Effects of natural peptides from food proteins on angiotensin converting enzyme activity and hypertension
暂无分享,去创建一个
[1] S. Khedr,et al. Effects of tryptophan-containing peptides on angiotensin-converting enzyme activity and vessel tone ex vivo and in vivo , 2018, European Journal of Nutrition.
[2] Zijian Wu,et al. Identification and characterization of an angiotensin-converting enzyme inhibitory peptide derived from bovine casein , 2018, Peptides.
[3] R. Qin,et al. Potential health impact and cost-effectiveness of drug therapy for prehypertension. , 2017, International journal of cardiology.
[4] T. Henle,et al. Identification and quantification of ACE-inhibiting peptides in enzymatic hydrolysates of plant proteins. , 2017, Food chemistry.
[5] M. Muders,et al. Sex-specific differences in age-dependent progression of aortic dysfunction and related cardiac remodeling in spontaneously hypertensive rats. , 2017, American journal of physiology. Regulatory, integrative and comparative physiology.
[6] P. Harnedy,et al. Bioactive peptides from Atlantic salmon (Salmo salar) with angiotensin converting enzyme and dipeptidyl peptidase IV inhibitory, and antioxidant activities. , 2017, Food chemistry.
[7] H. Youn,et al. Prehypertension is associated with early complications of atherosclerosis but not with exercise capacity. , 2017, International journal of cardiology.
[8] Hsi-Ya Huang,et al. In vitro angiotensin I converting enzyme inhibition by a peptide isolated from Chiropsalmus quadrigatus Haeckel (box jellyfish) venom hydrolysate. , 2016, Toxicon : official journal of the International Society on Toxinology.
[9] A. Deussen,et al. Whey peptide Isoleucine-Tryptophan inhibits expression and activity of matrix metalloproteinase-2 in rat aorta , 2016, Peptides.
[10] Zhipeng Yu,et al. Digestion and absorption of an egg white ACE-inhibitory peptide in human intestinal Caco-2 cell monolayers , 2016, International journal of food sciences and nutrition.
[11] T. Henle,et al. Antihypertensive and cardioprotective effects of the dipeptide isoleucine–tryptophan and whey protein hydrolysate , 2015, Acta physiologica.
[12] F. Rossi,et al. Role of the Renin-Angiotensin-Aldosterone System and Its Pharmacological Inhibitors in Cardiovascular Diseases: Complex and Critical Issues , 2015, High Blood Pressure & Cardiovascular Prevention.
[13] S. Khedr,et al. Inhibitory Efficacy and Biological Variability of Tryptophan Containing Dipeptides on Human Plasma Angiotensin Converting Enzyme Activity , 2015 .
[14] P. Manzanares,et al. In vivo antihypertensive mechanism of lactoferrin-derived peptides: Reversion of angiotensin I- and angiotensin II-induced hypertension in Wistar rats , 2015 .
[15] R. Aluko,et al. Kinetics of in vitro renin and angiotensin converting enzyme inhibition by chicken skin protein hydrolysates and their blood pressure lowering effects in spontaneously hypertensive rats , 2015 .
[16] P. Dhulster,et al. Nine novel angiotensin I-converting enzyme (ACE) inhibitory peptides from cuttlefish (Sepia officinalis) muscle protein hydrolysates and antihypertensive effect of the potent active peptide in spontaneously hypertensive rats. , 2015, Food chemistry.
[17] A. Anadón,et al. Bioavailability and kinetics of the antihypertensive casein-derived peptide HLPLP in rats. , 2014, Journal of agricultural and food chemistry.
[18] F. Toldrá,et al. Stability of ACE inhibitory ham peptides against heat treatment and in vitro digestion. , 2014, Food chemistry.
[19] R. Aluko,et al. Preventive and treatment effects of a hemp seed (Cannabis sativa L.) meal protein hydrolysate against high blood pressure in spontaneously hypertensive rats , 2014, European Journal of Nutrition.
[20] Jingbo Liu,et al. Transport of Egg White ACE-Inhibitory Peptide, Gln-Ile-Gly-Leu-Phe, in Human Intestinal Caco-2 Cell Monolayers with Cytoprotective Effect. , 2014, Journal of agricultural and food chemistry.
