Screening and Characterization of the Antagonistic Properties of Microorganisms Isolated From Natural Sources

Authors

  • V. M. Le Department of Bionanotechnology, Kemerovo State University, 6 Krasnaya Street, Kemerovo 650000, Russia
  • L. K. Asyakina Department of Bionanotechnology, Kemerovo State University, 6 Krasnaya Street, Kemerovo 650000, Russia
  • N. S. Velichkovitch Department of Bionanotechnology, Kemerovo State University, 6 Krasnaya Street, Kemerovo 650000, Russia
  • O. V. Kozlova Department of Bionanotechnology, Kemerovo State University, 6 Krasnaya Street, Kemerovo 650000, Russia
  • I. S. Milentyeva Department of Bionanotechnology, Kemerovo State University, 6 Krasnaya Street, Kemerovo 650000, Russia
  • A. V., Pozdnyakova Department of Bionanotechnology, Kemerovo State University, 6 Krasnaya Street, Kemerovo 650000, Russia
  • A. Y. Prosekov Department of Bionanotechnology, Kemerovo State University, 6 Krasnaya Street, Kemerovo 650000, Russia

DOI:

https://doi.org/10.3889/oamjms.2020.3573

Keywords:

pharmaceutical substance, antimicrobial action, microorganisms-antagonists, metabolite, bacteriocin, cultivation, biosynthesis, inhibition, screening

Abstract

BACKGROUND: Human infectious diseases caused by antibiotic-resistant bacterial pathogens present a serious problem for clinical medicine. Causative agents of nosocomial infections, such as Escherichia coli, Klebsiella pneumoniae, Enterobacter spp., are the most common among them. An active search for antimicrobial agents that can effectively combat drugresistant pathogens is underway. Antimicrobial substances of bacterial origin are of particular interest. Promising sources of microorganisms with antibiotic properties are natural sources: Soil, water, plants, etc.

AIM: The purpose of this work is to screen and characterize the antagonistic properties of microorganisms isolated from natural sources in connection with the creation of new pharmaceutical substances.

METHODS: The material for the isolation of microorganisms was the soil, water bodies, and plant objects of various municipal districts of the Kemerovo Region. Identification of the isolated microorganisms was carried out using the methods proposed in the directory “Bergey’s Manual of Determinative Bacteriology” and in the monograph Nesterenko et al. The selection of strains from soil samples was carried out according to standard methods described in “Methods of soil microbiological control. Methodical recommendations,” cultural-morphological properties of isolates were studied using conventional microbiological methods.

RESULTS: The following results are obtained: (1) Lactic acid bacteria and other microorganisms antagonists from natural sources were isolated: Soil, water bodies, and plant objects; 20 isolates were isolated, their cultural and morphological properties were studied; isolated microorganisms were found to belong presumably to the genera Bacillus, Leuconostoc, Pedio-coccus, Lactobacillus, and Bacteroides; (2) Antimicrobial properties of lactic acid bacteria and other antagonistic microorganisms isolated from natural sources on solid and liquid nutrient media were studied; (3) 12 strains of 20 isolates with maximum antimicrobial properties were selected for further studies.

CONCLUSION: Further research on the biochemical properties of lactic acid bacteria and other antagonist microorganisms isolated from natural sources, the study of antibiotic resistance of lactic acid bacteria and other antagonist microorganisms isolated from natural sources, as well as other more detailed studies will be conducted with selected 12 strains with maximum antimicrobial properties.

Downloads

Download data is not yet available.

Metrics

Metrics Loading ...

Plum Analytics Artifact Widget Block

References

Abaturov AE, Kryuchko TA. The potential value of bacteriocins in the etiological treatment of infectious diseases of the respiratory tract. Zdorovie Rebenka. 2017;12(7):812-9. https:// doi.org/10.22141/2224-0551.12.7.2017.116187

Bisenova GN, Sarmurzina ZS, Almagambetov KK. The study of the bacteriocin-producing activity of isolates and collection cultures of lactic acid bacteria. Kazakhstan Sci News. 2016;1(127):86-98.

Kuznetsova MV, Maslennikova IL, Žgur-Bertok D, Strain ŽP. Conjugative gene transfer of bacteriocins a new mechanism of antimicrobial action of probiotic drugs. Bull Perm Sci Cent Ural Branch Russ Acad Sci. 2017;4:45-52. https://doi. org/10.7242/1998-2097/2017.4.7

Kuliev AA, Demnerova K, Abdullaeva UD. Comparison of the antimicrobial activity of various strains of bacteria of the genus Lactobacillus against a number of pathogenic bacteria. Actual Probl Humanit Natl Sci. 2017;1(1):41-4.

Polyanskaya IS, Stoyanova LG, Semenikhina VF. Antagonistic activity of probiotic strains: Regulatory factors. Dairy Ind. 2017;1:42-4.

Dyshlyuk LS, Asyakina LK, Sukhikh SA, Noskova SY. Analysis of the physico-chemical properties of the recombinant antimicrobial peptide. In: Materials of the 14th International Research and Practice Conference. Westwood: Science, Technology and Higher Education; 2017. p. 87-92.

