リケラボ論文検索は、全国の大学リポジトリにある学位論文・教授論文を一括検索できる論文検索サービスです。

リケラボ 全国の大学リポジトリにある学位論文・教授論文を一括検索するならリケラボ論文検索大学・研究所にある論文を検索できる

リケラボ 全国の大学リポジトリにある学位論文・教授論文を一括検索するならリケラボ論文検索大学・研究所にある論文を検索できる

大学・研究所にある論文を検索できる 「Investigation of Bacteria from Spoiled Bottled Salad Dressing Leading to Gas Explosion」の論文概要。リケラボ論文検索は、全国の大学リポジトリにある学位論文・教授論文を一括検索できる論文検索サービスです。

コピーが完了しました

URLをコピーしました

論文の公開元へ論文の公開元へ
書き出し

Investigation of Bacteria from Spoiled Bottled Salad Dressing Leading to Gas Explosion

Obata, Fumiko Murota, Hiromi Shibata, Satoshi 尾鶴 亮 藤井 潤 鳥取大学 DOI:10.33160/yam.2022.08.005

2022.08.29

概要

Background
In 2020, an incident involving spoiled salad dressing from a commercial source occurred. Upon opening the bottle, the contents exploded from gas that seemed to have fermented inside the bottle. For safety concerns, we sought to investigate the bacteria from the salad dressing in order to notify the company that made the product and relevant authorities.

Methods
Anaerobic and carbon dioxide culture methods were used. To determine species of colonies, MALDI-TOF-MS and 16S rRNA whole sequencing were performed.

Results
There were no colonies grown in anaerobic condition; however, we obtained three colonies from the carbon dioxide atmosphere. We determined the first colony as Alkalihalobacillus clausii (Bacillus clausii), the second as Bacillus spp. such as B. australimaris, B. safensis or B. safensis subsp. osmophilus and the third as B. paralicheniformis. Phylogenic tree analysis using the16S rRNA sequence revealed these colonies to be in a proximity of known gas-producing species. The NCBI database search revealed that a key gas production path- way gene, pyruvate formate-lyase (pfl), of which the gene product catalyzes pyruvate to formate conversion, exists in B. paralicheniformis. Formate dehydrogenase (FdhH) produces CO2 from formate that the coding gene fdhF positive bacteria can participate in gas pro- duction when formate is present in the culture. And we found fdhF from A. clausii, B. australimaris/B. safensis and B. paralicheniformis. Furthermore, under butane- diol producing pathway, genes coding two enzymes involved in CO2 production, namely als and ald, existed

Conclusion
Candidate species A. clausii, B. australi- maris/B. safensis and B. paralicheniformis from spoiled salad dressing were thought to produce CO2 gas each from their own enzymes, or in combination, which caused the explosion upon opening. The endospore forming nature of Bacillus should alert us to be cautious when considering food producing process regulations where we need to thoroughly heat any product during manufacture in order to inactivate any bacteria as there is the possibility of this type of dangerous occurrence.

Key words
butanediol fermentation; gas-producing Bacillus; MALDI-TOF-MS; salad dressing; 16S rRNA sequencing

この論文で使われている画像

参考文献

1 Jansen E, Aschehoug V. Bacillus as spoilage organisms in canned foods. J Food Sci. 1951;16:457-61. DOI: 10.1111/j.1365- 2621.1951.tb17404.x

2 Kurtzman CP, Rogers R, Hesseltine CW. Microbiological spoilage of mayonnaise and salad dressings. Appl Microbiol. 1971;21:870-4. DOI: 10.1128/am.21.5.870-874.1971, PMID:16349906

3 Pereira KS, Cayres CA, Chaves JQ, Brito JT, Rabinovitch L, Vivoni AM. Salad dressing spoilage by Bacillus amy- loliquefaciens with gas formation. Braz J Food Technol. 2017;21:e2017025. DOI: 10.1590/1981-6723.2517

4 Stecher G, Tamura K, Kumar S. Molecular Evolutionary Genetics Analysis (MEGA) for macOS. Mol Biol Evol. 2020;37:1237-9. DOI: 10.1093/molbev/msz312, PMID:31904846

5 Montefusco A, Nakamura LK, Labeda DP. Bacillus peoriae sp. nov. Int J Syst Bacteriol. 1993;43:388-90. DOI: 10.1099/00207713-43-2-388

