Main Article Content
Abstract
Improving food safety and quality remains a major challenge in worldwide. Modern society tends to choose the foods that are fresh tasting, free of chemical additives, rich in nutrients and has been introduced to minimally processed. Bacteriocins as new natural preservatives could be produced by Gram-positive bacteria and Gram-negative bacteria, even though it is mostly originated from Lactic Acid Bacteria (LAB). Bacteriocin-producing bacteria as well as bacteriocin has long been used in some countries as alternatives to replace chemical additives. The use of these antimicrobial agents has been proven effective in food manufacturing and distribution chain, especially in increasing shelf life of food products. Other potential from the use of bio-preservatives in various types of food is still huge. However, approval of bio-preservatives and their commercially applications is still limited. This study will review the selection criteria for bacteria used, the mechanism of action, its potential application in the food and pharmaceutical industries and its potential as an anti-cancer agent. In addition, this study will explore the main challenges faced including its stability and the possible risk of resistance to microorganisms. This review will also describe a series of processes for identification, characterization, and approval of the use of bacteriocins before they are commercially marketed. In addition, the safety issue of using bacteriocin-producing bacteria, especially as probiotics, also needs to be considered as a fundamental for quality control and the improvement of drug and food safety.
Keywords
Article Details
References
- References
- Loris Riccardo Lopetuso, Maria Ernestina Giorgio, Angela Saviano, Franco Scaldaferri, Antonio Gasbarrini and Giovanni Cammarota. 2019. Bacteriocins and Bacteriophages: Therapeutic Weapons for Gastrointestinal Diseases?. Int. J. Mol. Sci., 20 (1): 183-192.
- Shih-Chun Yang, Chih-HungLin, CalvinT.Sung and Jia-YouFang. 2014. Antibacterial Activities of Bacteriocins: Application in Foods and Pharmaceuticals. Frontiers in microbiology, 5: 1-10.
- Bintsis T. 2018. Lactic Acid Bacteria: Their Applications in Foods. J. Bacteriol. Mycol., 6(2):89–94.
- E M O'Connor , R F Shand. 2002. Halocins and Sulfolobicins: The Emerging Story of Archaeal Protein and Peptide Antibiotics. J. Ind. Microbiol. Biotechnol., 28: 23-31.
- http://www.fao.org/3/y8705e/y8705e03.htm (diakses pada 3 September 2020)
- C. Leitzmann. 1993. Food Quality-Definition and a Holistic View. Safeguarding Food Quality pp 3-15.
- Zhang Y, Zhu L, Dong P, et al. 2018. Bio-protective Potential of Lactic Acid Bacteria: Effect of Lactobacillus sakei and Lactobacillus curvatus on Changes of The Microbial Community in Vacuum-Packaged Chilled Beef. Asian-Australas. J. Anim. Sci., 31(4):585–594.
- Laila Ben Said, He´le`ne Gaudreau, Laurent Dallaire, Miche`le Tessier, and Ismail Fliss. 2019. Bioprotective Culture: A New Generation of Food Additives for the Preservation of Food Quality and Safety. Industrial Biotechnology., 15(3): 138-147.
- Alleson Dobson, Paul D. Cotter, R. Paul Ross, and Colin Hillb. 2012. Bacteriocin Production: a Probiotic Trait? Applied and Environmental Microbiology.: 1– 6.
- Dobson, A.,Cotter,P.D., Ross,R.P., and Hill,C. 2012. Bacteriocin Production: A Probiotic Trait? Appl. Environ. Microbiol. 78: 1–6.
- Holzapfel WH, Geisen R, Schillinger U. 1995. Biological Preservation of Foods with Reference to Protective Cultures, Bacteriocins and Food-Grade Enzymes. Int J Food Microbiol., 24(3):343–362.
- Neha Gautam and Nivedita Sharma. 2009. Bacteriocin: Safest Approach to Preserve Food Products Indian J. Microbiol., 49:204–211.
- Todorov SD, Koep KS, Van Reenen CA, et al. 2007. Production of Salami from Beef, Horse, Mutton, Blesbok (Damaliscus dorcas philipsi) and Springbok (Antidorcas marsupialis) with Bacteriocinogenic Strains of Lactobacillus plantarum and Lactobacillus curvatus. Meat Sci., 77(3):405–412.
- Ma. del Rocío López-Cuellar, Adriana-Inés Rodríguez-Hernández & Norberto Chavarría-Hernández. 2016. LAB Bacteriocin Applications in The Last Decade. Biotechnology & Biotechnological Equipment, 30(6): 1039–1050.
- Osama O Ibrahim. 2019. Classification of Antimicrobial Peptides Bacteriocins, and the Nature of Some Bacteriocins with Potential Applications in Food Safety and Biopharmaceuticals. Applications in Food Safety and Bio-Pharmaceutical. EC Microbiology, 15(7): 591-608.
- Slavica M. Vesković Moračanin, Dragutin A. Đukić, Nurgin R. Memiši. 2014. Bacteriocins Produced by Lactic Acid Bacteria-A Review. APTEFF, 45: 271-283
- AK Verma, R Banerjee, HP Dwivedi, VK Juneja. 2014. Bacteriocin. Potential in Food Preservation. Encyclopedia of Food Microbiology, 2nd: 180–186
- Alexis Simons, Kamel Alhanout, and Raphaël E. Duval. 2020. Bacteriocins, Antimicrobial Peptides from Bacterial Origin: Overview of Their Biology and Their Impact against Multidrug-Resistant Bacteria. Microorganisms, 8: 1-31.
- Juan C. Oscariz, Antonio G. Pisabarro. 2001. Classification and mode of action of membrane-active bacteriocins produced by Gram-positive bacteria. Int. Microbial., 4: 13-19.
- Gonzales, B.E., E. Glaasker, E.R.S. Kunji, A.J.M. Driessen, J.E. Suarez dan W.N. K. Onings. 1996. Bactericidal mode of Action of Plantaricin S. Appl. Environ. Microbiol., 62: 2701-2709.
- Drider, D., Fimland, G., Hechard, Y., McMullen, dan H. Prevost,. 2006. The Continuing Story of Class IIa Bacteriosins. Microbiology and Molecular Biology: 562-582.
- Desalegn Amenu Delesa. 2017. Bacteriocin as an advanced technology in food industry. Int. J. Adv. Res. Biol. Sci., 4(12): 178-190.
