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http://dx.doi.org/10.4014/jmb.2103.03041

Safety Evaluation of Bifidobacterium breve IDCC4401 Isolated from Infant Feces for Use as a Commercial Probiotic  

Choi, In Young (School of Food Science and Biotechnology, Kyungpook National University)
Kim, Jinhee (Drug Information Platform Center, Korea Research Institute of Chemical Technology)
Kim, Su-Hyeon (School of Food Science and Biotechnology, Kyungpook National University)
Ban, O-Hyun (Ildong BioScience)
Yang, Jungwoo (Ildong BioScience)
Park, Mi-Kyung (School of Food Science and Biotechnology, Kyungpook National University)
Publication Information
Journal of Microbiology and Biotechnology / v.31, no.7, 2021 , pp. 949-955 More about this Journal
Abstract
Previously, our research group isolated Bifidobacterium breve IDCC4401 from infant feces as a potential probiotic. For this study, we evaluated the safety of B. breve IDCC4401 using genomic and phenotypic analyses. Whole genome sequencing was performed to identify genomic characteristics and investigate the potential presence of genes encoding virulence, antibiotic resistance, and mobile genetic elements. Phenotypic analyses including antibiotic susceptibility, enzyme activity, production of biogenic amines (BAs), and proportion of D-/L-lactate were evaluated using E-test, API ZYM test, high-performance liquid chromatography (HPLC), and D-/L-lactic acid assay respectively. The genome of B. breve IDCC4401 consists of 2,426,499 bp with a GC content of 58.70% and 2,016 coding regions. Confirmation of the genome as B. breve was provided by its 98.93% similarity with B. breve DSM20213. Furthermore, B. breve IDCC4401 genes encoding virulence and antibiotic resistance were not identified. Although B. breve IDCC4401 showed antibiotic resistance against vancomycin, we confirmed that this was an intrinsic feature since the antibiotic resistance gene was not present. B. breve IDCC4401 showed leucine arylamidase, cystine arylamidase, α-galactosidase, β-galactosidase, and α-glucosidase activities, whereas it did not show production of harmful enzymes such as β-glucosidase and β-glucuronidase. In addition, B. breve IDCC4401 did not produce any tyramine, histamine, putrescine, cadaverine, or 2-phenethylamine, which are frequently detected BAs during fermentation. B. breve IDCC4401 produced 95.08% of L-lactate and 4.92% of D-lactate. Therefore, our findings demonstrate the safety of B. breve IDCC 4401 as a potential probiotic for use in the food industry.
Keywords
Safety evaluation; Bifidobacterium breve; probiotics;
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1 Ku S, Yang S, Lee HH, Choe D, Johnston TV, Ji GE, et al. 2020. Biosafety assessment of Bifidobacterium animalis subsp. lactis AD011 used for human consumption as a probiotic microorganism. Food Control 117: 106985.   DOI
2 Chen L, Zheng D, Liu B, Yang J, Jin Q. 2016. VFDB 2016: hierarchical and refined dataset for big data analysis--10 years on. Nucleic Acids Res. 44: D694-697.
3 Arndt D, Grant JR, Marcu A, Sajed T, Pon A, Liang Y, et al. 2016. PHASTER: a better, faster version of the PHAST phage search tool. Nucleic Acids Res. 44: W16-W21.   DOI
4 Deepika Priyadarshani WM, Rakshit SK. 2011. Screening selected strains of probiotic lactic acid bacteria for their ability to produce biogenic amines (histamine and tyramine). Int. J. Food Sci. Technol. 46: 2062-2069.   DOI
5 Charteris W, Kelly P, Morelli L, Collins J. 1998. Antibiotic susceptibility of potentially probiotic Bifidobacterium isolates from the human gastrointestinal tract. Lett. Appl. Microbiol. 26: 333-337.   DOI
6 Sgorbati B, Biavati B, Palenzona D. 1995. The genus Bifidobacterium, pp. 279-306. In Wood BJB, Holzapfeel WH (eds.), The genera of lactic acid bacteria, Ed. Springer, Boston, MA, USA.
