1,272
Views
12
CrossRef citations to date
0
Altmetric
Original Articles

Purification and identification of angiotensin I-converting enzyme inhibitory peptides from fermented walnut residues

, &
Pages S3326-S3333 | Received 21 Jul 2016, Accepted 05 Nov 2016, Published online: 15 Feb 2018

References

  • Lawes, C.M.; Hoom, S.V.; Rodgers, A. Global Burden of Blood-Pressure Related Disease, 2001. The Lancet 2008, 371, 1513–1518.
  • Wang, H.; Meng, F.; Yin, L.; et al. Changes of Composition and Angiotensin I-Converting Enzyme (ACE)-inhibitory activity during Douchi fermentation. International Journal of Food Properties 2016, 19(11), 2408–2416.
  • Li, F.; Liu, W.; Yamaki, K.; et al. Angiotensin I-Converting Enzyme Inhibitory Effect of Chinese Soypaste along Fermentation and Ripening: Contribution of Early Soybean Protein Borne Peptides and Late Maillard Reaction Products. International Journal of Food Properties 2016, 19(12), 2805–2816.
  • Brugts, J.J.; Hisatomi, A.; Remme, W.; Brugts, J.J.; et al. The Incidence and Clinical Predictors of ACE-inhibitor Induced Dry Cough by Perindopril in 27,492 Patients with Vascular Disease. International Journal of Cardiology 2014, http://dx.doi.org/10.1016/j.ijcard. 2014.07.108.
  • Barbosa-Filho, J.M.; Martins, V.K.M.; Rabelo, L.A.; Moura, M.D.; Silva, M.S.; Cunha, E.V.L.; et al. Natural Products Inhibitors of the Angiotensin Converting Enzyme (ACE). A review between 1980-2000. Revista Brasileira De Farmacognosia-brazilian Journal of Pharmacognosy 2006, 16, 421–446.
  • Atkinson, A.B.; Robertson, J.I.S. Captopril in the Treatment of Clinical Hypertension and Cardiac Failure. The Lancet 1979, 2, 836–839.
  • Ewelina, E.; Aleksandra, Z.; Marta, P.; Bartosz, S. Egg-yolk Protein By-product as a Source of ACE-inhibitory Peptides Obtained with using Unconventional Proteinase from Asian Pumpkin (Cucurbita fi cifolia). Journal of Proteomics 2014, 110, 107–116.
  • Ching, C.L.; Noorlidah, A.; Adawiyah, S.S.; Norhaniza, A. Novel Angiotensin I-converting Enzyme Inhibitory Peptides Derived from Edible Mushroom Agaricus bisporus (J.E. Lange) Imbach Identified by LC-MS/MS. Food Chemistry 2014, 148, 396–401.
  • Wang, L.; Jiang, Z.; Tian, B.; et al. Effects of Galactose Concentration on Characteristics of Angiotensin-I-converting Enzyme Inhibitory Peptides Derived from Bovine Casein in Maillard Reaction. International Journal of Food Properties 2016, 19(10), 2238–2250.
  • Ahmad, A.; Leyla, H.; Jamashidkhan, C.; Mohamad, A.A.; Zahra, M.; Milad, L. Potential Angiotensin I-converting Enzyme Inhibitory Peptides from Gluten Hydrolysate: Biochemical Characterization and Molecular Docking Study. Journal of Cereal Science 2014, 60, 92–98.
  • Li, G.H.; Le, G.W.; Shi, Y.H.; Shrestha, S. Angiotensin I-converting Enzyme Inhibitory Peptides Derived from Food Proteins and their Physiological and Pharmacological Effects. Nutrition Research 2004, 27, 469–486.
  • Yi, J.; Sun, Y.; Zhu, Z.; et al. Near-infrared Spectroscopy (NIRS) for the Prediction of Chemical Composition in Walnut Kernel. International Journal of Food Properties, 2016, 20(7), 1633–1642.
  • Martínez, M.L.; Labuckas, D.O.; Lamarque, A.L.; Maestri, D.M. Walnut (Juglans regia L.): Genetic Resources, Chemistry, By-Products. Journal of The Science of Food And Agriculture 2010, 90, 1959–1967.
  • Jamdar, S.N.; Rajalakshmi, V. Influence of Degree of Hydrolysis on Functional Properties, Antioxidant Activity and ACE Inhibitory Activity of Peanut Protein Hydrolysate. Food Chemistry 2010, 121, 178–184.
  • Wu, W.; Zhao, S.; Chen. C.; et al. Optimization of Production Conditions for Antioxidant Peptides from Walnut Protein Meal using Solid-state fermentation. Food Science and Biotechnology 2014, 23(6):1941–1949.
