Tryptic amaranth glutelin digests induce endothelial nitric oxide production through inhibition of ACE: Antihypertensive role of amaranth peptides

被引:63
作者
Barba de la Rosa, A. P. [1 ]
Barba Montoya, A. [1 ]
Martinez-Cuevas, Pedro [2 ]
Hernandez-Ledesma, B. [3 ]
Leon-Galvan, M. F. [1 ]
De Leon-Rodriguez, A. [1 ]
Gonzalez, C. [2 ]
机构
[1] Inst Sci & Technol Res San Luis Potosi, San Luis Potosi 78216, Mexico
[2] Autonomous Univ San Luis Potosi, Fac Chem, San Luis Potosi 78210, Mexico
[3] CSIC, Inst Fermentac Ind, E-28006 Madrid, Spain
来源
NITRIC OXIDE-BIOLOGY AND CHEMISTRY | 2010年 / 23卷 / 02期
关键词
IC50; ACE; Angiotensin converting enzyme inhibition; Coronary endothelial cells; Vascular relaxation; Antihypertensive plant peptides; SPECTROPHOTOMETRIC METHOD; BIOACTIVE PEPTIDES; L-ARGININE; IN-VITRO; PROTEIN; SYNTHASE; HYDROLYSATE; FAILURE; CELLS;
D O I
10.1016/j.niox.2010.04.006
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Amaranth seed proteins have a better balance of essential amino acids than cereals and legumes. In addition, the tryptic hydrolysis of amaranth proteins generates, among other peptides, angiotensin converting enzyme (ACE) inhibitory (ACEi) peptides. ACE converts angiotensin I (Ang I) into Ang II. but is also responsible for the degradation of bradykinin (BK). In contrast to Ang II, BK stimulates vasodilation modulated through endothelial nitric oxide (NO) production. The aim of the present study was to characterize the ACEi activity of amaranth trypsin-digested glutelins (TDGs) and their ability to induce endothelial NO production. An IC50 value of 200 mu g ml(-1) was measured for TDG inhibition of ACE. TDGs stimulated endothelial NO production in coronary endothelial cells (CEC) by 52% compared to control. The effects of TDGs were comparable to those of BK and Captopril, both used as positive controls of NO production. Consistent with these effects, TDGs induced, in a dose-dependent manner, endothelial NO-dependent vasodilation in isolated rat aortic rings. These results suggest that TDGs induce endothelial NO production and consequent vasodilation through their ACEi activity. Amaranth TDGs have a high potential as a nutraceutical food in prevention of cardiovascular diseases. Further molecular, cellular and physiological studies are currently under way and the results may contribute to a better understanding and control of cardiovascular disorders. (C) 2010 Elsevier Inc. All rights reserved.
引用
收藏
页码:106 / 111
页数:6
相关论文
共 51 条
[1]   Regulation of endothelial nitric oxide synthase by tetrahydrobiopterin in vascular disease [J].
Alp, NJ ;
Channon, KM .
ARTERIOSCLEROSIS THROMBOSIS AND VASCULAR BIOLOGY, 2004, 24 (03) :413-420
[2]   An angiotensin-I converting enzyme inhibitor from buckwheat (Fagopyrum esculentum Moench) flour [J].
Aoyagi, Y .
PHYTOCHEMISTRY, 2006, 67 (06) :618-621
[3]   ORAL-ADMINISTRATION OF L-ARGININE AND CAPTOPRIL IN RATS PREVENTS CHRONIC-RENAL-FAILURE BY NITRIC-OXIDE PRODUCTION [J].
ASHAB, I ;
PEER, G ;
BLUM, M ;
WOLLMAN, Y ;
CHERNIHOVSKY, T ;
HASSNER, A ;
SCHWARTZ, D ;
CABILI, S ;
SILVERBERG, D ;
IAINA, A .
KIDNEY INTERNATIONAL, 1995, 47 (06) :1515-1521
[4]   Nutraceuticals:: Facts and fiction [J].
Carlos Espin, Juan ;
Teresa Garcia-Conesa, Maria ;
Tomas-Barberan, Francisco A. .
PHYTOCHEMISTRY, 2007, 68 (22-24) :2986-3008
[5]   Production and characterization of a soy protein-derived angiotensin I-converting enzyme inhibitory hydrolysate [J].
Cha, M ;
Park, JR .
JOURNAL OF MEDICINAL FOOD, 2005, 8 (03) :305-310
[6]  
Chen QH, 2007, ASIA PAC J CLIN NUTR, V16, P281
[7]  
Cines DB, 1998, BLOOD, V91, P3527
[8]   Optimizing angiotensin I-Converting enzyme inhibitory activity of pacific hake (Merluccius productus) fillet hydrolysate using response surface methodology and ultrafiltration [J].
Cinq-Mars, Crystal D. ;
Li-Chan, Eunice C. Y. .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2007, 55 (23) :9380-9388
[9]   Nitric oxide and myocardial function in heart failure: friend or foe? [J].
Cotton, JM ;
Kearney, MT ;
Shah, AM .
HEART, 2002, 88 (06) :564-566
[10]  
DELAROSA APB, 1992, J AGR FOOD CHEM, V40, P931, DOI 10.1021/jf00018a002