Identification of environmental Vibrio cholerae non 01 non 139 by MALDITOF MS

Authors

  • Alejandra E. Cuneo Universidad Nacional Federico Villarreal. Facultad de ciencias Naturales y Matemática. Av Rio Chepen S/N, El Agustino, Lima, Perú. Instituto Nacional de Salud. Laboratorio de Referencia en Enteropatógenos. Jirón Cápac Yupanqui 1400, Jesús María, Lima, Perú. https://orcid.org/0000-0003-2449-1660
  • Armando Vélez-Azañero Universidad Nacional Federico Villarreal. Facultad de ciencias Naturales y Matemática. Av Rio Chepen S/N, El Agustino, Lima, Perú.Municipalidad Distrital de Lurín. Gerencia de Servicios públicos y gestión ambiental. Jr. Grau 399. Lurín, Lima, Perú. https://orcid.org/0000-0003-4246-1502

DOI:

https://doi.org/10.24039/rtb20232111529

Keywords:

bacteria, cholera, proteins, review, serotype

Abstract

Most Vibrio species identification methods take many days to deliver results, therefore it is important that research can be done on rapid and accurate detection and identification techniques. MALDI-TOF MS has proven to be a simple tool to identify and differentiate pathogens. The objective of this research was to recognize the available bibliographic information on the identification of Vibrio cholerae species non 01 non 139 of environmental origin by MALDI TOF MS. The Vibrio genera includes more than thirty species found in aquatic environments, some species cause diseases in both marine and human species. One of these organisms is V. cholerae, one of the most important species due to the production of cholera toxin (CT) which interrupts the transport of ions in the cells of the intestinal epithelium. The number of case reports involving V. cholerae no 01 no 139 in extraintestinal infections and potentially fatal bacteremia in healthy patients has increased and, despite the existence of molecular identification techniques such as PCR, sequencing, and gel electrophoresis pulsed-field, the MALDI TOF MS technique has been gaining ground in bacteriology laboratories in hospitals due to its speed and ease of use. There are studies that cover the detection of V. cholerae in MALDI-TOF MS, focusing on food and environment, however, when performing the search key, no specific studies on the detection of V. cholerae non 01 non 139 of environmental origin by MALDI TOF MS were found with the exception of a case report, presence in blood isolates, reviews of reports that indicate the importance of these microorganisms in the cause bacteremia and the importance of this technique for the future of bacterial identification. Therefore, is recognized that there is a need to continue producing new information to contribute to the implementation of genomic surveillance capable of predicting future epidemic outbreaks.

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References

Abbott, S., Cheung, W., Portoni, B., & Janda, J. (1992). Isolation of vibriostatic agent O/129-resistant Vibrio cholerae non-O1 from a patient with gastroenteritis. Journal of Clinical Microbiology, 30 (6), 1598-1599.

Afanasev, M. V., Mironova, L. V., Basov, E. A., Ostyak, A. S., Kulikalova, E. S., Urbanovich, L. Y., & Balahonov, S. V. (2014). MALDI-TOF mass spectrometry in the accelerated identification of microorganisms of the Vibrio genus. Molecular Genetics, Microbiology and Virology, 29(3), 115-122.

Al-Hilu, S., Al-Mohana, A., & Jaber, Z. (2019). Conventional and molecular detection of Vibrio cholerae isolated from environmental water with the prevalence of antibiotic resistance mechanisms. International Journal of Research in Pharmaceutical Sciences, 10(3), 1953-1960.

Ashfaq, M., Al-Ghouti, M., Qiblawey, H., Rodrigues, D., Hu, Y., & Zouari, N. (2019). Isolation, identification and biodiversity of antiscalant degrading seawater bacteria using MALDI-TOF-MS and multivariate analysis. Science of The Total Environment, 656, 910-920.

Baker-Austin, C., Trinanes, J., Gonzalez-Escalona, N., & Martinez-Urtaza, J. (2017). Non-Cholera Vibrios: The microbial barometer of climate change. Trends In Microbiology, 25(1), 76-84.

Bhattacharyya F. K. (1977). The agglutination reactions of cholera vibrios. Japanese journal of medical science & biology, 30(5), 259–268.