[21] R. Aluko,et al. Evaluating Molecular Mechanism of Hypotensive Peptides Interactions with Renin and Angiotensin Converting Enzyme , 2014, PloS one.
[22] P. Manzanares,et al. Novel antihypertensive lactoferrin-derived peptides produced by Kluyveromyces marxianus: gastrointestinal stability profile and in vivo angiotensin I-converting enzyme (ACE) inhibition. , 2014, Journal of agricultural and food chemistry.
[23] M. Karaś,et al. The impact of fermentation and in vitro digestion on formation angiotensin converting enzyme (ACE) inhibitory peptides from pea proteins. , 2013, Food chemistry.
[24] Jianping Wu,et al. LC-MS/MS coupled with QSAR modeling in characterising of angiotensin I-converting enzyme inhibitory peptides from soybean proteins. , 2013, Food chemistry.
[25] Jiwang Chen,et al. Angiotensin-I converting enzyme (ACE) inhibitory tripeptides from rice protein hydrolysate: Purification and characterization , 2013 .
[26] P. Manzanares,et al. Antihypertensive effects of lactoferrin hydrolyzates: Inhibition of angiotensin- and endothelin-converting enzymes. , 2013, Food chemistry.
[27] H. Astiazarán-García,et al. Antihypertensive and hypolipidemic effect of milk fermented by specific Lactococcus lactis strains. , 2013, Journal of dairy science.
[28] Weili Xu,et al. Purification and identification of an ACE inhibitory peptide from walnut protein. , 2013, Journal of agricultural and food chemistry.
[29] J. Chamani,et al. Identification of a novel angiotensin-I converting enzyme inhibitory peptide from ostrich egg white and studying its interactions with the enzyme , 2013 .
[30] M. Hediger,et al. Proton-coupled oligopeptide transporter family SLC15: physiological, pharmacological and pathological implications. , 2013, Molecular aspects of medicine.
[31] A. Ferreira,et al. Angiotensin-converting enzyme 2, angiotensin-(1-7) and Mas: new players of the renin-angiotensin system. , 2013, The Journal of endocrinology.
[32] C. Borghi,et al. Do the Lactotripeptides Isoleucine–Proline–Proline and Valine–Proline–Proline Reduce Systolic Blood Pressure in European Subjects? A Meta-Analysis of Randomized Controlled Trials , 2013, American journal of hypertension.
[33] K. Bernstein,et al. A Modern Understanding of the Traditional and Nontraditional Biological Functions of Angiotensin-Converting Enzyme , 2013, Pharmacological Reviews.
[34] Chia-Ling Jao,et al. Angiotensin I-converting enzyme inhibitory peptides: Inhibition mode, bioavailability, and antihypertensive effects , 2012 .
[35] Y. Jeon,et al. Angiotensin I converting enzyme (ACE) inhibitory peptides from salmon byproduct protein hydrolysate by Alcalase hydrolysis , 2012 .
[36] S. Collier,et al. Treatment of prehypertension: lifestyle and/or medication , 2012, Vascular health and risk management.
[37] A. S. Babji,et al. Isolation, purification and characterisation of angiotensin I-converting enzyme-inhibitory peptides derived from catfish (Clarias batrachus) muscle protein thermolysin hydrolysates , 2012 .
[38] H. García,et al. Novel angiotensin I-converting enzyme inhibitory peptides produced in fermented milk by specific wild Lactococcus lactis strains. , 2012, Journal of dairy science.
[39] C. Reimer,et al. Fermented milk for hypertension. , 2012, The Cochrane database of systematic reviews.
[40] Yujie Su,et al. Purification and characterization of angiotensin I-converting enzyme inhibitory peptides from enzymatic hydrolysate of hen egg white lysozyme , 2012 .
[41] Salvador Vallés,et al. Antihypertensive effect of a bovine lactoferrin pepsin hydrolysate: Identification of novel active peptides , 2012 .
[42] W. Xia,et al. Purification and characterization of a novel angiotensin-I converting enzyme (ACE) inhibitory peptide derived from enzymatic hydrolysate of grass carp protein , 2012, Peptides.
[43] E. Sturrock,et al. Structure based drug design of angiotensin-I converting enzyme inhibitors. , 2012, Current medicinal chemistry.
