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Articles

Purified avocado seed acetogenins: Antimicrobial spectrum and complete inhibition of Listeria monocytogenes in a refrigerated food matrix

Acetogeninas Aisladas de Semilla de Aguacate: Espectro Antimicrobiano y Completa Inhibición del Crecimiento de Listeria monocytogenes en una Matriz Alimenticia Refrigerada

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Pages 228-239 | Received 01 Nov 2018, Accepted 22 Jan 2019, Published online: 28 May 2019

References

  • Ababouchl, L., Chaib, A., & Busta, F. F. (1992). Inhibition of bacterial spore growth by fatty acids and their sodium salts. Journal of Food Protection, 55(December), 980–984.
  • Ahn, Y. S., Shin, D. H., Baek, N. I., Seong, R. S., & Woo, G. J. (2001). Isolation and identification of antimicrobial active substance from Mallotus japonicus Muell on Listeria monocytogenes. Korean Journal of Food Science and Technology, 33(2), 271–277.
  • Avis, T. J., & Bélanger, R. R. (2001). Specificity and mode of action of the antifungal fatty acid cis-9-heptadecenoic acid produced by Pseudozyma flocculosa. Applied and Environmental Microbiology, 67(2), 956–960.
  • Becerril, R., Manso, S., Nerin, C., & Gómez-Lus, R. (2013). Antimicrobial activity of lauroyl arginate ethyl (LAE), against selected food-borne bacteria. Food Control, 32(2), 404–408.
  • Beyazova, M., Ml, D., Gravina, S., Kenneth, K., Beach, U., Trinnaman, L., & Island, S. (2010). US 2010/0034944 A1. US. US 2010/0311130Al
  • Bhaumik, M., Choi, H. J., Seopela, M. P., McCrindle, R. I., & Maity, A. (2014). Highly effective removal of toxic Cr(VI) from wastewater using sulfuric acid-modified avocado seed. Industrial and Engineering Chemistry Research, 53(3), 1214–1224.
  • Brown, B. I. (1972). Unpleasant flavor compounds. Journal of Agricultural and Food Chemistry, 20(4), 753–757.
  • Butt, A. J., Roberts, C. G., Seawright, A. A., Oelrichs, P. B., Macleod, J. K., Liaw, T. Y. E., … Sutherland, R. L. (2006). A novel plant toxin, persin, with in vivo activity in the mammary gland, induces Bim-dependent apoptosis in human breast cancer cells. Molecular Cancer Therapeutics, 5(9), 2300–2309.
  • Ciarciaglini, G., Hill, P. J., Davies, K., McClure, P. J., Kilsby, D., Brown, M. H., & Coote, P. J. (2000). Germination-induced bioluminescence, a route to determine the inhibitory effect of a combination preservation treatment on bacterial spores. Applied and Environmental Microbiology, 66(9), 3735–3742.
  • CLSI (Clinical and Laboratory Standards Institute). (2013). Performance Standards for Antimicrobial Susceptibility Testing. CLSI Approved Standard M100-S23.
  • Davies, E. A., Bevis, H. E., & Delves-Broughton, J. (1997). The use of the bacteriocin, nisin, as a preservative in ricotta-type cheeses to control the food-borne pathogen Listeria monocytogenes. Letters in Applied Microbiology, 24(5), 343–346.
  • Degenhardt, A. G., & Hofmann, T. (2010). Bitter-tasting and kokumi-enhancing molecules in thermally processed avocado (Persea americana Mill.). Journal of Agricultural and Food Chemistry, 58(24), 12906–12915.
  • Desbois, A. P., & Smith, V. J. (2010). Antibacterial free fatty acids: Activities, mechanisms of action and biotechnological potential. Applied Microbiology and Biotechnology, 85(6), 1629–1642. doi:10.1007/s00253-009-2355-3
  • Dharmaratne, H., Tekwani, B., Jacob, M., & Nanayakkara, N. (2012). Anti microbial and antileishmanial active acetogenins from Avacado (Persea americana) fruits. Panta Med, 78, 34.
