Evaluation of Bioactive Compounds in Nutrition Physiology

Authors

  • Yıkmış, S Lecturer, Namık Kemal University, Department of Nutrition and Dietetics, Turkey
  • Kağan, N M.Sc., Namık Kemal University, Department of Nutrition and Dietetics, Turkey
  • Atan, R.M Professor, Namık Kemal University, Department of Nutrition and Dietetics, Turkey
  • Alpaslan, M M.Sc., Namık Kemal University, Department of Nutrition and Dietetics, Turkey

Keywords:

Bioactive peptides, ACE inhibitors, Antihypertensive effect

Abstract

Many peptides released from animal or plant proteins in vitro or in vivo have therapeutic functions in humans beyond bioactivity and adequate nutrition. Different health effects have been attributed to foodborne peptides, including antimicrobial properties, blood pressure lowering (ACE inhibitor) effects, cholesterol lowering ability, antithrombotic and antioxidant activities, increased mineral absorption, immunomodulatory effects and opioid activities. For this reason, nutritional counseling practices deal with these issues. Specific protein fractions with therapeutic effects on body function and health are termed biological peptides and have been shown to have a direct positive effect on health. Angiotensin I-converting enzyme (ACE) is a carboxy-dipeptidyl metallopeptidase associated with the renin angiotensin system that regulates the production of angiotensin II from vasoconstrictor angiotensin-II and peripheral blood pressure that catalyzes the inactivation of vasodilator bradykinin. For this reason, the ACE inhibitor substance in the diet may inhibit hypertension by inhibiting the renin-angiotensin system. Milk proteins are now the main source of bioactive peptides. Such peptides are seen as natural and non-effective alternatives to drugs in the treatment of hypertension. The natural consumption of biological peptides will not be expected to cause side effects of synthetically produced drugs used to control hypertension. Therefore, it can be used as a powerful functional food additive and the ACE inhibitor is a natural and healthy alternative to drugs.

References

Anderson, G. H., & Moore, S. E. (2004). The Emerging Role of Dairy Proteins and Bioactive Peptides in Nutrition and Health Dietary Proteins in the Regulation of Food Intake and Body Weight in Humans. Journal of Nutrition, 134(4), 974–979. https://doi.org/10.1128/JB.188.5.1691

Arihara, K. (2006). Strategies for designing novel functional meat products. Meat Science, 74(1), 219–229. https://doi.org/10.1016/j.meatsci.2006.04.028

Erdmann, K., Cheung, B. W. Y., & Schröder, H. (2008). The possible roles of food-derived bioactive peptides in reducing the risk of cardiovascular disease. Journal of Nutritional Biochemistry, 19(10), 643–654. https://doi.org/10.1016/j.jnutbio.2007.11.010

Gao, D., Chang, T., Li, H., & Cao, Y. (2002). African journal of biotechnology. African Journal of Biotechnology (Vol. 9). Academic Journals. Retrieved from https://www.ajol.info/index.php/ajb/article/view/125800

Gibbs, B. F., Zougman, A., Masse, R., & Mulligan, C. (2004). Production and characterization of bioactive peptides from soy hydrolysate and soy-fermented food. Food Research International, 37(2), 123–131. https://doi.org/10.1016/J.FOODRES.2003.09.010

Gür, F., Güzel, M., Öncül, N., Yıldırım, Z., & Yıldırım, M. (2010). Süt Serum Proteinleri ve Türevlerinin Biyolojik ve Fizyolojik Aktiviteleri. Akademik Gıda, 8(1), 23–31.

Hartmann, R., & Meisel, H. (2007). Food-derived peptides with biological activity: from research to food applications. Current Opinion in Biotechnology, 18(2), 163–169. https://doi.org/10.1016/j.copbio.2007.01.013

Kancabaş, A., & Karakaya, S. (2013). Angiotensin-converting enzyme (ACE)-inhibitory activity of boza, a traditional fermented beverage. Journal of the Science of Food and Agriculture, 93(3), 641–645. https://doi.org/10.1002/jsfa.5883

Kim, S.-K., & Wijesekara, I. (2010). Development and biological activities of marine-derived bioactive peptides: A review. Journal of Functional Foods, 2(1), 1–9. https://doi.org/10.1016/J.JFF.2010.01.003

Koçak, A., & Şanlı, T. (2016). Süt Proteini Kaynaklı ACE-İnhibitör Peptitleri: Oluşumu, Etki Mekanizması ve Biyoyararlılıkları. Gida / the Journal of Food, 41, 275–283. https://doi.org/10.15237/gida.GD16024

Korhonen, H., & Pihlanto, A. (2006). Bioactive peptides: Production and functionality. International Dairy Journal, 16(9), 945–960. https://doi.org/10.1016/j.idairyj.2005.10.012