[44] E. Strocchi,et al. Lactotripeptides effect on office and 24-h ambulatory blood pressure, blood pressure stress response, pulse wave velocity and cardiac output in patients with high-normal blood pressure or first-degree hypertension: a randomized double-blind clinical trial , 2011, Hypertension Research.
[45] María del Mar Contreras,et al. Antihypertensive peptides: production, bioavailability and incorporation into foods. , 2011, Advances in colloid and interface science.
[46] R. Carey,et al. Angiotensin II Type-2 receptors modulate inflammation through signal transducer and activator of transcription proteins 3 phosphorylation and TNFα production. , 2011, Journal of interferon & cytokine research : the official journal of the International Society for Interferon and Cytokine Research.
[47] F. Malcata,et al. Novel whey-derived peptides with inhibitory effect against angiotensin-converting enzyme: In vitro effect and stability to gastrointestinal enzymes , 2011, Peptides.
[48] M. Gómez-Guillén,et al. Squid gelatin hydrolysates with antihypertensive, anticancer and antioxidant activity , 2011 .
[49] S. Billet,et al. Different in vivo functions of the two catalytic domains of angiotensin-converting enzyme (ACE). , 2011, Current opinion in pharmacology.
[50] R. Zatz,et al. Linking oxidative stress, the renin-angiotensin system, and hypertension. , 2011, Hypertension.
[51] R. Touyz,et al. Cell Signaling of Angiotensin II on Vascular Tone: Novel Mechanisms , 2011, Current hypertension reports.
[52] A. Brodkorb,et al. Production, analysis and in vivo evaluation of novel angiotensin-I-converting enzyme inhibitory peptides from bovine casein. , 2010 .
[53] E. Boelsma,et al. IPP-rich milk protein hydrolysate lowers blood pressure in subjects with stage 1 hypertension, a randomized controlled trial , 2010, Nutrition journal.
[54] Shimpei Watanabe,et al. Trp-His, a vasorelaxant di-peptide, can inhibit extracellular Ca2+ entry to rat vascular smooth muscle cells through blockade of dihydropyridine-like l-type Ca2+ channels , 2010, Peptides.
[55] Soojin Park,et al. Effects of fermented milk peptides supplement on blood pressure and vascular function in spontaneously hypertensive rats , 2010 .
[56] Zhipeng Yu,et al. Isolation and identification of angiotensin-converting enzyme inhibitory peptides from egg white protein hydrolysates. , 2010 .
[57] R. Aluko,et al. Identification and inhibitory properties of multifunctional peptides from pea protein hydrolysate. , 2010, Journal of agricultural and food chemistry.
[58] I. Recio,et al. Changes in arterial blood pressure after single oral administration of milk-casein-derived peptides in spontaneously hypertensive rats. , 2010, Molecular nutrition & food research.
[59] Yongjun Hu,et al. Significance and Regional Dependency of Peptide Transporter (PEPT) 1 in the Intestinal Permeability of Glycylsarcosine: In Situ Single-Pass Perfusion Studies in Wild-Type and Pept1 Knockout Mice , 2010, Drug Metabolism and Disposition.
[60] A. De León-Rodríguez,et al. Tryptic amaranth glutelin digests induce endothelial nitric oxide production through inhibition of ACE: antihypertensive role of amaranth peptides. , 2010, Nitric oxide : biology and chemistry.
[61] Jianping Wu,et al. A new approach for identification of novel antihypertensive peptides from egg proteins by QSAR and bioinformatics , 2010 .
[62] M. Tanokura,et al. Isolation of an antihypertensive peptide from alcalase digest of Spirulina platensis. , 2010, Journal of agricultural and food chemistry.
[63] A. Linneberg,et al. Human in vivo study of the renin–angiotensin–aldosterone system and the sympathetic activity after 8 weeks daily intake of fermented milk , 2010, Clinical physiology and functional imaging.
[64] Haile Ma,et al. The use of ultrasound for enzymatic preparation of ACE-inhibitory peptides from wheat germ protein , 2010 .
[65] M. Nasri,et al. Analysis of novel angiotensin I-converting enzyme inhibitory peptides from enzymatic hydrolysates of cuttlefish (Sepia officinalis) muscle proteins. , 2010, Journal of agricultural and food chemistry.
[66] M. Rönnback,et al. Long-term intervention with Lactobacillus helveticus fermented milk reduces augmentation index in hypertensive subjects , 2010, European Journal of Clinical Nutrition.