Gaspar C, Donders GG, Palmeira-de-Oliveira R, Queiroz JA, Tomaz C, Martinez-de-Oliveira J, et al. Bacteriocin production of the probiotic Lactobacillus acidophilus ks400. AMB Express. 2018;8(1):153. https://doi.org/10.1186/s13568-018-0679-z PMid:30264211

Ghequire MG, Öztürk B, de Mot R. Lectin-like bacteriocins. Front Microbiol. 2018;9:2706. https://doi.org/10.3389/ fmicb.2018.02706 PMid:30483232

Abdullaeva NF. Modern views on the mechanism of action of bacteriocins of lactic acid bacteria (review). Actual Probl Humanit Natl Sci. 2014;10:23-27.

Vasilchenko AS, Vasilchenko AV, Valyshev AV, Rogozhin EA. A novel high-molecular-mass bacteriocin produced by: Enterococcus faecium: Biochemical features and mode of action. Probiotics Antimicrob Proteins. 2018;10(3):427-34. https://doi.org/10.1007/s12602-018-9392-0 PMid:29423898

Ankaiah D, Palanichamy E, Antonyraj CB, Ayyanna R, Perumal V, Ahamed SI, et al. Cloning, overexpression, purification of bacteriocin enterocin-b and structural analysis, interaction determination of enterocin-a, b against pathogenic bacteria and human cancer cells. Int J Biol Macromol. 2018;116:502-12. https://doi.org/10.1016/j.ijbiomac.2018.05.002 pmid:29729340

Goyal C, Malik RK, Pradhan D. Purification and characterization of a broad spectrum bacteriocin produced by a selected Lactococcus lactis strain 63 isolated from Indian dairy products. J Food Sci Technol. 2018;55(9):3683-92. https://doi.org/10.1007/ s13197-018-3298-4 PMid:30150828

Neustroyev MP, Tarabukina NP, Stepanova AM, Maksimova AN. The bactericidal effect of bacterial strains of Bacillus subtilis to leptospirosis pathogens. Rep Russ Acad Agric Sci. 2015;4:63-5.

Drider D, Bendali F, Naghmouchi K, Chikindas ML. Bacteriocins: Not only antibacterial agents. Probiotics Antimicrob Proteins. 2016;8(4):177-82. https://doi.org/10.1007/s12602-016-9223-0 PMid:27481236

Hegarty JW, Guinane CM, Ross RP, Hill C, Cotter PD. Lack of heterogeneity in bacteriocin production across a selection of commercial probiotic products. Probiotics Antimicrob Proteins. 2017;9(4):459-65. https://doi.org/10.1007/s12602-017-9326-2 PMid:28942526

Mukherjee S, Ramesh A. Bacteriocin-producing strains of Lactobacillus plantarum inhibit adhesion of Staphylococcus aureus to extracellular matrix: Quantitative insight and implications in antibacterial therapy. J Med Microbiol. 2015;64(12):1514-26. https://doi.org/10.1099/jmm.0.000181 PMid:26445850

Lozo J, Mirkovic N, O’connor PM, Malesevic M, Miljkovic M, Polovic N, et al. Lactolisterin BU, a novel class ii broad-spectrum bacteriocin from Lactococcus lactis subsp. Lactis bv. diacetylactis bgbu1-4. Appl Environ Microbiol. 2017;83(21):e01519. https:// doi.org/10.1128/aem.01519-17 PMid:28842543

El-Arabi NI, Salim RG, Abosereh NA, Abdelhadi A. Molecular characterization of some antilisterial bacteriocin genes from Enterococcus faecium and Pediococcus pentosaceus. Microbiol Biotechnol Lett. 2018;46(3):288-99. https://doi.org/10.4014/ mbl.1803.03001

Acedo JZ, Chiorean S, Vederas JC, Van Belkum MJ. The expanding structural variety among bacteriocins from gram-positive bacteria. Fems Microbiol Rev. 2018;42(6):805-28. https://doi.org/10.1093/femsre/fuy033 PMid:30085042

Dicks LM, Dreyer L, Smith C, van Staden AD. A review: The fate of bacteriocins in the human gastro-intestinal tract: Do they cross the gut-blood barrier? Front Microbiol. 2018;9:2297. https://doi.org/10.3389/fmicb.2018.02297

Baindara P, Korpole S, Grover V. Bacteriocins: Perspective for the development of novel anticancer drugs. Appl Microbiol Biotechnol. 2018;102(24):10393-408. https://doi.org/10.1007/ s00253-018-9420-8 PMid:30338356

Mokrushina OS, Andreeva IS, Mazurkova NA, Puchkova I. Antagonistic properties of the strain of Bacillus thuringiensis ssp. galleriae AK-4 isolated from sedimentary rocks of Lake Baikal. Int Res J. 2013;81(15):74-7.

