Microbial production of histamine and the imperatives of processed food consumption

Main Article Content

Ezema James Nnabuike
Agbo Esther Chinedu
Eze Emmanuel Aniebonam

Abstract

Food processing and storage increase the value chain of food items, both for commercial purposes and for future use by peasant producers. The roles of lactic acid bacteria (LAB) and yeasts in the processing of dairy,
brewed, bakery and traditionally fermented foods cannot be over-emphasized. These organisms improve the nutritional contents and organoleptic properties of these foods. However, certain undesired products, especially from protein-rich foods, notably, biogenic amines often characterize the process. This is usually a physiologic response by the organisms to the food environments such as pH, and is often influenced by temperature, time and salt concentration. Histamine production during such a process often results in the accumulation of exogenous histamine in the foods, thereby constituting health hazards to the consumers. Histamine food poisoning affects virtually every system of the body due to the widespread physiological roles of histamine in the body, presenting a wide range of symptoms that make diagnosis difficult. More regulated scientific approaches should be adopted by food processors and handlers especially in the developing countries where technologies may not be available.

Downloads

Download data is not yet available.

Article Details

How to Cite
Nnabuike, E. J., Chinedu, A. E., & Aniebonam, E. E. (2021). Microbial production of histamine and the imperatives of processed food consumption. Journal of Biological Research and Biotechnology, 19(2), 1317-1327. https://doi.org/10.4314/br.v19i2.5
Section
Articles

References

Bartuzi Z. (2009). The molecular traits of food allergens. Advances in Dermatology

Alergology, 26: 310-312.

Benly, P (2015). Role of histamine in acute inflammation. Journal of Pharmaceutical Science and & Research, 7(6): 373-376.

Besas, J. R. and Dizon, E. I. (2012). Influence of salt concentration on histamine formation in fermented tuna viscera (Dayok). Food and Nutrition Sciences., 3 (2): 17517.

Bover-Cid, S., Latorre-Moratalla, M.L., VecianaNogués, M.T., Vidal-Carou, M.C. (2014). Processing contaminants: Biogenic amines. Encyclopedia of Food Safety, 2:

–391.

Calles-Enríquez, M., Eriksen, B. H., Andersen, P. S., Rattray, F. P., Johansen, A. H.,

Fernández, M., Victor Ladero, V. and Alvarez, M. A., (2012). Sequencing and

transcriptional analysis of the Streptococcus thermophilus histamine biosynthesis gene cluster: Factors That affect differential hdcA expression. Applied and Environmental Microbiology, 76(18): 6231-6238.

Carlos, D., Fremond, C., Samarina, A., Vasseur, V., Maillet, I, Ramos, S. G., Erard, F.,

Quesniaux, V., Ohtsu, H., Silva, C. L., Faccioli, L. H. and B. Ryffe,l B. (2009). Histamine plays an essential regulatory role in lung inflammation and protective

immunity in the acute phase of Mycobacterium tuberculosis infection. Infection and Immunity, 77(12): 5359-5368.

Chander, H., Batish, V.H., Babu, S., Singh, R.S., (1989). Factors affecting amine

production by a selected strain of Lactobacillus bulgaricus. Journal of Food

Science. 54: 940-942.

Chen, H.C., Lee, C., Lin, C. M., Hwangd, F. and Tsai, Y. T. (2010). Determination of

histamine and bacterial isolation in marlin fillets (Makaira Nigricans) implicated in a food borne poisoning. Journal of Food Safety. 30(3): 699-710.

Chung-Saint, L., Hsien-Feng, K., Chia-Min, L., Hsin-Cuan, T. and Tung-Hsiang, T.

(2016). Histamine production by Raoultella ornithinolytica in Mahi-Mahi meat at various storage temperatures. Journal of Food and Drug Analysis, 24(2): 305-310.

Comas-Basté, O., Latorre-Moratalla, M. L., Sánchez-Pérez, S., Veciana-Nogués, M.