[67] K. Takazawa,et al. Beneficial potential of casein hydrolysate containing Val-Pro-Pro and Ile-Pro-Pro on central blood pressure and hemodynamic index: a preliminary study. , 2009, Journal of medicinal food.
[68] R. Korpela,et al. Casein-derived bioactive tripeptides Ile-Pro-Pro and Val-Pro-Pro attenuate the development of hypertension and improve endothelial function in salt-loaded Goto-Kakizaki rats , 2009 .
[69] G. Duchateau,et al. Modeling of the relationship between dipeptide structure and dipeptide stability, permeability, and ACE inhibitory activity. , 2009, Journal of food science.
[70] Ross G. Douglas,et al. Investigating the domain specificity of phosphinic inhibitors RXPA380 and RXP407 in angiotensin-converting enzyme. , 2009, Biochemistry.
[71] G. Wuerzner,et al. The lactotripeptides isoleucine-proline-proline and valine-proline-proline do not inhibit the N-terminal or C-terminal angiotensin converting enzyme active sites in humans , 2009, Journal of hypertension.
[72] T. J. Fang,et al. Isolation and characterisation of a novel angiotensin I-converting enzyme (ACE) inhibitory peptide from the algae protein waste , 2009 .
[73] R. Korpela,et al. Milk protein-derived bioactive tripeptides Ile-Pro-Pro and Val-Pro-Pro protect endothelial function in vitro in hypertensive rats , 2009 .
[74] Chibuike C. Udenigwe,et al. Kinetics of the inhibition of renin and angiotensin I-converting enzyme by flaxseed protein hydrolysate fractions , 2009 .
[75] Haiyan Sun,et al. Transepithelial Transport Characteristics of the Antihypertensive Peptide, Lys-Val-Leu-Pro-Val-Pro, in Human Intestinal Caco-2 Cell Monolayers , 2009, Bioscience, biotechnology, and biochemistry.
[76] V. Ganapathy,et al. Protein Digestion and Assimilation , 2009 .
[77] G. Duchateau,et al. Pharmacokinetics of proline-rich tripeptides in the pig , 2008, Peptides.
[78] Pei-yu Wang,et al. Effect of milk tripeptides on blood pressure: a meta-analysis of randomized controlled trials. , 2008, Nutrition.
[79] T. Hayakawa,et al. Angiotensin I-converting enzyme-inhibitory peptides obtained from chicken collagen hydrolysate. , 2008, Journal of agricultural and food chemistry.
[80] K. Tatsuta,et al. Identification of angiotensin I-converting enzyme inhibitory peptides derived from salmon muscle and their antihypertensive effect , 2008, Fisheries Science.
[81] G. Duchateau,et al. The angiotensin converting enzyme inhibitory tripeptides Ile-Pro-Pro and Val-Pro-Pro show increasing permeabilities with increasing physiological relevance of absorption models , 2008, Peptides.
[82] I. Rubio-Aliaga,et al. Peptide transporters and their roles in physiological processes and drug disposition , 2008, Xenobiotica; the fate of foreign compounds in biological systems.
[83] T. Henle,et al. Identification and quantification of inhibitors for Angiotensin-converting enzyme in hypoallergenic infant milk formulas. , 2008, Journal of agricultural and food chemistry.
[84] Xiu-Lan Chen,et al. Production of novel angiotensin I-converting enzyme inhibitory peptides by fermentation of marine shrimp Acetes chinensis with Lactobacillus fermentum SM 605 , 2008, Applied Microbiology and Biotechnology.
[85] Fang Hong,et al. The antihypertensive effect of peptides: A novel alternative to drugs? , 2008, Peptides.
[86] B Trevor Sewell,et al. Probing the basis of domain-dependent inhibition using novel ketone inhibitors of Angiotensin-converting enzyme. , 2008, Biochemistry.
[87] M. Brandsch,et al. Pharmaceutical and pharmacological importance of peptide transporters , 2008, The Journal of pharmacy and pharmacology.
[88] Kiyoshi Matsumoto,et al. Endothelium-independent vasodilation effect of di- and tri-peptides in thoracic aorta of Sprague-Dawley rats. , 2008, Life sciences.