Mora, L., Aristoy, M.-C., & Toldrá, F. (2016). Bioactive Peptides in Foods. Encyclopedia of Food and Health, 395–400. https://doi.org/10.1016/B978-0-12-384947-2.00067-2

Möller, N. P., Scholz-Ahrens, K. E., Roos, N., & Schrezenmeir, J. (2008). Bioactive peptides and proteins from foods: Indication for health effects. European Journal of Nutrition, 47(4), 171–182. https://doi.org/10.1007/s00394-008-0710-2

Okamoto, A., Hanagata, H., Matsumoto, E., Kawamura, Y., Koizumi, Y., & Yanagida, F. (1995). Angiotensin I Converting Enzyme Inhibitory Activities of Various Fermented Foods. Bioscience, Biotechnology, and Biochemistry, 59(6), 1147–1149. https://doi.org/10.1271/bbb.59.1147

Pihlanto, A. (2006). Bioactive peptides: Production and functionality. International Dairy Journal, 16(9), 945–960. https://doi.org/10.1016/J.IDAIRYJ.2005.10.012

Pihlanto, A., Virtanen, T., & Korhonen, H. (2010). Angiotensin I converting enzyme (ACE) inhibitory activity and antihypertensive effect of fermented milk. International Dairy Journal, 20(1), 3–10. https://doi.org/10.1016/J.IDAIRYJ.2009.07.003

Ra, H., Ege, U., & Fak, Z. (2013). Gida Kaynaklı Anti̇hi̇pertensi̇f Pepti̇tleri̇n Bi̇yoyararliliği Üreti̇mi̇ Ve İlaç Bioavailability , Production and Possibility of Alternative To Drug of Food-Derived Antihypertensive Peptides, 38, 167–174.

Rasika, D. M. D., Ueda, T., Jayakody, L. N., Suriyagoda, L. D. B., Silva, K. F. S. T., Ando, S., & Vidanarachchi, J. K. (2015). ACE-inhibitory activity of milk fermented with saccharomyces cerevisiae k7 and lactococcus lactis subsp. lactis nbrc 12007. Journal of the National Science Foundation of Sri Lanka, 43(2), 141–151. https://doi.org/10.4038/jnsfsr.v43i2.7942

Ryan, J. T., Ross, R. P., Bolton, D., Fitzgerald, G. F., & Stanton, C. (2011). Bioactive peptides from muscle sources: Meat and fish. Nutrients, 3(9), 765–791. https://doi.org/10.3390/nu3090765

Sciences, L., Milchforschung, È., Chemie, È., Fitzgerald, R. J., & Meisel, H. (2018). Milk protein-derived peptide inhibitors of angiotensin-I-converting enzyme, (2000), 33–37.

Seppo, L., Jauhiainen, T., Poussa, T., & Korpela, R. (2003). A fermented milk high in bioactive peptides has a blood pressure-lowering effect in hypertensive subjects. The American Journal of Clinical Nutrition, 77(2), 326–30. Retrieved from http://www.ncbi.nlm.nih.gov/pubmed/12540390

Siow, H.-L., & Gan, C.-Y. (2013). Extraction of antioxidative and antihypertensive bioactive peptides from Parkia speciosa seeds. Food Chemistry, 141(4), 3435–3442. https://doi.org/10.1016/j.foodchem.2013.06.030

Şimşek, A., & Kılıç, B. (2016). Et KaynaklBi̇yoakti̇fPepti̇tler VeFonksi̇yoneÖzelli̇kleri̇. Gida / the Journal of Food, 41, 267–274. https://doi.org/10.15237/gida.GD16013

Tez, S., & Aksay, S. (2010). Merci̇mek protei̇ni̇ konsantresi̇ ve hi̇droli̇zatinin bazi fonksi̇yonel ve bi̇yoakti̇f özelli̇kleri̇ni̇n i̇ncelenmesi̇.

Tirelli, A., De Noni, I., & Resmini, P. (2000). Bioactive Peptides in Milk Products. Journal of Food Technology in Africa, 5(1). https://doi.org/10.4314/jfta.v5i1.19254

Wang, H., Li, Y., Cheng, Y., Yin, L., & Li, L. (2013). Effect of the Maillard Reaction on Angiotensin I-Converting Enzyme (ACE)-Inhibitory Activity of Douchi During Fermentation. Food and Bioprocess Technology, 6(1), 297–301. https://doi.org/10.1007/s11947-011-0596-5

Wu, J., Liao, W., & Udenigwe, C. C. (2017). Revisiting the mechanisms of ACE inhibitory peptides from food proteins. Trends in Food Science & Technology, 69, 214–219. https://doi.org/10.1016/J.TIFS.2017.07.011.

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Published

30.03.2018

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Section

Review Article

How to Cite

Evaluation of Bioactive Compounds in Nutrition Physiology. (2018). International Journal of Agricultural and Life Sciences, 4(1), 232-235. https://skyfox.co/ijals/index.php/als/article/view/38

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