Bier, N., Schwartz, K., Guerra, B., & Strauch, E. (2015). Survey on antimicrobial resistance patterns in Vibrio vulnificus and Vibrio cholerae non-O1/non-O139 in Germany reveals carbapenemase-producing Vibrio cholerae in coastal waters. Frontiers in microbiology, 6, 1179.

Böhme, K., Fernández-No, I. C., Pazos, M., Gallardo, J. M., Barros-Velázquez, J., Cañas, B., & Calo-Mata, P. (2013). Identification and classification of seafood-borne pathogenic and spoilage bacteria: 16S rRNA sequencing versus MALDI-TOF MS fingerprinting. Electrophoresis, 34(6), 877–887.

Borroto, R. (1997). Ecology of Vibrio cholerae serogroup 01 in aquatic environments. Revista Panamericana De Salud Pública, 1(1), 328-333.

Bravo Fariñas, L., Fernández, A., Ramírez, M. M., Llop, A., Martínez, G., Hernández, R. I., Cabrera, L.E., Morier, L., Fraga, J., Núñez, F. A., & Aguila, A. (2007). Caracterización microbiológica de cepas de Vibrio cholerae no-O1 aisladas en Cuba. Revista Cubana de Medicina Tropical, 59(3), 227-233.

Bronzato, G., Oliva, M., Alvin, M., Pribul, B., Rodrigues, D., & Coelho, S., Coelho, I.S., & Souza, M.M.S. (2018). MALDI-TOF MS as a tool for the identification of Vibrio alginolyticus from Perna perna mussels (Linnaeus, 1758). Pesquisa Veterinária Brasileira, 38(8), 1511-1517.

Buller, N.B. (2004). Bacteria from fish and other aquatic animals: a practical identification manual. CABI Publishingm Walligford.

Calder, T., de Souza Santos, M., Attah, V., Klimko, J., Fernandez, J., Salomon, D., Krachler, A. M., & Orth, K. (2014). Structural and regulatory mutations in Vibrio parahaemolyticus type III secretion systems display variable effects on virulence. FEMS microbiology letters, 361(2), 107–114.

Caro-Castro, J., Mestanza, O., Quino, W., & Gavilán, R. (2020). Diversidad molecular de variantes patogénicas de Vibrio parahaemolyticus en el Perú. Revista Peruana De Medicina Experimental Y Salud Pública, 37(2), 270-275.

Carrascal-Huyhua, M. (2018). Caracterización y análisis de la variación genética en cepas de Vibrio cholerae Pacini, 1854 (Vibrionales: Vibrionaceae) aislados en Perú, 1991-2016. (Undergraduate). Universidad Nacional Federico Villarreal.

Chart, H. (2012). Vibrio, Mobiluncus, Gardnerella and Spirillum: Cholera; vaginosis; rat bite fever. In Medical Microbiology: Eighteenth (Ed.). (pp. 314-323). Elsevier Inc.

Chen, X., Hou, X., Xiao, M., Zhang, L., Cheng, J., Zhou, M., Huang, J.J., Zhang, J.J., Xu, Y.Ch., & Hsueh, P.R. (2021). Matrix-assisted laser desorption/ionization time of flight mass spectrometry (MALDI-TOF MS) analysis for the identification of pathogenic microorganisms: a review. Microorganisms, 9(7), 1536.

Cheng, W. C., Jan, I. S., Chen, J. M., Teng, S. H., Teng, L. J., Sheng, W. H., Ko, W. C., & Hsueh, P. R. (2015). Evaluation of the Bruker Biotyper matrix-assisted laser desorption ionization-time of flight mass spectrometry system for identification of blood isolates of Vibrio species. Journal of clinical microbiology, 53(5), 1741–1744.

Cho, Y., Kim, E., Han, S. K., Yang, S. M., Kim, M. J., Kim, H. J., Kim, C. G., Choo, D. W., Kim, Y. R., & Kim, H. Y. (2017). Rapid Identification of Vibrio Species Isolated from the Southern Coastal Regions of Korea by MALDI-TOF Mass Spectrometry and Comparison of MALDI Sample Preparation Methods. Journal of microbiology and biotechnology, 27(9), 1593–1601.