[89] Xiu-Lan Chen,et al. Purification and identification of novel angiotensin-I-converting enzyme inhibitory peptides from shark meat hydrolysate , 2008 .
[90] Hui Zhao,et al. Met-Arg-Trp derived from Rubisco lowers blood pressure via prostaglandin D2-dependent vasorelaxation in spontaneously hypertensive rats , 2008, Peptides.
[91] Kiyoshi Matsumoto,et al. Identification of ACE-inhibitory peptides in salt-free soy sauce that are transportable across caco-2 cell monolayers , 2008, Peptides.
[92] J. Geleijnse,et al. Lactotripeptides Show No Effect on Human Blood Pressure: Results From a Double-Blind Randomized Controlled Trial , 2008, Hypertension.
[93] M. Capecchi,et al. Angiotensin-Converting Enzyme C-Terminal Catalytic Domain Is the Main Site of Angiotensin I Cleavage In Vivo , 2008, Hypertension.
[94] A. Pripp. Effect of peptides derived from food proteins on blood pressure: a meta-analysis of randomized controlled trials , 2008, Food & nutrition research.
[95] Won‐Kyo Jung,et al. Antihypertensive effect of an angiotensin I-converting enzyme inhibitory peptide from bullfrog (Rana catesbeiana Shaw) muscle protein in spontaneously hypertensive rats , 2007 .
[96] Se-kwon Kim,et al. Antihypertensive effect of angiotensin i converting enzyme-inhibitory peptide from hydrolysates of Bigeye tuna dark muscle, Thunnus obesus. , 2007, Journal of agricultural and food chemistry.
[97] Ping Liu,et al. Peptide with angiotensin I-converting enzyme inhibitory activity from hydrolyzed corn gluten meal. , 2007, Journal of agricultural and food chemistry.
[98] Yasunori Nakamura,et al. Casein Hydrolysate Containing the Antihypertensive Tripeptides Val-Pro-Pro and Ile-Pro-Pro Improves Vascular Endothelial Function Independent of Blood Pressure–Lowering Effects: Contribution of the Inhibitory Action of Angiotensin-Converting Enzyme , 2007, Hypertension Research.
[99] Guan-Wen Chen,et al. Purification of angiotensin I-converting enzyme inhibitory peptides and antihypertensive effect of milk produced by protease-facilitated lactic fermentation , 2007 .
[100] J. You,et al. Antihypertensive effect of rice protein hydrolysate with in vitro angiotensin I-converting enzyme inhibitory activity in spontaneously hypertensive rats. , 2007, Asia Pacific journal of clinical nutrition.
[101] J. Kloek,et al. Angiotensin converting enzyme inhibitory peptides from a lactotripeptide-enriched milk beverage are absorbed intact into the circulation. , 2007, The Journal of nutrition.
[102] R. Korpela,et al. Milk peptides and blood pressure. , 2007, The Journal of nutrition.
[103] Jianping Wu,et al. Structural Requirements of Angiotensin I‐Converting Enzyme Inhibitory Peptides: Quantitative Structure‐Activity Relationship Modeling of Peptides Containing 4‐10 Amino Acid Residues , 2006 .
[104] Hannu Korhonen,et al. Bioactive peptides: Production and functionality , 2006 .
[105] L. Gowda,et al. Angiotensin I-converting enzyme inhibitory peptide derived from glycinin, the 11S globulin of soybean (Glycine max). , 2006, Journal of agricultural and food chemistry.
[106] M. Miguel,et al. Antihypertensive peptides derived from egg proteins. , 2006, The Journal of nutrition.
[107] S. Moriguchi,et al. Antihypertensive Effect of Angiotensin I-Converting Enzyme Inhibitory Peptides from a Sesame Protein Hydrolysate in Spontaneously Hypertensive Rats , 2006, Bioscience, biotechnology, and biochemistry.
[108] R. López-Fandiño,et al. Long-term intake of egg white hydrolysate attenuates the development of hypertension in spontaneously hypertensive rats. , 2006, Life sciences.
[109] I. Bae,et al. Purification and identification of angiotensin I-converting enzyme inhibitory peptide from buckwheat (Fagopyrum esculentum Moench) , 2006 .
[110] R. López-Fandiño,et al. Effect of simulated gastrointestinal digestion on the antihypertensive properties of ACE-inhibitory peptides derived from ovalbumin. , 2006, Journal of agricultural and food chemistry.