T. and Vidal-Carou, M. (2019). Histamine and other biogenic amines in food. From

scombroid poisoning to histamine intolerance Biogenic Amines. Doi: http://dx.doi.org/10.5772/intechopen.84333

Eitenmiller, R.R., Koehler, P.E., Regan, P.E., (1978). Tyramine in fermented

sausages: Factors affecting formation of tyrosine and tyrosine decarboxylase.

Journal of Food Science, 43 (3): 689-693.

Feldman, K. A., Wener, S. B., Cronan, S., Hemandez, H., Horvat, A. R., Lea, C. S.,

Au, A. M. and Vugia, D. J. (2005). A large outbreak of scombroid fish poisoning

associated with eating escolar fish (Lepidocybium flavobrunneum). Epidemiology and Infection, 133(1): 29- 33.

Frank, H. A. and Yoshinaga, D. H. (1987) Table for estimating histamine formation in skipjack tuna, Katsuwonus Pelamis, at low nonfreezing temperatures. Marine

Fishery Review, 49(4): 66-70.

Gale, E. F. (1946). The bacterial amino acid decarboxylase. Advances in Enzymology and Related Areas of Molecular Biology, 6: 1-32.

Gardini, F., Martuscelli, M., Caruso, M.C., Galgano, F., Crudele, M.A., Favati, F.,

Guerzoni, M.E., Suzzi, G., (2001). Effects of pH, temperature and sodium chloride

concentration on the growth kinetics, proteolytic activity, and biogenic amine

production of Enterococcus faecalis. International Journal of Food Microbiology, 64: 105-117.

Guizani, N., Al-Busaidy, M. A., Al-Belushi, I. M., Mothershaw, A., Rahman, M. S. (2005). The effect of storage temperature on histamine production and the freshness of yellowfin tuna (Thunnus Albacores). Food Research International, 38: 215– 222

Gupta, R. S., Warren, C. M., Smith, B. M., Jiang, J., Blumenstock, J. A., Davis, M. M.,

Schleimer, R. P. and Nadeau, K. C. (2019). The prevalence and severity of food allergies among U.S. Adults. Allergy, 2(1): 1-14.

Hammod, J., Brennan, M. and Price, A. (1999). The control of microbial spoilage of beer. Journal of the Institute of Brewing, 105 (2): 113-120.

Henry-Chin, K.D. and Koehler, P.E., (1986). Effects of salt concentration and incubation temperature on formation of histamine, phenethylamine, tryptamine,

and tyramine during miso fermentation. Journal of Food Protection. 49: 423–427.

Kelly, W. J., Asmondson, R. V., Hopcraft, D. H. (1989). Growth of Leuconostoc oenus

under aerobic condtions, American Journal of Enology and Viticulture, 40: 277-282.

Kennedy, L., Hodges K., Meng, F., Alpini, G. and Francis, H. (2012). Histamine and

histamine receptor regulation of gastrointestinal cancers. Translational Gastrointestinal Cancer, 1(3): 215–227.

Kobayashi, T., Wang, X., Shigeta, N., et al (2016). Distribution of histamine producing lactic acid bacteria in canned salted anchovies and their histamine

production behaviour. Annals of Microbiology, 66 (3): 1277-1284

Kofler, L., Ulmer, H. and Kofler, H. (2011). Histamine 50-skin-prick test: a tool to

diagnose histamine intolerance. Allergy, 2011: 353045

Komitopoulou, E. (2017). Microbial and chemical markers of meat spoilage. International Meat Topics, 3(3): 23-25

Kosmerl, T., Sucur, S. and Prosen, H. (2003). Biogenic amines in red wine: the impact of technological processing of grape and wine. Acta Agriculturae Slovenica, 101(2): 269-261

Maijala, R., (1994). Histamine and tyramine production by a lactobacillus strain

subjected to external ph decrease. Journal of Food Protection., 5: 259–262.

Maijala, R., and Eerola, S., (1993). Contaminant lactic acid bacteria of dry sausages

produce histamine and tyramine. Meat Science, 35: 387–395.