Kazachina AD. Actual aspects of biotechnological development of experimental samples of lantibiotics. J Sci Articles Health Educ 2015;17(3):57-66.202 https://www.id-press.eu/mjms/index

Nandan PK, Nagar A. Isolation and identification of bacteriocin producing microbes using biochemical and molecular tools and analysis of its biopreservation potential. Asian J Pharm Clin Res. 2016;9:278-82. https://doi.org/10.22159/ajpcr.2016.v9s3.15043

Escamilla-Martínez EE, Cisneros YM, Fernández FJ, Quirasco- Baruch M, Ponce-Alquicira E. Identification of structural and immunity genes of a class IIB bacteriocin encoded in the enterocin a operon of Enterococcus faecium strain MXVK29. J Food Prot. 2017;9:1851-6. https://doi.org/10.4315/0362-028x. jfp-17-039

PMid:28990822

Farías ME, Farías RN, de Ruiz Holgado AP, Sesma F. Purification and n-terminal amino acid sequence of enterocin CRL 35, a “pediocin-like” bacteriocin produced by Enterococcus faecium CRL 35. Lett Appl Microbiol. 1996;22(6):417-9. https:// doi.org/10.1111/j.1472-765x.1996.tb01193.x

PMid:8695065

Ishibashi N, Zendo T, Koga S, Shigeri Y, Sonomoto K. Molecular characterization of the genes involved in the secretion and immunity of lactococcin q, a two-peptide bacteriocin produced by Lactococcus lactis qu 4. Microbiology. 2015;161(11):2069-78. https://doi.org/10.1099/mic.0.000157

PMid:26306611

Lim ES. Purification and characterization of two bacteriocins from Lactobacillus brevis BK11 and Enterococcus faecalis BK61 showing anti-Helicobacter pylori activity. J Korean Soc Appl Biol Chem. 2015;58(5):709-14. https://doi.org/10.1007/ s13765-015-0094-y

Cao S, Du R, Zhao F, Xiao H, Zhou Z. The mode of action of bacteriocin CHQS, a high antibacterial activity bacteriocin produced by Enterococcus faecalis TG2. Food Control. 2019;96:470-8. https://doi.org/10.1016/j.foodcont.2018.09.028

Abdullaeva NF. General understanding of the mechanisms of heterologous production of lactic acid bacteria bacteriocins (review). Actual Probl Humanit Natl Sci. 2016;1(1):29-32.

Prosekov AY, Dyshlyuk LS, Milentyeva IS, Sykhikh SA, Babich OO, Ivanova SA, et al. Antioxidant and antimicrobial activity of bacteriocin-producing strains of lactic acid bacteria isolated from the human gastrointestinal tract. Prog Nutr. 2017;19(1):67-80.

Vasilchenko AS, Valyshev AV. Optimization of the composition of the nutrient medium of microorganisms as an approach to the isolation of bacteriocins. Bull Orenburg State Univ. 2017;12(212):84-9.

Sidorova TM, Asaturova AM, Khomyak AI. Biologically active metabolites of Bacillus subtilis and their role in the control of phytopathogenic microorganisms. Agric Biol. 2018;53(1):29-37.

Morton JT, Freed SD, Lee SW,. A large scale prediction of bacteriocin gene blocks suggests a wide functional spectrum for bacteriocins. BMC Bioinformatics. 2015;16(1):381. https://doi. org/10.1186/s12859-015-0792-9

Lenchenko EM, Khu B, Lomova YV. Research of antagonistic properties and sensitivity of microorganisms to antibacterial drugs. Agric Sci. 2017;6:17-22.

Sultimova TD, Zakharov EV. Bacteriocins of lactic acid bacteria. Bull VSGUTU. 2016;2(59):41-7.

Boyanova L, Gergova G, Markovska R, Yordanov D, Mitov I. Bacteriocin-like inhibitory activities of seven Lactobacillus delbrueckii subsp. Bulgaricus strains against antibiotic susceptible and resistant helicobacter pylori strains. Lett Appl Microbiol. 2017;65(6):469-74. https://doi.org/10.1111/lam.12807

PMid:28975642

Daba GM, Ishibashi N, Gong X, Taki H, Yamashiro K, Lim YY, et al. Characterisation of the action mechanism of a Lactococcus-specific bacteriocin, lactococcin Z. J Biosci Bioeng. 2018;126(5):603-10. https://doi.org/10.1016/j. jbiosc.2018.05.018 PMid:29929768

Gopakumaran N, Veerasangili SG, Valliaparambal PT. Isolation and characterization of bacteriocins like antimicrobial compound from Lactobacillus delbrueckii subsp lactis. Jordan J Biol Sci. 2017;10(4):221-7.

Downloads

Published

2020-04-25

How to Cite

1.
Le VM, Asyakina LK, Velichkovitch NS, Kozlova OV, Milentyeva IS, Pozdnyakova AV, Prosekov AY. Screening and Characterization of the Antagonistic Properties of Microorganisms Isolated From Natural Sources. Open Access Maced J Med Sci [Internet]. 2020 Apr. 25 [cited 2024 Apr. 24];8(A):195-202. Available from: https://oamjms.eu/index.php/mjms/article/view/3573