- Kawai, Y., Ishii, Y.,Arakawa, K., Uemura, K., Saitoh, B., Nishimura,J., et al. 2004. Structural and Functional Differences in Two Cyclic Bacteriocins with The Same Sequences Produced by Lactobacilli. Applied and Environmental Microbiology, 70: 2906-2911.
- van Belkum MJ, Martin-Visscher LA, Vederas JC. 2011. Structure and genetics of circular bacteriocins. Trends Microbiol,. 19:411–418.
- Christina Gabrielsen,a Dag A. Brede,b Ingolf F. Nes,b Dzung B. Diepb. 2014. Circular Bacteriocins: Biosynthesis and Mode of Action. Applied and Environmental Microbiology 80(22): 6854–6862.
- Cotter PD, Hill C, Ross RP. 2005. Bacteriocins: Developing Innate Immunity for Food. Nat. Rev. Microbiol., 3:777–788.
- Nissen-Meyer J, Rogne P, Oppegard C, Haugen HS, Kristiansen PE. 2009. Structure-Function Relationships of The Non-Lanthionine-Containing Peptide (Class II) Bacteriocins Produced by Gram-Positive Bacteria. Curr. Pharm. Biotechnol., 10:19–37.
- Rea M, Ross RP, Cotter P, Hill C. 2011. Classification of Bacteriocins from Gram-positive Bacteria, p 29–53. In Drider D, Rebuffat S (ed), Prokaryotic Antimicrobial Peptides. Springer, New York, NY.
- Maqueda M, Sanchez-Hidalgo M, Fernandez M, Montalban-Lopez M, Valdivia E, Martinez-Bueno M. 2008. Genetic Features of Circular Bacteriocins Produced by Gram-positive bacteria. FEMS Microbiol., Rev. 32:2–22.
- Kemperman R, Kuipers A, Karsens H, Nauta A, Kuipers O, Kok J. 2003. Identification and Characterization of Two Novel Clostridial Bacteriocins, Circularin A and Closticin 574. Appl. Environ. Microbiol., 69:1589–1597.
- Heng NCK, Wescombe PA, Burton JP, Jack RW, Tagg JR. 2007. The Diversity of Bacteriocins in Gram-Positive Bacteria, p 45–92. In Riley MA, Chavan MA (ed), Bacteriocins: Ecology and Evolution. Springer-Verlag, Berlin, Germany.
- Montalban-Lopez M, Sanchez-Hidalgo M, Cebrian R, Maqueda M. 2012. Discovering the Bacterial Circular Proteins: Bacteriocins, Cyanobactins, and Pilins. J. Biol. Chem., 287: 27007–27013.
- Paetzel M, Karla A, Strynadka NC, Dalbey RE. 2002. Signal Peptidases. Chem. Rev. 102: 4549–4580.
- Van Belkum MJ, Kok J, Venema G, Holo H, Nes IF, Konings WN, Abee T. 1991. The Bacteriocin Lactococcin A Specifically Increases Permeability of Lactococcal Cytoplasmic Membranes. J Bacteriol. 173(24): 7934–7941.
- Bhugaloo-Vial P, Dousset X, Metivier A, Sorokine O, Anglade P, Boyaval P, Marion D. 1996. Purification and Amino Acid Sequences of Piscicocins VIa and VIb, Two Class IIa Bacteriocins Secreted by Carnobacterium piscicola VI that Display Significantly Different Levels of Specific Inhibitory Activity. Appl. Environ. Microbiol., 62: 4410-4416.
- Daili Jacqueline Aguilar Netz., et al. 2002. Mode of Action of the Antimicrobial Peptide Aureocin A53from Staphylococcus aureus. Applied and Environmental Microbiology 68(110): 5274-5280.
- Jon Nissen-Meyer, Camilla Oppega°rd, Per Rogne, Helen Sophie Haugen, Per Eugen Kristiansen. 2010. Structure and Mode-of-Action of the Two-Peptide (Class-IIb) Bacteriocins. Probiotics & Antimicro. Prot., 2: 52–60
- Sonia Chehimi, Anne-Marie Pons, Sophie Sablé, Mohamed-Rabeh Hajlaoui, Férid Limam. 2010. Mode of Action of Thuricin S, A New Class IId Bacteriocin from Bacillus thuringiensis. Canadian Journal of Microbiology,56(2): 162-167.
- Lai, A. C., Tran, S., & Simmonds, R. S. 2002. Functional Characterization of Domains Found within A Lytic Enzyme Produced by Streptococcus equi subsp. zooepidemicus. FEMS Microbiology Letters, 215: 133-138.
- Klaenhammer, T. R. 1993. Genetics of Bacteriocins Produced by Lactic Acid Bacteria. FEMS Microbiological Review, 12: 39-85.
- Shengyue Ji., et al. 2015. Improved Production of Sublancin via Introduction of Three Characteristic Promoters into Operon Clusters Responsible for This Novel Distinct Glycopeptide Biosynthesis. Microbial Cell Factories, 14:17.
- Amso Z., et al. 2018. Total Chemical Synthesis of Glycocin F and Analogues: S-glycosylation Confers Improved Antimicrobial Activity”. Chemical Science 9(6): 1686-1691.
- Guasch,J.F., Enfedaque,J., Ferrer,S., Gargallo,D., and Regue,M. 1995. Bacteriocin 28b, A Chromosomally Encoded Bacteriocin Produced by Most Serratia marcescens Biotypes. Res.Microbiol. 146: 477–483.
- Dimov,S., Ivanova,P., Harizanova,N., and Ivanova,I. 2005. Bioactive Peptides Used by Bacteria in the Concurrence for The Ecological Niche: General Classification and Mode of Action (Overview). Biotechnol. Biotechnol.Eq. 3: 3–22.
- Cascales, E.,Buchanan,S.K.,Duche,D.,Kleanthous,C.,Lloubès,R.,Postle, K., etal. 2007. Colicinbiology. Microbiol.Mol.Biol.Rev. 71, 158–229.
- Martinis De, Elaine C. P. , and Bernadette D. G. M., Franco B.D.G.M. 2001. Inhibition of Listeria monocytogenes in A Pork Product by A Lactobacillus sake Strain. International Journal of Food Microbiology, 42(1-2): 119-126.
- Todorov,S.D., Franco,B.D., and Wiid,I.J. 2014. In vitro Study of Beneficial Properties and Safety of Lactic Acid Bacteria Isolated from Portuguese Fermented Meat Products. Benef. Microbes. 24: 1–16.
- Yang,E., Fan,L., Jiang,Y., Doucette,C., and Fillmore,S. 2012. Antimicrobial Activity of Bacteriocin-Producing Lactic Acid Bacteria Isolated from Cheeses and Yogurts. AMB Exp., 2: 48.