7 Koirala S, Anal AK. 2021. Probiotics-based foods and beverages as future foods and their overall safety and regulatory claims. Future Foods 3: 100013.   DOI
8 FAO/WHO. 2002. Working group report on drafting guidelines for the evaluation of probiotics in food. World Health Organization and Food and Agriculture Organization of the United Nations. Ontario: London. UK.
9 EFSA. 2012. Guidance on the assessment of bacterial susceptibility to antimicrobials of human and veterinary importance. EFSA J. 10: 1-10.
10 Kim MJ, Ku S, Kim SY, Lee HH, Jin H, Kang S, et al. 2018. Safety evaluations of Bifidobacterium bifidum BGN4 and Bifidobacterium longum BORI. Int. J. Mol. Sci. 19: 1422.   DOI
11 McArthur AG, Waglechner N, Nizam F, Yan A, Azad MA, Baylay AJ, et al. 2013. The comprehensive antibiotic resistance database. Antimicrob. Agents Chemother. 57: 3348-3357.   DOI
12 Lim HJ, Shin HS. 2020. Antimicrobial and immunomodulatory effects of Bifidobacterium strains: a review. J. Microbiol. Biotechnol. 30: 1793-1800.   DOI
13 FAO/WHO. 2001. Report of a joint FAO/WHO expert consultation on evaluation of health and nutritional properties of probiotics in food including powder milk with live lactic acid bacteria. Cordoba, Argentina: Food and Agricultural Organization of the United Nations, World Health Organization.
14 Kechagia M, Basoulis D, Konstantopoulou S, Dimitriadi D, Gyftopoulou K, Skarmoutsou N, et al. 2013. Health benefits of probiotics: a review. ISRN Nutr. 2013: PMC4045285.
15 Martinez D, Molina M, Sanchez J, Moscatelli M, Marinari S. 2016. API ZYM assay to evaluate enzyme fingerprinting and microbial functional diversity in relation to soil processes. Biol. Fertil Soils. 52: 77-89.   DOI
16 Han YR, Youn SY, Ji GE, Park MS. 2014. Production of alpha- and beta-galactosidases from Bifidobacterium longum subsp. longum RD47. J. Microbiol. Biotechnol. 24: 675-682.   DOI
17 Elisha BG, Courvalin P. 1995. Analysis of genes encoding D-alanine: D-alanine ligase-related enzymes in Leuconostoc mesenteroides and Lactobacillus spp. Gene 152: 79-83.   DOI
18 Desjardins M-L, Roy D, Goulet J. 1990. Growth of bifidobacteria and their enzyme profiles. J. Dairy Sci. 73: 299-307.   DOI
19 Chevalier P, Roy D, Ward P. 1990. Detection of Bifidobacterium species by enzymatic methods. J. Appl. Bacteriol. 68: 619-624.   DOI
20 O'Shea EF, Cotter PD, Stanton C, Ross RP, Hill CJIjofm. 2012. Production of bioactive substances by intestinal bacteria as a basis for explaining probiotic mechanisms: bacteriocins and conjugated linoleic acid. Int. J. Food Microbiol. 152: 189-205.   DOI
21 Jin H, Jeong Y, Yoo S-H, Johnston TV, Ku S, Ji GEJMcf. 2019. Isolation and characterization of high exopolysaccharide-producing Weissella confusa VP30 from young children's feces. Microb. Cell Fact. 18: 110.   DOI
22 GVR. 2019. Probiotics market size, share and trends analysis report by product (food and beverages, dietary supplements), by ingredient (bacteria, yeast), by end use, by distribution channel, and segment forecasts, 2019-2025. Available from https://www.grandviewresearch.com/industry-analysis/probiotics-market. Accessed Mar. 17, 2021.