  • Cushman, D.W.; Cheung, H.S. Spectrophotmetric Assay and Properties of the Angiotensin-converting Enzyme of Rabbit Lung. Biochemical Pharmacology 1971, 20, 1637–1648.
  • Chen, N.; Yang, H.G.; Sun, Y.; Niu, J.; Liu, S.Y. Purification and Identification of Antioxidant Peptides from Walnut (Juglans regia L.) Protein Hydrolysates. Peptides 2012, 38, 344–349.
  • Fennema, O.R.; Whitaker, J.R. Food chemistry. CRC Press Taylor & Francis Group, 1996; 480–481 pp.
  • Chen, J.W.; Liu, S.S.; Ye, R.; Cai, G.G.; Ji, B.; Wu, Y.G. Angiotensin-I Converting Enzyme (ACE) Inhibitory Tripeptides from Rice Protein Hydrolysate: Purification and Characterization. Journal of Functional Foods 2013, 5, 1684–1692.
  • Sze-Tao, K.W.C.; Sathe, S.K. Walnuts (Juglans regia L): Proximate Composition, Protein Solubility, Protein Amino Acid Composition and Protein in Vitro Digestibility. Journal of the Science of Food and Agriculture 2000, 80(9), 1393–1401.
  • Xu, H.J.; Hao, Y.B.; Qi, J.X.; Fan, G.S.; Wang, K.J. Study on Antioxidant Activity and AntihypeIrtensive Activity of Enzymatic Hydrolysis Products of Walnut Protein. Innovational Edition of Farm Products Processing 2009, 10, 38–42.
  • Pihlanto-Leppälä, A.; Koskinen, P.; Piilola, K.; Tupasela, T.; Korhonen, H. Angiotensin I-converting Enzyme Inhibitory Properties of Whey Protein Digest: Concentration and Characterization of Active Peptides. Journal of Dairy Research 2000, 67, 53–64.
  • Megias, C.; Yust, M.D.; Pedrohe, J.; Lquari, H.; Giron-Calle, J.; Alaiz, M. Purification of an ACE Inhibitory Peptide after Hydrolysis of Sunflower (Helianthus annuus L.) Protein Isolates. Journal of Agriculture and Food Chemistry 2004, 52, 1928–1932.
  • Sampath, K.N.S.; Nazeer, R.A.; Jaiganesh, R. Purification and Identification of Antioxidant Peptides from the Skin Protein Hydrolysate of Two Marine Fishes, Horse Mackerel (Magalaspis cordyla) and Croaker (Otolithesruber). Amino Acids 2012, 42, 1641–1649.
  • Zhang, F.; Wang, Z.; Xu, S. Macroporous Resin Purification of Grass Carp Fish (Ctenopharyngodon idella) Scale Peptides with in Vitro Angiotensin-I Converting Enzyme (ACE) Inhibitory Ability. Food Chemistry 2009, 117, 387–392.
  • Sun, J.; He, H.; Xie, B.J. Novel Antioxidant Peptides from Fermented Mushroom Ganoderma Lucidum. Journal of Agricultural And Food Chemistry 2004, 52, 6646–6652.
  • Pan, D.; Cao, J.; Guo, H.; et al. Studies on Purification and the Molecular Mechanism of a Novel ACE Inhibitory Peptide from Whey Protein Hydrolysate. Food Chemistry 2012, 130(1): 121–126.
  • Guan, H.L.; Ming, R.Q.; Ju, Z.W.; Jin, M.Y. Antihypertensive Effect of Rice Protein Hydrolysate with in Vitro Angiotensin I-converting Enzyme Inhibitory Activity in Spontaneously Hypertensive Rats. Asia Pacific Journal of Clinical Nutrition 2007, 16(1), 275–280.
  • Fujita, H.; Yoshikawa, M. LKPNM: A Prodrug-Type ACE-inhibitory Peptide Derivedfrom Fish Protein. Immunopharmacology 1999, 44(1–2), 123–127.
  • Cheung, H.S.; Wang, F.L.; Ondetti, M.A.; Sabo, E.F.; Cushman, D.W. Binding of Peptide Substrates and Inhibitors of Angiotensin-Converting Enzyme. The Journal of Biological Chemistry 1980, 255(2), 401–407.
  • Kawakami, A.; Kayahara, H. Synthesis of Leu-Lys-Tyr Derivatives and their Interaction with Angiotensin Converting Enzyme. Journal of the Japanese Society of Nutrition and Food Science 1993, 46(5), 425–428.
  • Suetsuna, K.; Nakano, T. Identification of an Antihypertensive Peptide from Peptic Digest of Wakame (Undaria pinnatifida). The Journal of Nutritional Biochemistry 2000, 11(9), 450–454.
  • Rohrbach, M.S.; Williams, E.B. Jr.; Rolstad, R.A. Purification and Substrate Specificity of Bovine Angiotensin-Converting Enzyme. Journal of Biological Chemistry 1981, 256(1), 225–230.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.