Croxatto, A., Prod'hom, G., & Greub, G. (2012). Applications of MALDI-TOF mass spectrometry in clinical diagnostic microbiology. FEMS microbiology reviews, 36(2), 380–407.

Dalsgaard, A. (1998). The occurrence of human pathogenic Vibrio spp. and Salmonella in aquaculture*. International Journal of Food Science And Technology, 33(2), 127-138.

Deshayes, S., Daurel, C., Cattoir, V., Parienti, J., Quilici, M., & de La Blanchardière, A. (2015). Non-O1, non-O139 Vibrio cholerae bacteraemia: case report and literature review. Springerplus, 4(1), 575.

Dieckmann, R., Strauch, E., & Alter, T. (2010). Rapid identification and characterization of Vibrio species using whole-cell MALDI-TOF mass spectrometry. Journal of applied microbiology, 109(1), 199–211.

Drevinek, M., Dresler, J., Klimentova, J., Pisa, L., & Hubalek, M. (2012). Evaluation of sample preparation methods for MALDI-TOF MS identification of highly dangerous bacteria. Letters in applied microbiology, 55(1), 40–46.

Dutta, D., Chowdhury, G., Pazhani, G. P., Guin, S., Dutta, S., Ghosh, S., Rajendran, K., Nandy, R. K., Mukhopadhyay, A. K., Bhattacharya, M. K., Mitra, U., Takeda, Y., Nair, G. B., & Ramamurthy, T. (2013). Vibrio cholerae non-O1, non-O139 serogroups and cholera-like diarrhea, Kolkata, India. Emerging infectious diseases, 19(3), 464–467.

Ebob, T. (2020). A Review on Diagnostic Methods for the Identification of Vibrio cholerae. Journal Of Advances In Medicine And Medical Research, 136-164.

Elmahdi, S., DaSilva, L. V., & Parveen, S. (2016). Antibiotic resistance of Vibrio parahaemolyticus and Vibrio vulnificus in various countries: a review. Food microbiology, 57, 128-134.

Engel, M. F., Muijsken, M. A., Mooi-Kokenberg, E., Kuijper, E. J., & van Westerloo, D. J. (2016). Vibrio cholerae non-O1 bacteraemia: description of three cases in the Netherlands and a literature review. Euro surveillance: bulletin Europeen sur les maladies transmissibles = European communicable disease bulletin, 21(15), 14.

Erler, R., Wichels, A., Heinemeyer, E. A., Hauk, G., Hippelein, M., Reyes, N. T., & Gerdts, G. (2015). VibrioBase: A MALDI-TOF MS database for fast identification of Vibrio spp. that are potentially pathogenic in humans. Systematic and applied microbiology, 38(1), 16–25. doi:

FAO. (2001). Joint FAO/WHO Expert Consultation on Risk Assessment of Microbiological Hazards in Foods: hazard identification, exposure assessment and hazard characterization of Campylobacter spp. in broiler chickens and Vibrio spp. in seafood, WHO headquarters, Geneva, Switzerland, 23-27 July 2001 (No.

WHO/SDE/PHE/FOS/01.4). World Health Organization.

Farmer, J.J., 1980. Revival of the name Vibrio vulnificus. International Journal of Systematic Bacteriology, 30, 656.

Faruque, S. M., Albert, M. J., & Mekalanos, J. J. (1998). Epidemiology, genetics, and ecology of toxigenic Vibrio cholerae. Microbiology and molecular biology reviews, 62(4), 1301–1314.

Finkelstein, R.A. (1996). Cholera, Vibrio cholerae O1 and O139, and Other Pathogenic Vibrios. In: Baron, S. (ed.). Medical Microbiology. 4th Ed. University of Texas.

Gerdts, G., Erler, R., & Wichels, A. (2013). Application of MALDI-TOF MS for environmental Vibrio surveillance programs. Aquatic Microbial Ecology SAME13, Stresa, Italy, 8 September 2013 - 13 September 2013. Conference (Poster).

Goering R. V. (2010). Pulsed field gel electrophoresis: a review of application and interpretation in the molecular epidemiology of infectious disease. Infection, genetics and evolution: journal of molecular epidemiology and evolutionary genetics in infectious diseases, 10(7), 866–875.