Maintz and Novak (2007). Histamine and histamine intolerance. American Journal

of Clinical Nutrition, 85(5): 1185-1196.

Marcobal, A., De Las Rivas, B., Landete, J. M., Tabera, L., Muñoz, R. (2012). Tyramine and phenylethylamine biosynthesis by food bacteria. Critical. Review on Food Science and Nutrition, 52: 448– 467.

McCarthy, S., Bjornsdottir-Butler, K. and Benner, R. (2002). Storage time and temperature effects on histamine production in tuna salad preparation. Journal of food Protection, 78(7): 1343-1349.

Mirjam, U. and Donald, C. (2012). The role of mast cell in defence against pathogens. PLoS Pathogen, 8(4): e1002619.

Moon, J. S., Kim, S. Y., Cho, K. J., Yang, S. J., Yoon, G. M., Eom, H. J. and Han, N. S.

(2013). Isolation and characterization of histamine-producing bacteria from fermented fish products. Journal of microbiology, 51(6): 881-885.

Music, E., Korosec, P., Silar, M., Katja-Adamic, K., Kosnik, M., Matija-Rijavec, M. and

Wochenschr, W. K. (2013) Serum diamine oxidase activity as a diagnostic test for histamine intolerance. Wiener Klinische Wochenschrift, 125(9-10): 239–243.

Naila, A; Flint, S; Fletcher, G; Bremer, P; and Meerdink, G. (2010). Control of biogenic amines in food; existing and emerging approaches. Journal of Food science, 75 (7): 139-150.

Nuutinen, S and Panula, P. (2010). Histamine in neurotransmission and brain diseases. Advances in Experimental Medicine and Biology., 709: 95-107.

Oyelakini, O. and Adijivoni, A. (2017). Incidence of biogenic amines in foods: Implication for the Gambia. African Journal of Chemical Education, 7(1): 2227-5835.

Panja, S. K., Bhattacharya, B., and Lahiri, S. C (2013). Role of histamine as a toxic

mediator in the pathogenesis of vitiligo. Indian Journal of Dermatology,58(6):

–428.

Passani, M. B., Panula, P. and Jian-Sheng Lin, J. S. (2014). Histamine in the brain.

Frontiers in Systemic Neuroscience., 8: 64.

Polazzi, E., Monti, B. (2010). Microglia and neuroprotection: From in vitro studies

totherapeutic applications. Progress in Neurobiology, 92: 293-315.

Prescott, S. L., Pawankar, R., Allen, K. J., Campbell, D. E., Sinn, J. K., Fiocchi, A.,

Ebisawa, M., Sampson, H. A., Beyer, K. and Lee, B.(2013): A global survey of

changing patterns of food allergy burden in children: World Allergy Organization

Journal, 6: 21

Priyadarshani, W. M. and Rakshit, S. K. (2011). Screening selected strains of probiotic lactic acid bacteria for their ability to produce biogenic amines (histamine and tyramine). International Journal of Food Science and Technology, 46(10): 2001- 2223.

Ruiz-Capillas, C. and Jimenez-Colmenero, F. (2004). Biogenic amines in meat and

meat products. Critical Reviews in Food Science and Nutrition, 44: 489-499.

Sakamoto, K. and Konings, W. N. (2003) Beer spoilage bacteria and hop resistance.

International Journal of Food Microbiology, 89(2): 105-124.

Sanchez-Perez, S., Cosmas-Bsate, O., RabellGonzalez, J., Vaciana-Nogues, M. T.,

Latorre-Moratalla, M. L. and Vidal-Carou, M. C. (2018). Biogenic amines in plantorigin foods: are they frequently underestimated in low-histamine diets?

Foods, 7(12): 205.

Seifert, R., Strasser, A., Schneider, E. H., Neumann, D., Dove, S. and Buschauer, A. (2013). Molecular and cellular analysis of human histamine receptor subtypes.

Trends in Pharmacological Sciences, 34: 33–58.

Shahid, M., Tripathi, T., Sobia, 1F., Moin, S., Siddiqui, M. and Rahat, Ali Khan, R. A.