- Settanni, L., and Corsetti,A. 2008. Application of Bacteriocins in Vegetable Food Biopreservation. Int. J. Food Microbiol., 121: 123–138.
- Cláudia Vieira Prudêncio., et al. 2015. Strategies for The Use of Bacteriocins in Gram-negative Bacteria: Relevance in Food Microbiology. Journal of Food Science and Technology 52(9): 5408-5417.
- Virginia N Scott and steve L Taylor. 1981. Effect of Nisin on the Outgrowth of Clostridium botulinum Spores. Journal of Food Science 46(1): 117-127.
- Dabour N., et al. 2009. In Vivo Study on The Effectiveness of Pediocin PA-1 and Pediococcus acidilactici UL5 at Inhibiting Listeria monocytogenes International Journal of Food Microbiology 133(3): 225-233.
- Foulquié Moreno, M.R., Sarantinopoulos, P., Tsakalidou, E., and De Vuyst, L. 2006. The Role and Application of Enterococci in Food and Health. Int.J.Food Microbiol. 106: 1–24.
- Duquesne S., et al. 2007. Structural and Functional Diversity of Microcins, Gene-Encoded Antibacterial Peptides from Enterobacteria. Journal of Molecular Microbiology and Biotechnology, 13(4): 200-209.
- Narsaiah K., et al. 2014. Optimizing microencapsulation of nisin with sodium alginate and guar gum. Journal of Food Science and Technology. 51(12): 4054-4059.
- Cotter,P.D., Ross,R.P., and Hill,C. 2013. Bacteriocins—A viable Alternative to Antibiotics? Nat.Rev.Microbiol., 11: 95–105.
- Grinter, R., Milner, J., and Walker, D. 2012. Bacteriocins active against plant pathogenic bacteria. Biochem.Soc.Trans. 40: 1498–1502.
- Jordi, B.J., Boutaga, K., van Heeswijk, C.M., van Knapen, F., and Lipman, L.J. 2001. Sensitivity of Shigatoxin-Producing Escherichia coli (STEC) Strains for Colicins under Different Experimental Conditions. FEMS. Microbiol. Lett. 204: 329–334.
- Stahl, C.H., Callaway, T.R., Lincoln, L.M., Lonergan, S.M., and Genovese, K. J. 2004. Inhibitory activities of colicins against Escherichia coli Strains Responsible for Post Weaning Diarrhea and Edema Disease in Swine. Antimicrob. Agents. Chemother. 48: 3119–3121.
- Stern, N.J., Svetoch, E.A., Eruslanov, B.V., Perelygin, V.V., Mitsevich, E.V., Mitsevich,I.P., etal. 2006. Isolation of a Lactobacillus salivarius strain and purification of its bacteriocin, which is inhibitory to Campylobacterjejuni in the chicken gastrointestinal system. Antimicrob.Agents.Chemother. 50: 3111–3116.
- Guangfeng Zhao., et al. 2015. Effects of Antimicrobial Peptides on Staphylococcus aureus Growth and Biofilm Formation In Vitro Following Isolation from Implant-Associated Infections. International Journal of Clinical and Experimental Medicine, 8(1): 1546-1551.
- Nyoman Fitri. 2012. Antimicrobial Peptides sebagai Obat Alternatif pada Resistensi Antibiotik. Jurnal Kefarmasian Indonesia, 2(2): 62-67.
- Bals R. 2000 Epithelial Antimicrobial Peptides in Host Defense Against Infection. Respir. Res., 1: 141-150.
- Beisswenger C, Bals R. 2005. Functions of Antimicrobial Peptides in Host Defense and Immunity. Curr. Protein Pept. Sci. 6(3): 255-64.
- Zaiou M. 2007. Multifunctional Antimicrobial Peptides: Therapeutic Targets in Several Human Diseases. Journal of Molecular Medicine, 85(4): 317-329.
- Chumchalová, J., and Smarda, J. 2003. Human Tumor Cells are Selectively Inhibited by Colicins. Folia Microbiol. (Praha), 48: 111–115.
- Fuska, J., Fuskova, A., Smarda, J., and Mach, J. 1979. Effect of Colicin E3 on Leukemia Cells P388 in vitro. Experientia, 35: 406–407.
- Lancaster, L.E., Wintermeyer, W., and Rodnina, M.V. 2007. Colicins and Their Potential in Cancer Treatment. Blood Cells Mol.Dis., 38: 15–18.
- Joo, N.E., Ritchie, K., Kamarajan, P., Miao, D., and Kapila, Y.L. 2012. Nisin, An Apoptogenic Bacteriocin and Food Preservative, Attenuates HNSCC Tumorigenesis via CHAC1. Cancer Med. 1: 295–305.
- Slavica M. Vesković Moračanin, Dragutin A. Đukić, Nurgin R. Memiši. 2014. Bacteriocins Produced by Lactic Acid Bacteria-A Review. APTEFF, 45: 271-283.
- Gálvez, A., Abriouel, H., López, R.L. and Omarn, B. 2007. Bacteriocin-Based Strategies for Food Biopreservation, Int. J. Food Microbiol., 120: 51-70.
- Macwana S, Muriana PM. 2012. Spontaneous Bacteriocin Resistance in Listeria monocytogenes as A Susceptibility Screen for Identifying Different Mechanisms of Resistance and Modes of Action by Bacteriocins of Lactic Acid Bacteria. J. Microbiol. Meth., 88:7–13.
- Giuliani A, Pirri G, Nicoletto SF. 2007. Antimicrobial Peptides: An Overview of A Promising Class of Therapeutics. CEJB, 2(1): 1-33.
- Bastos Mdo C, Coelho ML, Santos OC. 2015. Resistance to Bacteriocins Produced by Gram-positive Bacteria. Microbiology, 161: 683–700.
- Ennahar S, Sashihara T, Sonomoto K, Ishizaki A. 2000. Class IIa Bacteriocins: Biosynthesis, Structure, and Activity. FEMS Microbiol Rev., 24: 85–106.
- Hancock REW, Lehrer R. 1998. Cationic Peptides: A New Source of Antibiotics. Tibtech, 16: 82-88.
- Abdelhadi A. Abdelhadi, Nagwa, Elarabi, Rasha G. Salim, Ahmed N. Sharaf and Nivien A. Abosereh. Identification, 2016. Characterization and Genetic Improvement of Bacteriocin Producing Lactic Acid Bacteria. Biotechnology, 15 (3-4): 76-85.