6 André S, Vallaeys T, Planchon S. Spore-forming bacteria responsible for food spoilage. Res Microbiol. 2017;168:379-87. DOI: 10.1016/j.resmic.2016.10.003, PMID: 27989764

7 Valerio F, De Bellis P, Di Biase M, Lonigro SL, Giussani B, Visconti A, et al. Diversity of spore-forming bacteria and identification of Bacillus amyloliquefaciens as a spe- cies frequently associated with the ropy spoilage of bread. Int J Food Microbiol. 2012;156:278-85. DOI: 10.1016/ j.ijfoodmicro.2012.04.005, PMID: 22551674

8 Singhal N, Kumar M, Kanaujia PK, Virdi JS. MALDI-TOF mass spectrometry: an emerging technology for microbial identification and diagnosis. Front Microbiol. 2015;6:791. DOI: 10.3389/fmicb.2015.00791, PMID: 26300860

9 Nakano MM, Dailly YP, Zuber P, Clark DP. Characterization of anaerobic fermentative growth of Bacillus subtilis: iden- tification of fermentation end products and genes required for growth. J Bacteriol. 1997;179:6749-55. DOI: 10.1128/ jb.179.21.6749-6755.1997, PMID: 9352926

10 Cruz Ramos H, Hoffmann T, Marino M, Nedjari H, Presecan-Siedel E, Dreesen O, et al. Fermentative metabolism of Bacillus subtilis: physiology and regulation of gene expression. J Bacteriol. 2000;182:3072-80. DOI: 10.1128/ JB.182.11.3072-3080.2000, PMID: 10809684

11 Wang S, Tang H, Peng F, Yu X, Su H, Xu P, et al. Metabolite- based mutualism enhances hydrogen production in a two- species microbial consortium. Commun Biol. 2019;2:82. DOI: 10.1038/s42003-019-0331-8, PMID: 30854474

12 Kalia VC, Jain SR, Kumar A, Joshi AP. Frementation of biowaste to H2 by Bacillus licheniformis. World J Microbiol Biotechnol. 1994;10:224-7. DOI: 10.1007/BF00360893,PMID: 24420953

13 Sinha P, Pandey A. Biohydrogen production from various feedstocks by Bacillus firmus NMBL-03. Int J Hydrogen Energy. 2014;39:7518-25. DOI: 10.1016/j.ijhydene.2013.08.134

14 Sinha P, Roy S, Das D. Role of formate hydrogen lyase complex in hydrogen production in facultative anaerobes. Int J Hydrogen Energy. 2015;40:8806-15. DOI: 10.1016/ j.ijhydene.2015.05.076

15 Khatri AM, Rai S, Shank C, McInerney A, Kaplan B, Hagmann SHF, et al. A tale of caution: prolonged Bacillus clausii bacteraemia after probiotic use in an immunocompe- tent child. Access Microbiol. 2021;3:000205. DOI: 10.1099/ acmi.0.000205, PMID: 34151160

16 Joshi S, Udani S, Sen S, Kirolikar S, Shetty A. Bacillus Clausii Septicemia in a Pediatric Patient After Treatment With Probiotics. Pediatr Infect Dis J. 2019;38:e228-30. DOI: 10.1097/INF.0000000000002350, PMID: 31033906

17 Princess I, Natarajan T, Ghosh S. When good bacteria behave badly: a case report of Bacillus clausii sepsis in an immu- nocompetant adult. Access Microbiol. 2020;2:acmi000097. DOI: 10.1099/acmi.0.000097, PMID: 33005864

18 Gargar JD, Divinagracia RM. When good things go bad: A case series of bacteremia from probiotics. Chest. 2019;155:92A. DOI: 10.1016/j.chest.2019.02.091

19 Nacinovich F, Oses PF, Sucari A, Gentiluomo J, Merkt M, Castillo S, et al. Probiotics in the critically ill: friends or foes? Persistent bacteriemia due to Bacillus clausii. In: 29th ECCMID, The Congress of ESCMID. Argentina: Instituto Cardiovascular Buenos Aires ICBA; 2019. p. 2471.