(2009). Histamine, histamine receptors, and their role in immunomodulation: An

updated systematic review. The Open Immunology Journal, 2: 9-41.

Shilling, L., Caihong, J., Xinglian, X., Ghengjian, X., Kaixion, L. and Ruihua, S. (2015).

Improved screening procedure for biogenic amine production by lactic acid

bacteria and enterobacteria. Czech Journal of Food Science, 3(1): 19-26.

Shruti, S., Hae-Kyong, P., Jong-Kyu, K., Myunghee, K. (2010). Determination of

biogenic amines in Korean traditional fermented soybean paste (doenjang).

Food and Chemical Toxicology. 48: 1191-1195.

Silla Santos, M.H., (1996). Biogenic amines: Their importance in foods. International Journal of Food Microbiology 29: 213- 231.

Singh, M. and Jadhav, H. R. (2013). Histamine H3 receptor function and ligands: recent developments. Mini Reviews in Medicinal Chemistry 12(1): 13:47–57.

Skypala, I. J., Williams, M, Reeves, L., Meyer, R. and Venter, C (2015): Sensitivity to food additives, vaso-active amines and salicylates: A Review of the evidence.

Clinical and Translational Allergy, 5:34

Smolinska, S., Jutel, M., Crameri, R., O’Mahony, L. (2013). Histamine and gut mucosal immune regulation. Allergy. 10: 1111- 12330.

Sohrabvandi, S., Mortazavian A. M and Rezaei K. (2011). Advanced analytical methods for the analysis of chemical and microbiological properties of beer.

Journal of Food and Drug Analysis, 19(2): 202-222.

Speedy, A. W. (2003). Global production and consumption of animal sourced food. The Journal of Nutrition, 133 (11): 4048-4053.

Steven, K.J., Min-Kyo, J., Mark, D. H., Brian, R. D., Diego, A. P., Nicholas, J. S., Timothy, T. K., Bo, H. K., Sang-Yoo, P., Jizhen, L.,Frank, G. O., David, R. M. and Tina H. (2008). The role of inflammatory mediator in the pathogenesis of otitis

media and sequelae. Clinical and Experimental Ortohinolaryngol. 1(3):

-138.

Sumner, S.S., Speckhard, H.W., Somers, E.B., Taylor, S.L., (1990). Factors controlling

histamine production in Swiss cheese inoculated with Lactobacillus buchneri.

Journal of Dairy Science. 73: 3050– 3058.

Suzzi, G., Gardini, F. (2003) Biogenic amines in dry fermented sausages: A review.

International Journal of Food Microbiology, 88: 41– 54.

Thurmond, R. L. (2015) The histamine H4 receptor: from orphan to the clinic.

Frontiers in Pharmacology, 6: 65.

Tiligada E. (2012). Editorial: is histamine the missing link in chronic inflammation?

Journal of Leukocyte Biology, 92(1): 4-6.

Valiollah, K., Vadood, R., Abolhassan, K. and Alireza, S. (2012). Histamine-producing bacteria isolated from frozen long tail tuna fish (Tonnus tonggoh). African Journal of Microbiology Research, 6(4): 751-756.

Wantke, F, Gotz, M, Jarisch, R (1993). Histamine-free diet: Treatment of choice

for histamine-induced food intolerance and supporting treatment for chronic

headaches. Clinical and Experimental Allergy, 23(12): 982-985.

Wigand, P., Blettner, M., Saloga, J. and Decker, H. (2012): Prevalence of wine

intolerance. Deutsches Arzteblatt International, 109(25): 437-444.

Won, S. K., (2008). Effects of chilled temperature and salt concentration on shelf life of herring (Clupea harengus). United Nations University. Fisheries Training

Programme, Final Report. Pp 5-48

Yoshinaga, D.H., and Frank, H.A., (1982). Histamine-producing bacteria in

decomposing skipjack tuna (Katsuwonus Pelamis). Applied and Environmental

Microbiology, 44: 447– 452.

Similar Articles

You may also start an advanced similarity search for this article.