  • Domergue, F., Helms, G. L., Prusky, D., & Browse, J. (2000). Antifungal compounds from idioblast cells isolated from avocado fruits. Phytochemistry, 54(2), 183–189. Retrieved from http://www.ncbi.nlm.nih.gov/pubmed/10872209
  • Erickson, M. C., & Doyle, M. P. (2017). The challenges of eliminating or substituting antimicrobial preservatives in foods. Annual Review of Food Science and Technology, 8(1), 371–390.
  • FAO. (2015). FAOSTAT: Food and agricultural commodities production, Avocados: Production - crops. Retrieved from http://www.fao.org/faostat/en/
  • FSIS. (2014). FSIS compliance guideline: Controlling Listeria monocytogenes in post-lethality exposed ready-to-eat meat and poultry products.
  • Gao, F. H., Abee, T., & Konings, W. N. (1991). Mechanism of action of the peptide antibiotic nisin in liposomes and cytochrome c oxidase-containing proteoliposomes. Applied and Environmental Microbiology, 57(8), 2164–2170.
  • Gaysinsky, S., Taylor, T. M., Davidson, P. M., Bruce, B. D., & Weiss, J. (2007). Antimicrobial efficacy of eugenol microemulsions in milk against Listeria monocytogenes and Escherichia coli O157: H7. Journal of Food Protection, 70(11), 2631–2637.
  • Glass, K. A., & Johnson, E. A. (2004). Antagonistic effect of fat on the antibotulinal activity of food preservatives and fatty acids. Food Microbiology, 21, 675–682.
  • Gray, M. J., Freitag, N. E., & Boor, K. J. (2006). How the bacterial pathogen listeria monocytogenes mediates the switch from environmental Dr. Jekyll to Pathogenic Mr. Hyde. Infection and Immunity, 74(5), 2505–2512.
  • Griffiths, K. K., Zhang, J., Cowan, A. E., Yu, J., & Setlow, P. (2011). Germination proteins in the inner membrane of dormant Bacillus subtilis spores colocalize in a discrete cluster. Molecular Microbiology, 81(4), 1061–1077.
  • Guzmán-Gerónimo, R. I., & Dorantes, L. (2008). Cambios en el perfil de acidos grasos y microestructura de aguacate hass tratado con microondas. Archivos latinoamericanos de nutricion, 58(3), 298–302.
  • Hammer, K. A., Carson, C. F., & Riley, T. V. (1999). Antimicrobial activity of essential oils and other plant extracts. Journal of Applied Microbiology, 86(6), 985–990.
  • Health Canada. (2012). Listeria monocytogenes challenge testing of refrigerated ready-to-eat foods. Retrieved from http://www.hc-sc.gc.ca/fn-an/legislation/pol/listeria_monocytogenes-test-eng.php
  • Hofmann, T., & Degenhardt, A. G. (2010). WO 2011/020908.
  • Inoue, A., & Horikoshi, K. (1991). Estimation of solvent-tolerance of bacteria by the solvent parameter log P. Journal of Fermentation and Bioengineering, 71(3), 194–196.
  • Jensen, L. B. (1951). US2550254A. US2550254A. U.S. Retrieved from https://patents.google.com/patent/US2550254A/en
  • Jensen, N., & Whitfield, F. B. (2003). Role of Alicyclobacillus acidoterrestris in the development of a disinfectant taint in shelf-stable fruit juice. Letters in Applied Microbiology, 36(1), 9–14.
  • Karamac, M., Estrella, I., Herna, T., & Dykes, G. A. (2012). Phenolic compound profiles and antioxidant capacity of Persea americana Mill. Peels and seeds of two varieties. Journal of Agricultural and Food Chemistry, 60, 4613–4619.
  • Kawagishi, H., Fukumoto, Y., Hatakeyama, M., He, P., Arimoto, H., Matsuzawa, T., … Sugiyama, K. (2001). Liver injury suppressing compounds from avocado (Persea americana). Journal of Agricultural and Food Chemistry, 49(5), 2215–2221.
  • Knapp, H. R., & Melly, M. A. (1986). Bactericidal effects of polyunsaturated fatty acids. The Journal of Infectious Diseases, 154(1), 84–94.