- Terzaghi, B.E. and W.E. Sandine. 1975. Improved Medium for Lactic Streptoccocci and Their Bacteriophages. Applied Environ. Microbio., 29: 807-813.
- Holzapfel, W.H., P. Haberer, R. Geisen, J. Bjorkroth and U. Schilinger, 2001. Taxonomy and Important Features of Probiotic Microorganisms in Food and Nutrition. Am. J. Clin. Nutr., 73: 365S-373S.
- Buntin, N., S. Chanthachum and T. Hongpattarakere. 2008. Screening of Lactic Acid Bacteria from Gastrointestinal Tracts of Marine Fish for Their Potential Use as Probiotics. Songklanakarin J. Sci. Technol., 30: 141-148.
- Noreddine Benkerroum, Yasmine Ghouati and Hakim Ghalfi. 2007. Screening for Bacteriocin-producing Lactic Acid Bacteria from Various Moroccan Food Products and Partial Characterization of Putative Bacteriocins. Biotechnology, 6(4): 481-488.
- Amor, K.B., E.E. Vaughan and W.M. de Vos. 2007. Advanced Molecular Tools for The Identification of Lactic Acid Bacteria. J. Nutr., 137: 741S-747S.
- Salasiah Kormin, Gulam Rusul, Son Radu and Foo Hooi Ling. 2001. Bacteriocin-Producing Lactic Acid Bacteria Isolated from Traditional Fermented Food. Malaysian Journal of Medical Sciences, 8(1): 63-68.
- Arihara, K., Ogihara, S., Mukain, T., Itoh, M. and Kondo, Y. 1996. Salivacin 140, A Novel Bacteriocin from Lactobacillus salivarius subsp, salicinius T140 Active Against Pathogenic Bacteria. Lett. Appl. Microbiol. 22: 420-24.
- Schillinger, U. and Lucke, F.K. 1989. Antibacterial Activity of Lactobacillus sake Isolated from Meat. Appl. Environ. Microbiol. 55: 1901-1906.
- Barefoot, S.F. and Klaenhammer, T.R. 1983. Detection and Activity of Lactacin B, A Bacteriocin Produced by Lactobacillus acidophilus. Appl. Environ. Microbiol., 45: 1808-1815.
- Enan, G., Ei-Essawy, A.A., Uyttendaele, M., Debevere, J., 1996. Antibacterial Activity of L. plantarum UG1 Isolated from Dry Sausage: Characterization, Production and Bactericidal Action of Plantaricin UG1. Int. J. Food Microbiol., 30: 189-215.
- Montville, T.J. and Kaiser, A.L. 1993. Antimicrobial Protein: Classification, Nomenclature, Diversity and Relationship to Bacteriocin. In: Hoover, D. G. and Steenson L.R. eds. Bacteriocins of Lactic Acid Bacteria, London: Academic Press, Inc, 1993: 1-17.
- H. Chen and D. G. Hoover. Bacteriocins and Their Food Applications. Comprehensive Reviews In Food Science and Food Safety. 2: 82-100.
- Peraturan Badan Pengawas Obat dan Makanan Nomor 13 Tahun 2019 tentang Batas Maksimal Cemaran Mikroba dalam Pangan Olahan.
- Diwas Pradan. 2015. Bacteriocin based strategy for enhanced food safety. National Dairy Research Institute.
- Shilja Choyam, Alok Kumar Srivastava, Jae-Ho Shin and Rajagopal Kammara. 2019. Ocins for Food Safety. Frontiers in Microbiology: 1-13.
- Peraturan Badan Pengawas Obat dan Makanan Nomor 11 Tahun 2019 tentang Bahan Tambahan Pangan.
- Florie Desriac, Diane Defer, Nathalie Bourgougnon, Benjamin Brillet, Patrick Le Chevalier and Yannick Fleury. 2010. Bacteriocin as Weapons in the Marine Animal-Associated Bacteria Warfare: Inventory and Potential Applications as an Aquaculture Probiotic. Mar. Drugs (8): 1153-1177.
- von Wright, A. 2005. Regulating the Safety of Probiotics - The European Approach. Curr. Pharm. Des., (11): 17–23.
- 101.70, C. Subpart E-Specific Requirements for Health Claims. Code Fed. Regul. 2005, 21, 126–129.
- Mathur H, Field D, Rea MC, et al. 2017. Bacteriocin-Antimicrobial Synergy: A Medical and Food Perspective. Front Microbiol., 8: 1-18.
- Boziaris IS, Adams MR. 1999. Effect of chelators and nisin produced in situ on inhibition and inactivation of Gram-negatives. Int. J. Food Microbiol. 53: 105–113.
- Benkerroum N, Daoudi A, Kamal M. 2003. Behaviour of Listeria monocytogenes in Raw Sausages (Merguez) in Presence of A Bacteriocin-Producing Lactococcal Strain as A Protective Culture. Meat Sci., 63: 479–484.
- Ahire JJ, Dicks LM. 2015. Nisin Incorporated with 2,3-dihydroxybenzoic Acid in Nanofibers Inhibits Biofilm Formation by A Methicillin-Resistant Strain of Staphylococcus aureus. Probiotic Antimicro Proteins., 7: 52–59
- Preet S, Bharati S, Panjeta A, et al. 2015. Effect of Nisin and Doxorubicin on DMBA-Induced Skin Carcinogenesis–A Possible Adjunct Therapy. Tumour Biol., 36: 8301–8308.
- Kamarajan P, Hayami T, Matte B, et al. 2015. Nisin ZP, A Bacteriocin and Food Preservative, Inhibits Head and Neck Cancer Tumorigenesis and Prolongs Survival. PLoS One 10: 1-20.
- Kaur B, Balgir PP, Mittu B, et al. 2013. Biomedical applications of fermenticin HV6b isolated from Lactobacillus fermentum HV6b MTCC10770. Biomed. Res. Int.: 1-9.
- Piper C, Casey PG, Hill C, et al. 2012. The Lantibiotic Lacticin 3147 Prevents Systemic Spread of Staphylococcus aureus in A Murine Infection Model. Int. J. Microbiol.: 1-6.
- Sumanpreet Kaur and Sukhraj Kaur. 2015. Bacteriocins as Potential Anticancer Agents. Frontiers in Pharmacology, 6: 1-11.
- Noraphat Hwanhlem and Aran H-Kittikun. 2015. Biopreservation of Seafood by Using Bacteriocins and Bacteriocinogenic Lactic Acid Bacteria as Potential Bio-control Agents. Microbiology monographs: 183-213.