Ha, M., Son, E., & Choi, E. (2016). Application of MALDI-TOF mass spectrometry-based identification of foodborne pathogen tests to the Korea Food Standard Codex. Korean Journal Of Food Science And Technology, 48(5), 437-444.

Hazen, T. H., Martinez, R. J., Chen, Y., Lafon, P. C., Garrett, N. M., Parsons, M. B., Bopp, C. A., Sullards, M. C., & Sobecky, P. A. (2009). Rapid identification of Vibrio parahaemolyticus by whole-cell matrix-assisted laser desorption ionization-time of flight mass spectrometry. Applied and environmental microbiology, 75(21), 6745–6756.

Heidelberg, J. F., Eisen, J. A., Nelson, W. C., Clayton, R. A., Gwinn, M. L., Dodson, R. J., Haft, D. H., Hickey, E. K., Peterson, J. D., Umayam, L., Gill, S. R., Nelson, K. E., Read, T. D., Tettelin, H., Richardson, D., Ermolaeva, M. D., Vamathevan, J., Bass, S., Qin, H., Dragoi, I., Sellers, P., McDonald, L., Utterback, T., Fleishmann, R.D., Nierman, W.C., White, O., Salzberg, S.L., Smith, H.O., Colwell, R.R., Mekalanos, J.J., Craig-Venter, J., & Fraser, C. M. (2000). DNA sequence of both chromosomes of the cholera pathogen Vibrio cholerae. Nature, 406(6795), 477–483.

Hollis, D.G., Weaver, R.E., Baker, C.N., & Thornsberry, C. (1976). Halophilic Vibrio species isolated from blood cultures. Journal of Clinical Microbiology, 3, 425 – 431.

Huget, J. T., Arias, I., & Montoya, Y. (2000). Tipificación Molecular del Vibrio cholerae O1 en el Perú. Revista Peruana de Medicina Experimental y Salud Pública, 17(1-4), 9-13.

Huq, A., Haley, B., Taviani, E., Chen, A., Hasan, N., & Colwell, R. (2012). Detection, Isolation, and Identification of Vibrio cholerae from the Environment. Current Protocols In Microbiology, 26(1), 22875567.

Islam, M., Zaman, M., Islam, M., Ahmed, N., & Clemens, J. (2020). Environmental reservoirs of Vibrio cholerae. Vaccine, 38, A52-A62.

Kaspar, C. W., & Tamplin, M. L. (1993). Effects of temperature and salinity on the survival of Vibrio vulnificus in seawater and shellfish. Applied and environmental microbiology, 59(8), 2425–2429.

Lee, R., Rangdale, R., Croci, L., Hervio-Heath, D., & Lozach, S. (2008). Bacterial pathogens in seafood. Improving Seafood Products for the Consumer, In Improving Seafood Products for the Consumer. T. Borresen (ed.). (pp. 247-291).

Li, P., Xin, W., Xia, S., Luo, Y., Chen, Z., & Jin, D. et al. (2018). MALDI-TOF mass spectrometry-based serotyping of V. parahaemolyticus isolated from the Zhejiang province of China. BMC Microbiology, 18(1), 185.

Lipp, E., Huq, A., & Colwell, R. (2002). Effects of Global Climate on Infectious Disease: the Cholera Model. Clinical Microbiology Reviews, 15(4), 757-770.

Liyanage, R., & Lay, J. O. (2006). An introduction to MALDI-ToF MS. Identification of microorganisms by mass spectrometry, In: Identification of Microorganisms by

Mass Spectrometry, Volume 169. C. L. Wilkins, & Lay J.O. Jr. (pp. 39-60).

Malainine, S. M., Moussaoui, W., Prévost, G., Scheftel, J. M., & Mimouni, R. (2013). Rapid identification of Vibrio parahaemolyticus isolated from shellfish, sea water and sediments of the Khnifiss lagoon, Morocco, by MALDI-TOF mass spectrometry. Letters in applied microbiology, 56(5), 379–386.

Maldonado, N., Robledo, C., & Robledo, J. (2017). La espectrometría de masas MALDI-TOF en el laboratorio de microbiología clínica. Infectio, 22, 35-45.