  • Levison, M. E. (2004). Pharmacodynamics of antimicrobial drugs. Infectious Disease Clinics of North America. 10.1016/j.idc.2004.04.012
  • Lu, Y.-C., Chang, H.-S., Peng, C.-F., Lin, C.-H., & Chen, I.-S. (2012). Secondary metabolites from the unripe pulp of Persea americana and their antimycobacterial activities. Food Chemistry, 135(4), 2904–2909.
  • Ma, Q., Davidson, P. M., & Zhong, Q. (2013). Antimicrobial properties of lauric arginate alone or in combination with essential oils in tryptic soy broth and 2% reduced fat milk. International Journal of Food Microbiology, 166(1), 77–84.
  • Ma, Q., Davidson, P. M., & Zhong, Q. (2016). Antimicrobial properties of microemulsions formulated with essential oils, soybean oil, and Tween 80. International Journal of Food Microbiology, 226, 20–25.
  • Mah, J.-H., Kang, D.-H., & Tang, J. (2008). Effects of minerals on sporulation and heat resistance of Clostridium sporogenes. Elsevier, 128, 385–389. Retrieved from https://www.sciencedirect.com/science/article/pii/S016816050800531X
  • Neeman, I., Lifshitz, A., & Kashman, Y. (1970). New antibacterial agent isolated from the avocado pear. Applied Microbiology, 19, 3. Retrieved from http://aem.asm.org/content/19/3/470.short
  • Oelrichs, P. B., Ng, J. C., Seawright, A. A., Ward, A., Schäffeler, L., MacLeod, J. K., … MacLeod, J. K. (1995). Isolation and identification of a compound from avocado (Persea americana) leaves which causes necrosis of the acinar epithelium of the lactating mammary gland and the myocardium. Natural Toxins, 3(5), 344–349.
  • Pacheco, A., Rodríguez-Sánchez, D. G., Villarreal-Lara, R., Navarro-Silva, J. M., Senés-Guerrero, C., & Hernández-Brenes, C. (2017). Stability of the antimicrobial activity of acetogenins from avocado seed, under common food processing conditions, against Clostridium sporogenes vegetative cell growth and endospore germination. International Journal of Food Science and Technology, 52(11), 2311–2323.
  • Pattanayaiying, R., H-Kittikun, A., & Cutter, C. N. (2014). Effect of lauric arginate, nisin Z, and a combination against several food-related bacteria. International Journal of Food Microbiology, 188, 135–146.
  • Prusky, D., Keen, N., Sims, J., & Midland, S. (1982). Possible involvement of an antifungal diene in the latency of Colletotrichum gloeosporioides on unripe avocado fruits. Phytopathology, 1578–1582. Retrieved from http://www.apsnet.org/publications/phytopathology/backissues/Documents/1982Articles/Phyto72n12_1578.pdf.
  • Ramos-Jerz, M. D. R. (2007). Phytochemical analysis of Avocado seeds (Persea americana Mill, cv Hass). Göttingen: Cuvillier Verlag.
  • Rodríguez-Carpena, J.-G., Morcuende, D., Andrade, M.-J., Kylli, P., & Estévez, M. (2011). Avocado (Persea americana Mill.) phenolics, in vitro antioxidant and antimicrobial activities, and inhibition of lipid and protein oxidation in porcine patties. Journal of Agricultural and Food Chemistry, 59(10), 5625–5635.
  • Rodríguez-López, C. E., Hernández-Brenes, C., & de la Garza, R. I. D. (2015). A targeted metabolomics approach to characterize acetogenin profiles in avocado fruit (Persea americana Mill.). RSC Advances, 5(128), 106019–106029.
  • Rodriguez-Sanchez, D. G., Flores-García, M., Silva-Platas, C., Rizzo, S., Torre-Amione, G., De la Peña-Diaz, A., … García-Rivas, G. (2015). Isolation and chemical identification of lipid derivatives from avocado (Persea americana) pulp with antiplatelet and antithrombotic activities. Food & Function, 6(1), 193–203.
  • Rodríguez-Sánchez, D. G., Pacheco, A., García-Cruz, M. I., Gutiérrez-Uribe, J. A., Benavides-Lozano, J. A., & Hernández-Brenes, C. (2013). Isolation and structure elucidation of avocado seed (Persea americana) lipid derivatives that inhibit Clostridium sporogenes endospore germination. Journal of Agricultural and Food Chemistry, 61(30), 7403–7411.