- Zacharof M.P. and Lovitt R.W. 2012. Bacteriocins Produced by Lactic Acid Bacteria a Review Article. APCBEE Procedia, 2: 50–56.
- Chen H, Hoover DG. 2003. Bacteriocins and Their Food Applications. Compr. Rev. Food. Sci. Food. Saf. 2: 82–100.
- Claudio de Simone. 2019. The Unregulated Probiotic Market. Clinical Gastroenterology and Hepatology (17): 809–817.
- Trinchieri V, Laghi L, Vitali B, et al. 2017. Efficacy and Safety of a Multistrain Probiotic Depends from Manufacturing. Front Immunol., 8:1474.
References
References
Loris Riccardo Lopetuso, Maria Ernestina Giorgio, Angela Saviano, Franco Scaldaferri, Antonio Gasbarrini and Giovanni Cammarota. 2019. Bacteriocins and Bacteriophages: Therapeutic Weapons for Gastrointestinal Diseases?. Int. J. Mol. Sci., 20 (1): 183-192.
Shih-Chun Yang, Chih-HungLin, CalvinT.Sung and Jia-YouFang. 2014. Antibacterial Activities of Bacteriocins: Application in Foods and Pharmaceuticals. Frontiers in microbiology, 5: 1-10.
Bintsis T. 2018. Lactic Acid Bacteria: Their Applications in Foods. J. Bacteriol. Mycol., 6(2):89–94.
E M O'Connor , R F Shand. 2002. Halocins and Sulfolobicins: The Emerging Story of Archaeal Protein and Peptide Antibiotics. J. Ind. Microbiol. Biotechnol., 28: 23-31.
http://www.fao.org/3/y8705e/y8705e03.htm (diakses pada 3 September 2020)
C. Leitzmann. 1993. Food Quality-Definition and a Holistic View. Safeguarding Food Quality pp 3-15.
Zhang Y, Zhu L, Dong P, et al. 2018. Bio-protective Potential of Lactic Acid Bacteria: Effect of Lactobacillus sakei and Lactobacillus curvatus on Changes of The Microbial Community in Vacuum-Packaged Chilled Beef. Asian-Australas. J. Anim. Sci., 31(4):585–594.
Laila Ben Said, He´le`ne Gaudreau, Laurent Dallaire, Miche`le Tessier, and Ismail Fliss. 2019. Bioprotective Culture: A New Generation of Food Additives for the Preservation of Food Quality and Safety. Industrial Biotechnology., 15(3): 138-147.
Alleson Dobson, Paul D. Cotter, R. Paul Ross, and Colin Hillb. 2012. Bacteriocin Production: a Probiotic Trait? Applied and Environmental Microbiology.: 1– 6.
Dobson, A.,Cotter,P.D., Ross,R.P., and Hill,C. 2012. Bacteriocin Production: A Probiotic Trait? Appl. Environ. Microbiol. 78: 1–6.
Holzapfel WH, Geisen R, Schillinger U. 1995. Biological Preservation of Foods with Reference to Protective Cultures, Bacteriocins and Food-Grade Enzymes. Int J Food Microbiol., 24(3):343–362.
Neha Gautam and Nivedita Sharma. 2009. Bacteriocin: Safest Approach to Preserve Food Products Indian J. Microbiol., 49:204–211.
Todorov SD, Koep KS, Van Reenen CA, et al. 2007. Production of Salami from Beef, Horse, Mutton, Blesbok (Damaliscus dorcas philipsi) and Springbok (Antidorcas marsupialis) with Bacteriocinogenic Strains of Lactobacillus plantarum and Lactobacillus curvatus. Meat Sci., 77(3):405–412.
Ma. del Rocío López-Cuellar, Adriana-Inés Rodríguez-Hernández & Norberto Chavarría-Hernández. 2016. LAB Bacteriocin Applications in The Last Decade. Biotechnology & Biotechnological Equipment, 30(6): 1039–1050.
Osama O Ibrahim. 2019. Classification of Antimicrobial Peptides Bacteriocins, and the Nature of Some Bacteriocins with Potential Applications in Food Safety and Biopharmaceuticals. Applications in Food Safety and Bio-Pharmaceutical. EC Microbiology, 15(7): 591-608.
Slavica M. Vesković Moračanin, Dragutin A. Đukić, Nurgin R. Memiši. 2014. Bacteriocins Produced by Lactic Acid Bacteria-A Review. APTEFF, 45: 271-283
AK Verma, R Banerjee, HP Dwivedi, VK Juneja. 2014. Bacteriocin. Potential in Food Preservation. Encyclopedia of Food Microbiology, 2nd: 180–186
Alexis Simons, Kamel Alhanout, and Raphaël E. Duval. 2020. Bacteriocins, Antimicrobial Peptides from Bacterial Origin: Overview of Their Biology and Their Impact against Multidrug-Resistant Bacteria. Microorganisms, 8: 1-31.
Juan C. Oscariz, Antonio G. Pisabarro. 2001. Classification and mode of action of membrane-active bacteriocins produced by Gram-positive bacteria. Int. Microbial., 4: 13-19.
Gonzales, B.E., E. Glaasker, E.R.S. Kunji, A.J.M. Driessen, J.E. Suarez dan W.N. K. Onings. 1996. Bactericidal mode of Action of Plantaricin S. Appl. Environ. Microbiol., 62: 2701-2709.
Drider, D., Fimland, G., Hechard, Y., McMullen, dan H. Prevost,. 2006. The Continuing Story of Class IIa Bacteriosins. Microbiology and Molecular Biology: 562-582.
Desalegn Amenu Delesa. 2017. Bacteriocin as an advanced technology in food industry. Int. J. Adv. Res. Biol. Sci., 4(12): 178-190.
Kawai, Y., Ishii, Y.,Arakawa, K., Uemura, K., Saitoh, B., Nishimura,J., et al. 2004. Structural and Functional Differences in Two Cyclic Bacteriocins with The Same Sequences Produced by Lactobacilli. Applied and Environmental Microbiology, 70: 2906-2911.
van Belkum MJ, Martin-Visscher LA, Vederas JC. 2011. Structure and genetics of circular bacteriocins. Trends Microbiol,. 19:411–418.
Christina Gabrielsen,a Dag A. Brede,b Ingolf F. Nes,b Dzung B. Diepb. 2014. Circular Bacteriocins: Biosynthesis and Mode of Action. Applied and Environmental Microbiology 80(22): 6854–6862.