Maraki, S., Christidou, A., Anastasaki, M., & Scoulica, E. (2016). Non-O1, non-O139 Vibrio cholerae bacteremic skin and soft tissue infections. Infectious Diseases, 48(3), 171-176.

Marin, M. A., Thompson, C. C., Freitas, F. S., Fonseca, E. L., Aboderin, A. O., Zailani, S. B., Quartey, N.K.E., Okeke, I.N., & Vicente, A. C. P. (2013). Cholera outbreaks in Nigeria are associated with multidrug resistant atypical El Tor and non-O1/non-O139 Vibrio cholerae. PLoS neglected tropical diseases, 7(2), e2049.

Marinello, S., Marini, G., Parisi, G., Gottardello, L., Rossi, L., Besutti, V., & Cattelan, A. M. (2017). Vibrio cholerae non-O1, non-O139 bacteraemia associated with pneumonia, Italy 2016. Infection, 45(2), 237–240.

Martinez-Urtaza, J., van Aerle, R., Abanto, M., Haendiges, J., Myers, R., Trinanes, J., Baker-Austin, J.C., & Gonzalez-Escalona, N. (2017). Genomic variation and evolution of Vibrio parahaemolyticus ST36 over the course of a transcontinental epidemic expansion. Mbio, 8(6), e01425-17.

Marval, H., & Graü de Marín, C., & Martínez, C., & Muñoz, D. (2012). Identificación de bacterias del género Vibrio asociadas a zonas productoras de moluscos bivalvos, estado Sucre, Venezuela. Revista Científica, 22(5),459-467.

Mougin, J., Flahaut, C., Roquigny, R., Bonnin-Jusserand, M., Grard, T., & Le Bris, C. (2020). Rapid Identification of Vibrio Species of the Harveyi Clade Using MALDI-TOF MS Profiling With Main Spectral Profile Database Implemented With an In-House Database: Luvibase. Frontiers in microbiology, 11, 586536.

Neoh, H., Tan, X., Sapri, H., & Tan, T. (2019). Pulsed-field gel electrophoresis (PFGE): A review of the “gold standard” for bacteria typing and current alternatives. Infection, Genetics And Evolution, 74, 103935.

Okuda, J., Ishibashi, M., Abbott, S. L., Janda, J. M., & Nishibuchi, M. (1997). Analysis of the thermostable direct hemolysin (tdh) gene and the tdh-related hemolysin (trh) genes in urease-positive strains of Vibrio parahaemolyticus isolated on the West Coast of the United States. Journal of clinical microbiology, 35(8), 1965–1971.

Olivares, F., Domínguez, I., Dabanch, J., Porte, L., Ulloa, M., & Osorio, G. (2019). Bacteriemia por Vibrio cholerae no-O1/no-O139 que porta una región homóloga a la isla de patogenicidad VpaI-7. Revista chilena de infectología, 36(3), 392-395.

Pacini F. (1854). Osservazioni microscopiche e deduzioni patologiche sul cholera asiatico. Memoria del dott. Filippo Pacini ...: letta alla Societa medico-fisica di Firenze nella seduta del 10 Dicembre 1854. Firenze: Tip. Federigo Bencini, 1854. (Estr. da: Gazzetta medica italiana, Toscana, p 397 e 405). Pag. 1/30.

Perilla, M. J., Ajello, G., Bopp, C., Elliot, J., Facklam, R., Knapp, J. S., ... & Dowell, S. (2004). Manual de Laboratorio para la Identificación y Prueba de Susceptibilidad a los Antimicrobianos de Patógenos Bacterianos de Importancia para la Salud Pública en el Mundo en Desarrollo. Haemophilus influenzae, Neisseria meningitidis, Streptococcus pneumoniae, Neisseria gonorrhoeae, Salmonella serotipo Typhi y Vibrio cholerae. OMS, (pp. 49-67).

Plaza, N., Castillo, D., Pérez-Reytor, D., Higuera, G., García, K., & Bastías, R. (2018). Bacteriophages in the control of pathogenic vibrios. Electronic Journal Of Biotechnology, 31, 24-33.