23 Ciorba M. 2012. A gastroenterologist's guide to probiotics. Clin. Gastroenterol. Hepatol. 10: 960-968.   DOI
24 Lee J-H, O'Sullivan DJJM, Reviews MB. 2010. Genomic insights into bifidobacteria. Microbiol. Mol. Biol. Rev. 74: 378-416.   DOI
25 Zuo F, Yu R, Feng X, Chen L, Zeng Z, Khaskheli GB, et al. 2016. Characterization and in vitro properties of potential probiotic Bifidobacterium strains isolated from breast-fed infant feces. Ann. Microbiol. 66: 1027-1037.   DOI
26 Tissier H. 1900. Recherches sur la flore intestinale des nourrissons:(etat normal et pathologique). University of Paris.
27 Hansen C. 2019. Generally recognized as safe (GRAS) determination for the intended use of Bifidobacterium animalis ssp. lactis BB-12® FDA.
28 Alvarez-Cisneros YM, Ponce-Alquicira E. 2018. Antibiotic resistance in lactic acid bacteria, pp. 53-73. In Kumar Y (ed.), Antimicrobial Resistance-A Global Threat, Ed. IntechOpen, London, UK
29 FAO/WHO. 2006. Probiotics in food: Health and nutritional properties and guidelines for evaluation. World Health Organization and Food and Agriculture Organization of the United Nations. Rome: Italy.
30 Zinedine A, Faid M. 2007. Isolation and characterization of strains of Bifidobacteria with probiotic proprieties in vitro. WJDFS 2: 28-34.
31 Prasirtsak B, Thitiprasert S, Tolieng V, Assabumrungrat S, Tanasupawat S, Thongchul N. 2019. D-Lactic acid fermentation performance and the enzyme activity of a novel bacterium Terrilactibacillus laevilacticus SK5-6. Ann. Microbiol. 69: 1537-1546.   DOI
32 Lee DK, Park JE, Kim MJ, Seo JG, Lee JH, Ha NJ. 2015. Probiotic bacteria, B. longum and L. acidophilus inhibit infection by rotavirus in vitro and decrease the duration of diarrhea in pediatric patients. Clin. Res. Hepatol. Gastroenterol. 39: 237-244.   DOI
33 De Preter V, Raemen H, Cloetens L, Houben E, Rutgeerts P, Verbeke K. 2008. Effect of dietary intervention with different pre-and probiotics on intestinal bacterial enzyme activities. Eur. J. Clin. Nutr. 62: 225-231.   DOI
34 Cole C, Fuller R. 1987. The effect of dietary fat and yoghurt on colonic bacterial enzymes (β-glucosidase and β-glucuronidase) associated with colon cancer. Food Microbiol. 4: 77-81.   DOI
35 Kim DH, Jin YH. 2001. Intestinal bacterial β-glucuronidase activity of patients with colon cancer. Arch Pharm. Res. 24: 564-567.   DOI
36 Barbieri F, Montanari C, Gardini F, Tabanelli G. 2019. Biogenic amine production by lactic acid bacteria: a review. Foods. 8: 17.   DOI
37 Lorencova E, Bunkova L, Matoulkova D, Drab V, Pleva P, Kuban V, et al. 2012. Production of biogenic amines by lactic acid bacteria and bifidobacteria isolated from dairy products and beer. Int. J. Food Sci. Technol. 47: 2086-2091.   DOI
38 Pohanka M. 2020. D-Lactic acid as a metabolite: Toxicology, diagnosis, and detection. Biomed. Res. Int. 2020: 3419034   DOI
39 Ewaschuk JB, Naylor JM, Zello GA. 2005. D-lactate in human and ruminant metabolism. J. Nutr. 135: 1619-1625.   DOI
40 Munoz JAM, Chenoll E, Casinos B, Bataller E, Ramon D, Genoves S, et al. 2011. Novel probiotic Bifidobacterium longum subsp. infantis CECT 7210 strain active against rotavirus infections. Appl. Environ. Microbiol. 77: 8775-8783.   DOI
41 Ekici K, Omer AK. 2018. Detection of common biogenic amines in fermented sausage produced in Turkey. Data Brief. 20: 1360-1362.   DOI