  • Rodriguez-Saona, C., & Trumble, J. (2000). Biologically active aliphatic acetogenins from specialized idioblast oil cells. Current Organic Chemistry, 4(12), 1249–1260.
  • Ruckman, S. A., Rocabayera, X., Borzelleca, J. F., & Sandusky, C. B. (2004). Toxicological and Metabolic Investigations of the Safety of N-a-Lauroyl-l-arginine Ethyl Ester Monohydrochloride (LAE). Food and Chemical Toxicology, 42(2), 245–259.
  • Salinas-Salazar, C. L., Hernández-Brenes, C., Rodríguez-Sánchez, D., Castillo, E., Navarro-Silva, J., & Pacheco, A. (2016). Inhibitory activity of Avocado seed fatty acid derivatives (Acetogenins) against Listeria monocytogenes. Journal of Food Science, 82(1), 134–144.
  • Scott, V. N., Swanson, T. A., Freier, T. A., Payton, P. J., Sveum, W. H., Hall, P. A., … Brown, D. G. (2005). Guidelines for conducting Listeria monocytogenes challenge testing of foods. Food Protection Trends, 25(11), 818–825. Retrieved from: http://agris.fao.org/agris-search/search.do?recordID=US201301047377
  • Secretaría de Economía. (2012). Monografía del sector aguacate en México: Situación actual y oportunidades de mercado. Dirección General de Industrias Básicas, Mexico.
  • Secretaría de Salud. (2005). Official Mexican standard NOM-213-SSA1-2002. Products and Services. Meat Process Products. Sanitary Specifications. Methods of Test. Issued on the Official Gazette on July 11, 2005.
  • Shelef, L. A., Naglick, O. A., & Bogen, D. W. (1980). Sensitivity of some common food-borne bacteria to the spices sage, rosemary, and allspice. Journal of Food Science, 45(4), 1042–1044.
  • Silhavy, T. J., Kahne, D., & Walker, S. (2010). The bacterial cell envelope. Cold Spring Harb Perspect Biology, 2(5), 1–16.
  • Soni, K., Nannapaneni, R., Schilling, M. W., & Jackson, V. (2010). Bactericidal activity of lauric arginate in milk and Queso Fresco cheese against Listeria monocytogenes cold growth1. Journal of Dairy Science, 93(10), 4518–4525.
  • Umerska, A., Cassisa, V., Matougui, N., Joly-Guillou, M. L., Eveillard, M., & Saulnier, P. (2016). Antibacterial action of lipid nanocapsules containing fatty acids or monoglycerides as co-surfactants. European Journal of Pharmaceutics and Biopharmaceutics, 108, 100–110.
  • Valeri, A., & Gimeno, N. (1954). Estudio fitoquimico toxicologico del pericarpio del aguacate (Persea americana). Revista De Medicina Veterinaria Y Parasitología (Maracay), 37, 37–58.
  • van Melis, C. C. J., Almeida, C. B., Kort, R., Groot, M. N. N., & Abee, T. (2012). Germination inhibition of Bacillus cereus spores: Impact of the lipophilic character of inhibiting compounds. International Journal of Food Microbiology, 160(2), 124–130.
  • Weatherby, L. S., & Sorber, G. (1931). Composition of Avocado seed. Industrial and Engineering Chemistry, 23(12), 1421–1423.
  • Wells-Bennik, M. H. J., Eijlander, R. T., Den Besten, H. M. W., Berendsen, E. M., Warda, A. K., Krawczyk, A. O., … Abee, T. (2016). Bacterial spores in food: Survival, emergence, and outgrowth. Annual Review of Food Science and Technology, 7(1), 457–482.
  • Winkowski, K., Crandall, A. D., & Montville, T. J. (1993). Inhibition of Listeria monocytogenes by Lactobacillus bavaricus MN in beef systems at refrigeration temperatures. Applied and Environmental Microbiology, 59(8), 2552–2557.
  • Wong, T. L., Carey-Smith, G. V., Hollis, L., & Hudson, J. A. (2005). Microbiological survey of prepackaged pate and ham in New Zealand. Letters in Applied Microbiology, 41(2), 106–111.