Popović, N. T., Kazazić, S. P., Strunjak-Perović, I., & Čož-Rakovac, R. (2017). Differentiation of environmental aquatic bacterial isolates by MALDI-TOF MS. Environmental research, 152, 7–16.

Pruzzo, C., Huq, A., Colwell, R., & Donelli, G. (2015). Pathogenic Vibrio species in the marine and estuarine environment. In: Belkin, S., & Colwell, R.R. (eds). Oceans and Health: Pathogens in the marine environment, Springer. (pp. 217-252).

Rahaman, M. H., Islam, T., Colwell, R. R., & Alam, M. (2015). Molecular tools in understanding the evolution of Vibrio cholerae. Frontiers in microbiology, 6, 1040.

Ramamurthy, T., Das, B., Chakraborty, S., Mukhopadhyay, A. K., & Sack, D. A. (2020). Diagnostic techniques for rapid detection of Vibrio cholerae O1/O139. Vaccine, 38 Suppl 1, A73–A82.

Rivera, I. N., Lipp, E. K., Gil, A., Choopun, N., Huq, A., & Colwell, R. R. (2003). Method of DNA extraction and application of multiplex polymerase chain reaction to detect toxigenic Vibrio cholerae O1 and O139 from aquatic ecosystems. Environmental microbiology, 5(7), 599–606.

Rivera-Chávez, F., & Mekalanos, J. (2019). Cholera toxin promotes pathogen acquisition of host-derived nutrients. Nature, 572(7768), 244-248.

Robles, L. A., García, R. M., & Torres, L. J. (1999). Toxinas de Vibrio cholerae. Una revisión. Revista Mexicana de Patología Clínica y Medicina de Laboratorio, 46(4), 255-259.

Rychert, J., Creely, D., Mayo-Smith, L. M., Calderwood, S. B., Ivers, L. C., Ryan, E. T., Boncy, J., Qadri, F., Ahmed, D., Ferraro, M. J., & Harris, J. B. (2015). Evaluation of matrix-assisted laser desorption ionization-time of flight mass spectrometry for identification of Vibrio cholerae. Journal of clinical microbiology, 53(1), 329–331.

Sandalakis, V., Goniotakis, I., Vranakis, I., Chochlakis, D., & Psaroulaki, A. (2017). Use of MALDI-TOF mass spectrometry in the battle against bacterial infectious diseases: recent achievements and future perspectives. Expert review of proteomics, 14(3), 253–267.

Sauget, M., Valot, B., Bertrand, X., & Hocquet, D. (2017). Can MALDI-TOF Mass Spectrometry Reasonably Type Bacteria?. Trends In Microbiology, 25(6), 447-455.

Schwartz, K., Hammerl, J. A., Göllner, C., & Strauch, E. (2019). Environmental and Clinical Strains of Vibrio cholerae Non-O1, Non-O139 From Germany Possess Similar

Virulence Gene Profiles. Frontiers in microbiology, 10, 733.

Seng, P., Drancourt, M., Gouriet, F., La Scola, B., Fournier, P. E., Rolain, J. M., & Raoult, D. (2009). Ongoing revolution in bacteriology: routine identification of bacteria by matrix-assisted laser desorption ionization time-of-flight mass spectrometry. Clinical infectious diseases : an official publication of the Infectious Diseases Society of America, 49(4), 543–551.

Seng, P., Rolain, J. M., Fournier, P. E., La Scola, B., Drancourt, M., & Raoult, D. (2010). MALDI-TOF-mass spectrometry applications in clinical microbiology. Future microbiology, 5(11), 1733–1754.

Shin, O. S., Tam, V. C., Suzuki, M., Ritchie, J. M., Bronson, R. T., Waldor, M. K., & Mekalanos, J. J. (2011). Type III secretion is essential for the rapidly fatal diarrheal disease caused by non-O1, non-O139 Vibrio cholerae. mBio, 2(3), e00106–e111.

Sogawa, K., Watanabe, M., Sato, K., Segawa, S., Ishii, C., Miyabe, A., Murata, S., Saito, T., & Nomura, F. (2011). Use of the MALDI BioTyper system with MALDI-TOF mass spectrometry for rapid identification of microorganisms. Analytical and bioanalytical chemistry, 400(7), 1905–1911.