Cotter PD, Hill C, Ross RP. 2005. Bacteriocins: Developing Innate Immunity for Food. Nat. Rev. Microbiol., 3:777–788.
Nissen-Meyer J, Rogne P, Oppegard C, Haugen HS, Kristiansen PE. 2009. Structure-Function Relationships of The Non-Lanthionine-Containing Peptide (Class II) Bacteriocins Produced by Gram-Positive Bacteria. Curr. Pharm. Biotechnol., 10:19–37.
Rea M, Ross RP, Cotter P, Hill C. 2011. Classification of Bacteriocins from Gram-positive Bacteria, p 29–53. In Drider D, Rebuffat S (ed), Prokaryotic Antimicrobial Peptides. Springer, New York, NY.
Maqueda M, Sanchez-Hidalgo M, Fernandez M, Montalban-Lopez M, Valdivia E, Martinez-Bueno M. 2008. Genetic Features of Circular Bacteriocins Produced by Gram-positive bacteria. FEMS Microbiol., Rev. 32:2–22.
Kemperman R, Kuipers A, Karsens H, Nauta A, Kuipers O, Kok J. 2003. Identification and Characterization of Two Novel Clostridial Bacteriocins, Circularin A and Closticin 574. Appl. Environ. Microbiol., 69:1589–1597.
Heng NCK, Wescombe PA, Burton JP, Jack RW, Tagg JR. 2007. The Diversity of Bacteriocins in Gram-Positive Bacteria, p 45–92. In Riley MA, Chavan MA (ed), Bacteriocins: Ecology and Evolution. Springer-Verlag, Berlin, Germany.
Montalban-Lopez M, Sanchez-Hidalgo M, Cebrian R, Maqueda M. 2012. Discovering the Bacterial Circular Proteins: Bacteriocins, Cyanobactins, and Pilins. J. Biol. Chem., 287: 27007–27013.
Paetzel M, Karla A, Strynadka NC, Dalbey RE. 2002. Signal Peptidases. Chem. Rev. 102: 4549–4580.
Van Belkum MJ, Kok J, Venema G, Holo H, Nes IF, Konings WN, Abee T. 1991. The Bacteriocin Lactococcin A Specifically Increases Permeability of Lactococcal Cytoplasmic Membranes. J Bacteriol. 173(24): 7934–7941.
Bhugaloo-Vial P, Dousset X, Metivier A, Sorokine O, Anglade P, Boyaval P, Marion D. 1996. Purification and Amino Acid Sequences of Piscicocins VIa and VIb, Two Class IIa Bacteriocins Secreted by Carnobacterium piscicola VI that Display Significantly Different Levels of Specific Inhibitory Activity. Appl. Environ. Microbiol., 62: 4410-4416.
Daili Jacqueline Aguilar Netz., et al. 2002. Mode of Action of the Antimicrobial Peptide Aureocin A53from Staphylococcus aureus. Applied and Environmental Microbiology 68(110): 5274-5280.
Jon Nissen-Meyer, Camilla Oppega°rd, Per Rogne, Helen Sophie Haugen, Per Eugen Kristiansen. 2010. Structure and Mode-of-Action of the Two-Peptide (Class-IIb) Bacteriocins. Probiotics & Antimicro. Prot., 2: 52–60
Sonia Chehimi, Anne-Marie Pons, Sophie Sablé, Mohamed-Rabeh Hajlaoui, Férid Limam. 2010. Mode of Action of Thuricin S, A New Class IId Bacteriocin from Bacillus thuringiensis. Canadian Journal of Microbiology,56(2): 162-167.
Lai, A. C., Tran, S., & Simmonds, R. S. 2002. Functional Characterization of Domains Found within A Lytic Enzyme Produced by Streptococcus equi subsp. zooepidemicus. FEMS Microbiology Letters, 215: 133-138.
Klaenhammer, T. R. 1993. Genetics of Bacteriocins Produced by Lactic Acid Bacteria. FEMS Microbiological Review, 12: 39-85.
Shengyue Ji., et al. 2015. Improved Production of Sublancin via Introduction of Three Characteristic Promoters into Operon Clusters Responsible for This Novel Distinct Glycopeptide Biosynthesis. Microbial Cell Factories, 14:17.
Amso Z., et al. 2018. Total Chemical Synthesis of Glycocin F and Analogues: S-glycosylation Confers Improved Antimicrobial Activity”. Chemical Science 9(6): 1686-1691.
Guasch,J.F., Enfedaque,J., Ferrer,S., Gargallo,D., and Regue,M. 1995. Bacteriocin 28b, A Chromosomally Encoded Bacteriocin Produced by Most Serratia marcescens Biotypes. Res.Microbiol. 146: 477–483.
Dimov,S., Ivanova,P., Harizanova,N., and Ivanova,I. 2005. Bioactive Peptides Used by Bacteria in the Concurrence for The Ecological Niche: General Classification and Mode of Action (Overview). Biotechnol. Biotechnol.Eq. 3: 3–22.
Cascales, E.,Buchanan,S.K.,Duche,D.,Kleanthous,C.,Lloubès,R.,Postle, K., etal. 2007. Colicinbiology. Microbiol.Mol.Biol.Rev. 71, 158–229.
Martinis De, Elaine C. P. , and Bernadette D. G. M., Franco B.D.G.M. 2001. Inhibition of Listeria monocytogenes in A Pork Product by A Lactobacillus sake Strain. International Journal of Food Microbiology, 42(1-2): 119-126.
Todorov,S.D., Franco,B.D., and Wiid,I.J. 2014. In vitro Study of Beneficial Properties and Safety of Lactic Acid Bacteria Isolated from Portuguese Fermented Meat Products. Benef. Microbes. 24: 1–16.
Yang,E., Fan,L., Jiang,Y., Doucette,C., and Fillmore,S. 2012. Antimicrobial Activity of Bacteriocin-Producing Lactic Acid Bacteria Isolated from Cheeses and Yogurts. AMB Exp., 2: 48.
Settanni, L., and Corsetti,A. 2008. Application of Bacteriocins in Vegetable Food Biopreservation. Int. J. Food Microbiol., 121: 123–138.
Cláudia Vieira Prudêncio., et al. 2015. Strategies for The Use of Bacteriocins in Gram-negative Bacteria: Relevance in Food Microbiology. Journal of Food Science and Technology 52(9): 5408-5417.
Virginia N Scott and steve L Taylor. 1981. Effect of Nisin on the Outgrowth of Clostridium botulinum Spores. Journal of Food Science 46(1): 117-127.