20 García JP, Hoyos JA, Alzate JA, Cristancho E. Bacteremia after Bacillus clausii administration for the treatment of acute diarrhea: A case report. Biomédica. 2021;41:13-20. DOI: 10.7705/biomedica.5662, PMID: 34669274

21 Little SV, Hillhouse AE, Lawhon SD. Whole-Genome Se- quences of an Abortive Bacillus safensis Strain Isolated from a Mare’s Uterus. Microbiol Resour Announc. 2020;9:e00342-20. DOI: 10.1128/MRA.00342-20, PMID: 32409543

22 Dehner CA, Ruff WE, Greiling T, Pereira MS, Redanz S, McNiff J, et al. Malignant T Cell Activation by a Bacillus Spe- cies Isolated from Cutaneous T-Cell Lymphoma Lesions. JID Innovations. 2022;2:100084. DOI: 10.1016/j.xjidi.2021.100084,PMID: 35199089

23 Dunlap CA, Kwon SW, Rooney AP, Kim SJ. Bacillus parali- cheniformis sp. nov., isolated from fermented soybean paste. Int J Syst Evol Microbiol. 2015;65:3487-92. DOI: 10.1099/ ijsem.0.000441, PMID: 26296568F. Obata et al.

24 Koutsoumanis K, Allende A, Alvarez-Ordóñez A, Bolton D, Bover-Cid S, Chemaly M, et al.; EFSA Panel on Biological Hazards (BIOHAZ). Update of the list of QPS-recommended biological agents intentionally added to food or feed as notified to EFSA 14: suitability of taxonomic units notified to EFSA until March 2021. EFSA J. 2021;19:e06689. PMID: 34257732

25 Abdelsamad NO, Esawy MA, Mahmoud ZE, El-Shazly AI, Elsayed TR, Gamal AA. Evaluation of different bacterial honey isolates as probiotics and their efficient roles in choles- terol reduction. World J Microbiol Biotechnol. 2022;38:106. DOI: 10.1007/s11274-022-03259-8, PMID: 35507200

26 Tamang JP, Das S, Kharnaior P, Pariyar P, Thapa N, Jo SW, et al. Shotgun metagenomics of Cheonggukjang, a fermented soybean food of Korea: community structure, predictive functionalities and amino acids profile. Food Res Int. 2022;151:110904. DOI: 10.1016/j.foodres.2021.110904, PMID:34980421

27 Liu Y, Teng K, Huang F, Xia T, Zhang J, Wang T, et al. High- throughput discovery of novel lanthipeptides and producers by metagenomic mining of isolates population (MMIP) from Chinese spicy cabbage. Food Res Int. 2022;154:110991. DOI: 10.1016/j.foodres.2022.110991, PMID: 35337563

28 Choyam S, Jain PM, Kammara R. Characterization of a Po- tent New-Generation Antimicrobial Peptide of Bacillus. Front Microbiol. 2021;12:710741. DOI: 10.3389/fmicb.2021.710741, PMID: 34504482

29 Ojha P, Kar NP, Nayak S, Patra AK, Sahoo KK. Isolation of a broad spectrum antimicrobial producing thermophilic Bacillus and characterization of its antimicrobial protein. Arch Microbiol. 2021;203:2059-73. DOI: 10.1007/s00203-020-02162-w, PMID: 33575852

30 Ahire JJ, Kashikar MS, Lakshmi SG, Madempudi R. Identifi- cation and characterization of antimicrobial peptide produced by indigenously isolated Bacillus paralicheniformis UBBLi30 strain. 3 Biotech. 2020;10:112. DOI: 10.1007/s13205-020-2109-6, PMID: 32117673

31 Jeong DW, Lee B, Heo S, Oh Y, Heo G, Lee JH. Two genes involved in clindamycin resistance of Bacillus licheniformis and Bacillus paralicheniformis identified by comparative ge- nomic analysis. PLoS One. 2020;15:e0231274. DOI: 10.1371/ journal.pone.0231274, PMID: 32271828

32 Agersø Y, Bjerre K, Brockmann E, Johansen E, Nielsen B, Siezen R, et al. Putative antibiotic resistance genes present in extant Bacillus licheniformis and Bacillus paralicheniformis strains are probably intrinsic and part of the ancient re- sistome. PLoS One. 2019;14:e0210363. DOI: 10.1371/journal. pone.0210363, PMID: 30645638

33 Lee JH, Jeong DW. Complete Genome Sequence of Bacillus paralicheniformis 14DA11, Exhibiting Resistance to Clindamycin and Erythromycin. Genome Announc. 2017;5:e01216-17. DOI: 10.1128/genomeA.01216-17, PMID:29074671

参考文献をもっと見る