Summer J., De Paola A., Osaka K., Karunasager I., Walderhaug M., Bowers J. (2001). Hazard identification, exposure assessment and hazard characterization of Vibrio spp. in Seafood. FAO/WHO Activities on Risk Assessment of Microbiological Hazards in Foods. WHO. (pp. 1–105).

Taneja, N., Sethuraman, N., Mishra, A., & Mohan, B. (2016). The 2002 Chandigarh cholera outbreak revisited: utility of MALDI-TOF as a molecular epidemiology tool. Letters in applied microbiology, 62(6), 452–458.

Thompson, F. L., Gevers, D., Thompson, C. C., Dawyndt, P., Naser, S., Hoste, B., Munn, C. B., & Swings, J. (2005). Phylogeny and molecular identification of vibrios on the basis of multilocus sequence analysis. Applied and environmental microbiology, 71(9), 5107–5115.

Tsuchida, S., & Nakayama, T. (2022). MALDI-Based Mass Spectrometry in Clinical Testing: Focus on Bacterial Identification. Applied Sciences, 12(6), 2814.

Ünüvar, S. (2018). Microbial Foodborne Diseases. A. M. Holban & Grumezescu, A.M. (eds.), Foodborne Diseases. Elsevier. (pp. 1-31).

Vezzulli, L., Baker-Austin, C., Kirschner, A., Pruzzo, C., & Martinez-Urtaza, J. (2020). Global emergence of environmental non-O1/O139 Vibrio cholerae infections linked with climate change: a neglected research field?. Environmental microbiology, 22(10), 4342–4355.

Vezzulli, L., Colwell, R. R., & Pruzzo, C. (2013). Ocean warming and spread of pathogenic vibrios in the aquatic environment. Microbial ecology, 65(4), 817–825.

Vezzulli, L., Grande, C., Reid, P. C., Hélaouët, P., Edwards, M., Höfle, M. G., Brettar, I., Colwell, R. R., & Pruzzo, C. (2016). Climate influence on Vibrio and associated human diseases during the past half-century in the coastal North Atlantic. Proceedings of the National Academy of Sciences of the United States of America, 113(34), E5062–E5071.

Weller, S. A., Stokes, M. G., & Lukaszewski, R. A. (2015). Observations on the Inactivation Efficacy of a MALDI-TOF MS Chemical Extraction Method on Bacillus anthracis Vegetative Cells and Spores. PloS one, 10(12), e0143870.

Wu, J., Zhou, Y., Liu, X., Cao, Y., Hu, C., & Chen, Y. (2020). Extension and application of a database for the rapid identification of Vibrio using MALDI-TOF MS. Acta Oceanologica Sinica, 39(10), 140-146.

Yarbrough, M., Lainhart, W., & Burnham, C. (2017). Identification of Nocardia, Streptomyces, and Tsukamurella using MALDI-TOF MS with the Bruker Biotyper. Diagnostic Microbiology and Infectious Disease, 89(2), 92-97.

Zamudio, M. L., Meza, A., Bailón, H., Martinez-Urtaza, J., & Campos, J. (2011). Experiencias en la vigilancia epidemiológica de agentes patógenos transmitidos por alimentos a través de electroforesis en campo pulsado (PFGE) en el Perú. Revista peruana de medicina experimental y salud pública, 28, 128-135.

Zhang, X., Lu, Y., Qian, H., Liu, G., Mei, Y., Jin, F., Xia, W., & Ni, F. (2020). Non-O1, Non-O139 Vibrio cholerae (NOVC) Bacteremia: Case Report and Literature Review, 2015-2019. Infection and drug resistance, 13, 1009–1016.

Zúñiga CIR, Caro LJ. (2014). Vibrio vulnificus una bacteria al acecho en las playas. Revista de Enfermedades Infecciosas en Pediatría, 27-28(110), 532-534.

Published

2023-01-20

How to Cite

Cuneo, A. E. ., & Vélez-Azañero, A. . (2023). Identification of environmental Vibrio cholerae non 01 non 139 by MALDITOF MS. The Biologist, 21(1), 87–98. https://doi.org/10.24039/rtb20232111529

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Review Articles