Dabour N., et al. 2009. In Vivo Study on The Effectiveness of Pediocin PA-1 and Pediococcus acidilactici UL5 at Inhibiting Listeria monocytogenes International Journal of Food Microbiology 133(3): 225-233.
Foulquié Moreno, M.R., Sarantinopoulos, P., Tsakalidou, E., and De Vuyst, L. 2006. The Role and Application of Enterococci in Food and Health. Int.J.Food Microbiol. 106: 1–24.
Duquesne S., et al. 2007. Structural and Functional Diversity of Microcins, Gene-Encoded Antibacterial Peptides from Enterobacteria. Journal of Molecular Microbiology and Biotechnology, 13(4): 200-209.
Narsaiah K., et al. 2014. Optimizing microencapsulation of nisin with sodium alginate and guar gum. Journal of Food Science and Technology. 51(12): 4054-4059.
Cotter,P.D., Ross,R.P., and Hill,C. 2013. Bacteriocins—A viable Alternative to Antibiotics? Nat.Rev.Microbiol., 11: 95–105.
Grinter, R., Milner, J., and Walker, D. 2012. Bacteriocins active against plant pathogenic bacteria. Biochem.Soc.Trans. 40: 1498–1502.
Jordi, B.J., Boutaga, K., van Heeswijk, C.M., van Knapen, F., and Lipman, L.J. 2001. Sensitivity of Shigatoxin-Producing Escherichia coli (STEC) Strains for Colicins under Different Experimental Conditions. FEMS. Microbiol. Lett. 204: 329–334.
Stahl, C.H., Callaway, T.R., Lincoln, L.M., Lonergan, S.M., and Genovese, K. J. 2004. Inhibitory activities of colicins against Escherichia coli Strains Responsible for Post Weaning Diarrhea and Edema Disease in Swine. Antimicrob. Agents. Chemother. 48: 3119–3121.
Stern, N.J., Svetoch, E.A., Eruslanov, B.V., Perelygin, V.V., Mitsevich, E.V., Mitsevich,I.P., etal. 2006. Isolation of a Lactobacillus salivarius strain and purification of its bacteriocin, which is inhibitory to Campylobacterjejuni in the chicken gastrointestinal system. Antimicrob.Agents.Chemother. 50: 3111–3116.
Guangfeng Zhao., et al. 2015. Effects of Antimicrobial Peptides on Staphylococcus aureus Growth and Biofilm Formation In Vitro Following Isolation from Implant-Associated Infections. International Journal of Clinical and Experimental Medicine, 8(1): 1546-1551.
Nyoman Fitri. 2012. Antimicrobial Peptides sebagai Obat Alternatif pada Resistensi Antibiotik. Jurnal Kefarmasian Indonesia, 2(2): 62-67.
Bals R. 2000 Epithelial Antimicrobial Peptides in Host Defense Against Infection. Respir. Res., 1: 141-150.
Beisswenger C, Bals R. 2005. Functions of Antimicrobial Peptides in Host Defense and Immunity. Curr. Protein Pept. Sci. 6(3): 255-64.
Zaiou M. 2007. Multifunctional Antimicrobial Peptides: Therapeutic Targets in Several Human Diseases. Journal of Molecular Medicine, 85(4): 317-329.
Chumchalová, J., and Smarda, J. 2003. Human Tumor Cells are Selectively Inhibited by Colicins. Folia Microbiol. (Praha), 48: 111–115.
Fuska, J., Fuskova, A., Smarda, J., and Mach, J. 1979. Effect of Colicin E3 on Leukemia Cells P388 in vitro. Experientia, 35: 406–407.
Lancaster, L.E., Wintermeyer, W., and Rodnina, M.V. 2007. Colicins and Their Potential in Cancer Treatment. Blood Cells Mol.Dis., 38: 15–18.
Joo, N.E., Ritchie, K., Kamarajan, P., Miao, D., and Kapila, Y.L. 2012. Nisin, An Apoptogenic Bacteriocin and Food Preservative, Attenuates HNSCC Tumorigenesis via CHAC1. Cancer Med. 1: 295–305.
Slavica M. Vesković Moračanin, Dragutin A. Đukić, Nurgin R. Memiši. 2014. Bacteriocins Produced by Lactic Acid Bacteria-A Review. APTEFF, 45: 271-283.
Gálvez, A., Abriouel, H., López, R.L. and Omarn, B. 2007. Bacteriocin-Based Strategies for Food Biopreservation, Int. J. Food Microbiol., 120: 51-70.
Macwana S, Muriana PM. 2012. Spontaneous Bacteriocin Resistance in Listeria monocytogenes as A Susceptibility Screen for Identifying Different Mechanisms of Resistance and Modes of Action by Bacteriocins of Lactic Acid Bacteria. J. Microbiol. Meth., 88:7–13.
Giuliani A, Pirri G, Nicoletto SF. 2007. Antimicrobial Peptides: An Overview of A Promising Class of Therapeutics. CEJB, 2(1): 1-33.
Bastos Mdo C, Coelho ML, Santos OC. 2015. Resistance to Bacteriocins Produced by Gram-positive Bacteria. Microbiology, 161: 683–700.
Ennahar S, Sashihara T, Sonomoto K, Ishizaki A. 2000. Class IIa Bacteriocins: Biosynthesis, Structure, and Activity. FEMS Microbiol Rev., 24: 85–106.
Hancock REW, Lehrer R. 1998. Cationic Peptides: A New Source of Antibiotics. Tibtech, 16: 82-88.
Abdelhadi A. Abdelhadi, Nagwa, Elarabi, Rasha G. Salim, Ahmed N. Sharaf and Nivien A. Abosereh. Identification, 2016. Characterization and Genetic Improvement of Bacteriocin Producing Lactic Acid Bacteria. Biotechnology, 15 (3-4): 76-85.
Terzaghi, B.E. and W.E. Sandine. 1975. Improved Medium for Lactic Streptoccocci and Their Bacteriophages. Applied Environ. Microbio., 29: 807-813.
Holzapfel, W.H., P. Haberer, R. Geisen, J. Bjorkroth and U. Schilinger, 2001. Taxonomy and Important Features of Probiotic Microorganisms in Food and Nutrition. Am. J. Clin. Nutr., 73: 365S-373S.
Buntin, N., S. Chanthachum and T. Hongpattarakere. 2008. Screening of Lactic Acid Bacteria from Gastrointestinal Tracts of Marine Fish for Their Potential Use as Probiotics. Songklanakarin J. Sci. Technol., 30: 141-148.
