservation and combat food-borne diseases. However, future in-depth in vitro and in vivo analysis is needed to get more information on these four phenolic ligands of berries.
引用
收藏
页码:71 / 80
页数:10
相关论文
共 14 条
  • [1] Inhibitory Interaction and Pharmacological Analyses of Berries Phenolics Against Listeria monocytogenes Virulent Protein Internalin B
    Abhishek Kumar
    Archana Vimal
    Awanish Kumar
    [J]. World Journal of Traditional Chinese Medicine, 2023, 9 (01) : 71 - 80
  • [2] Detection and rapid purification of internalin B as a protein marker in Listeria monocytogenes
    Kim, T. J.
    Jung, Y. S.
    Silva, J. L.
    Danviriyakul, S.
    [J]. FOOD BIOTECHNOLOGY, 2007, 21 (1-2) : 161 - 168
  • [3] Differential regulation of Listeria monocytogenes internalin and internalin-like genes by σB and PrfA as revealed by subgenomic microarray analyses
    McGann, Patrick
    Raengpradub, Sarita
    Ivanek, Renata
    Wiedmann, Martin
    Boor, Kathryn J.
    [J]. FOODBORNE PATHOGENS AND DISEASE, 2008, 5 (04) : 417 - 435
  • [4] The development of a 'labeless' immunosensor for the detection of Listeria monocytogenes cell surface protein, Internalin B
    Tully, Elizabeth
    Higson, Seamus P.
    Kennedy, Richard O'
    [J]. BIOSENSORS & BIOELECTRONICS, 2008, 23 (06): : 906 - 912
  • [5] Revolutionizing the virulent protein Internalin a in Listeria monocytogenes and designing multi epitope-based vaccine via immunoinformatic approaches
    Aziz, Tariq
    Naveed, Muhammad
    Shabbir, Muhammad Aqib
    Jabeen, Khizra
    Tzora, Athina S.
    Bonos, Eleftherios
    Skoufos, Ioannis
    Alharbi, Metab
    Alasmari, Abdullah F.
    Alshammari, Abdulrahman
    [J]. CYTA-JOURNAL OF FOOD, 2024, 22 (01) : 1 - 11
  • [6] A tandem repeat of a fragment of Listeria monocytogenes internalin B protein induces cell survival and proliferation
    Mungunsukh, Ognoon
    Lee, Young H.
    Marquez, Ana P.
    Cecchi, Fabiola
    Bottaro, Donald P.
    Day, Regina M.
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-LUNG CELLULAR AND MOLECULAR PHYSIOLOGY, 2010, 299 (06) : L905 - L914
  • [7] Molecular docking and molecular dynamic simulation studies to identify potential terpenes against Internalin A protein of Listeria monocytogenes
    Deepasree, K.
    Venugopal, Subhashree
    [J]. FRONTIERS IN BIOINFORMATICS, 2024, 4
  • [8] Cell-surface anchoring of Listeria adhesion protein on L. monocytogenes is fastened by internalin B for pathogenesis
    Liu, Dongqi
    Bai, Xingjian
    Helmick, Harrison D. B.
    Samaddar, Manalee
    Amalaradjou, Mary Anne Roshni
    Li, Xilin
    Tenguria, Shivendra
    Gallina, Nicholas L. F.
    Xu, Luping
    Drolia, Rishi
    Aryal, Uma K.
    Moreira, Gustavo Marcal Schmidt Garcia
    Hust, Michael
    Seleem, Mohamed N.
    Kokini, Jozef L.
    Ostafe, Raluca
    Cox, Abigail
    Bhunia, Arun K.
    [J]. CELL REPORTS, 2023, 42 (05):
  • [9] Development of an ELISA specific for Listeria monocytogenes using a polyclonal antibody raised against a cell extract containing internalin B
    Karamonová, L
    Blazková, M
    Fukal, L
    Rauch, P
    Greifová, M
    Horákova, K
    Tomáska, M
    Roubal, P
    Brett, GM
    Wyatt, GM
    [J]. FOOD AND AGRICULTURAL IMMUNOLOGY, 2003, 15 (3-4) : 167 - 182
  • [10] Optical Express Monitoring of Internalin B Protein of Listeria Monocytogenes Pathogenic Bacteria Using SERS-Active Silver-Decorated Silicon Nanowires
    K. A. Gonchar
    E. A. Alekseeva
    O. D. Gyuppenen
    I. V. Bozhev
    E. V. Kalinin
    S. A. Ermolaeva
    L. A. Osminkina
    [J]. Optics and Spectroscopy, 2022, 130 : 521 - 526