Noreddine Benkerroum, Yasmine Ghouati and Hakim Ghalfi. 2007. Screening for Bacteriocin-producing Lactic Acid Bacteria from Various Moroccan Food Products and Partial Characterization of Putative Bacteriocins. Biotechnology, 6(4): 481-488.
Amor, K.B., E.E. Vaughan and W.M. de Vos. 2007. Advanced Molecular Tools for The Identification of Lactic Acid Bacteria. J. Nutr., 137: 741S-747S.
Salasiah Kormin, Gulam Rusul, Son Radu and Foo Hooi Ling. 2001. Bacteriocin-Producing Lactic Acid Bacteria Isolated from Traditional Fermented Food. Malaysian Journal of Medical Sciences, 8(1): 63-68.
Arihara, K., Ogihara, S., Mukain, T., Itoh, M. and Kondo, Y. 1996. Salivacin 140, A Novel Bacteriocin from Lactobacillus salivarius subsp, salicinius T140 Active Against Pathogenic Bacteria. Lett. Appl. Microbiol. 22: 420-24.
Schillinger, U. and Lucke, F.K. 1989. Antibacterial Activity of Lactobacillus sake Isolated from Meat. Appl. Environ. Microbiol. 55: 1901-1906.
Barefoot, S.F. and Klaenhammer, T.R. 1983. Detection and Activity of Lactacin B, A Bacteriocin Produced by Lactobacillus acidophilus. Appl. Environ. Microbiol., 45: 1808-1815.
Enan, G., Ei-Essawy, A.A., Uyttendaele, M., Debevere, J., 1996. Antibacterial Activity of L. plantarum UG1 Isolated from Dry Sausage: Characterization, Production and Bactericidal Action of Plantaricin UG1. Int. J. Food Microbiol., 30: 189-215.
Montville, T.J. and Kaiser, A.L. 1993. Antimicrobial Protein: Classification, Nomenclature, Diversity and Relationship to Bacteriocin. In: Hoover, D. G. and Steenson L.R. eds. Bacteriocins of Lactic Acid Bacteria, London: Academic Press, Inc, 1993: 1-17.
H. Chen and D. G. Hoover. Bacteriocins and Their Food Applications. Comprehensive Reviews In Food Science and Food Safety. 2: 82-100.
Peraturan Badan Pengawas Obat dan Makanan Nomor 13 Tahun 2019 tentang Batas Maksimal Cemaran Mikroba dalam Pangan Olahan.
Diwas Pradan. 2015. Bacteriocin based strategy for enhanced food safety. National Dairy Research Institute.
Shilja Choyam, Alok Kumar Srivastava, Jae-Ho Shin and Rajagopal Kammara. 2019. Ocins for Food Safety. Frontiers in Microbiology: 1-13.
Peraturan Badan Pengawas Obat dan Makanan Nomor 11 Tahun 2019 tentang Bahan Tambahan Pangan.
Florie Desriac, Diane Defer, Nathalie Bourgougnon, Benjamin Brillet, Patrick Le Chevalier and Yannick Fleury. 2010. Bacteriocin as Weapons in the Marine Animal-Associated Bacteria Warfare: Inventory and Potential Applications as an Aquaculture Probiotic. Mar. Drugs (8): 1153-1177.
von Wright, A. 2005. Regulating the Safety of Probiotics - The European Approach. Curr. Pharm. Des., (11): 17–23.
101.70, C. Subpart E-Specific Requirements for Health Claims. Code Fed. Regul. 2005, 21, 126–129.
Mathur H, Field D, Rea MC, et al. 2017. Bacteriocin-Antimicrobial Synergy: A Medical and Food Perspective. Front Microbiol., 8: 1-18.
Boziaris IS, Adams MR. 1999. Effect of chelators and nisin produced in situ on inhibition and inactivation of Gram-negatives. Int. J. Food Microbiol. 53: 105–113.
Benkerroum N, Daoudi A, Kamal M. 2003. Behaviour of Listeria monocytogenes in Raw Sausages (Merguez) in Presence of A Bacteriocin-Producing Lactococcal Strain as A Protective Culture. Meat Sci., 63: 479–484.
Ahire JJ, Dicks LM. 2015. Nisin Incorporated with 2,3-dihydroxybenzoic Acid in Nanofibers Inhibits Biofilm Formation by A Methicillin-Resistant Strain of Staphylococcus aureus. Probiotic Antimicro Proteins., 7: 52–59
Preet S, Bharati S, Panjeta A, et al. 2015. Effect of Nisin and Doxorubicin on DMBA-Induced Skin Carcinogenesis–A Possible Adjunct Therapy. Tumour Biol., 36: 8301–8308.
Kamarajan P, Hayami T, Matte B, et al. 2015. Nisin ZP, A Bacteriocin and Food Preservative, Inhibits Head and Neck Cancer Tumorigenesis and Prolongs Survival. PLoS One 10: 1-20.
Kaur B, Balgir PP, Mittu B, et al. 2013. Biomedical applications of fermenticin HV6b isolated from Lactobacillus fermentum HV6b MTCC10770. Biomed. Res. Int.: 1-9.
Piper C, Casey PG, Hill C, et al. 2012. The Lantibiotic Lacticin 3147 Prevents Systemic Spread of Staphylococcus aureus in A Murine Infection Model. Int. J. Microbiol.: 1-6.
Sumanpreet Kaur and Sukhraj Kaur. 2015. Bacteriocins as Potential Anticancer Agents. Frontiers in Pharmacology, 6: 1-11.
Noraphat Hwanhlem and Aran H-Kittikun. 2015. Biopreservation of Seafood by Using Bacteriocins and Bacteriocinogenic Lactic Acid Bacteria as Potential Bio-control Agents. Microbiology monographs: 183-213.
Zacharof M.P. and Lovitt R.W. 2012. Bacteriocins Produced by Lactic Acid Bacteria a Review Article. APCBEE Procedia, 2: 50–56.
Chen H, Hoover DG. 2003. Bacteriocins and Their Food Applications. Compr. Rev. Food. Sci. Food. Saf. 2: 82–100.
Claudio de Simone. 2019. The Unregulated Probiotic Market. Clinical Gastroenterology and Hepatology (17): 809–817.
Trinchieri V, Laghi L, Vitali B, et al. 2017. Efficacy and Safety of a Multistrain Probiotic Depends from Manufacturing. Front Immunol., 8:1474.