[111] S. Aamdal,et al. High sensitivity assays for docetaxel and paclitaxel in plasma using solid-phase extraction and high-performance liquid chromatography with UV detection , 2006, BMC clinical pharmacology.
[112] Jianping Wu,et al. Structural requirements of Angiotensin I-converting enzyme inhibitory peptides: quantitative structure-activity relationship study of di- and tripeptides. , 2006, Journal of agricultural and food chemistry.
[113] R. Korpela,et al. Lactobacillus helveticus fermented milk lowers blood pressure in hypertensive subjects in 24-h ambulatory blood pressure measurement. , 2005, American journal of hypertension.
[114] R. López-Fandiño,et al. Short-term effect of egg-white hydrolysate products on the arterial blood pressure of hypertensive rats , 2005, British Journal of Nutrition.
[115] Fereidoon Shahidi,et al. Nutraceutical Proteins and Peptides in Health and Disease , 2005 .
[116] Yasunori Nakamura,et al. Effect of Powdered Fermented Milk with Lactobacillus helveticus on Subjects with High-Normal Blood Pressure or Mild Hypertension , 2005, Journal of the American College of Nutrition.
[117] E. Schiffrin,et al. Negative regulation of RhoA/Rho kinase by angiotensin II type 2 receptor in vascular smooth muscle cells: role in angiotensin II-induced vasodilation in stroke-prone spontaneously hypertensive rats , 2005, Journal of hypertension.
[118] M. Yasuda,et al. Production of angiotensin I-converting enzyme inhibitory peptides from soybean protein with Monascus purpureus acid proteinase , 2005 .
[119] I. Recio,et al. Angiotensin converting enzyme-inhibitory activity of peptides isolated from Manchego cheese. Stability under simulated gastrointestinal digestion , 2004 .
[120] J. Wal,et al. In vitro generation and stability of the lactokinin beta-lactoglobulin fragment (142-148). , 2004, Journal of dairy science.
[121] Kiyoshi Matsumoto,et al. Tissue distribution of antihypertensive dipeptide, Val‐Tyr, after its single oral administration to spontaneously hypertensive rats , 2004, Journal of peptide science : an official publication of the European Peptide Society.
[122] W. Verstraete,et al. Bioavailability of angiotensin I converting enzyme inhibitory peptides , 2004, British Journal of Nutrition.
[123] N. Dun,et al. Interaction of ovokinin(2–7) with vascular bradykinin 2 receptors , 2004, Regulatory Peptides.
[124] H. Ueshima,et al. Randomized controlled trial of sour milk on blood pressure in borderline hypertensive men. , 2004, American journal of hypertension.
[125] Yong-hui Shi,et al. Angiotensin I- converting enzyme inhibitory peptides derived from food proteins and their physiological and pharmacological effects , 2004 .
[126] J. Camp,et al. Influence of the lactokinin Ala-Leu-Pro-Met-His-Ile-Arg (ALPMHIR) on the release of endothelin-1 by endothelial cells , 2004, Regulatory Peptides.
[127] I. Recio,et al. Angiotensin converting enzyme inhibitory activity in commercial fermented products. Formation of peptides under simulated gastrointestinal digestion. , 2004, Journal of agricultural and food chemistry.
[128] Hannelore Daniel,et al. Molecular and integrative physiology of intestinal peptide transport. , 2004, Annual review of physiology.
[129] Karl Swedberg,et al. Valsartan, captopril, or both in myocardial infarction complicated by heart failure, left ventricular dysfunction, or both. , 2003, The New England journal of medicine.
[130] James F. Riordan,et al. Ace revisited: A new target for structure-based drug design , 2003, Nature Reviews Drug Discovery.
[131] T. Kodama,et al. Isolation and characterization of angiotensin I-converting enzyme inhibitory peptides from wheat gliadin hydrolysate. , 2003, Die Nahrung.
[132] K. Fox,et al. Efficacy of perindopril in reduction of cardiovascular events among patients with stable coronary artery disease: randomised, double-blind, placebo-controlled, multicentre trial (the EUROPA study) , 2003, The Lancet.
[133] W. Verstraete,et al. Release of angiotensin I converting enzyme (ACE) inhibitory activity during in vitro gastrointestinal digestion: from batch experiment to semicontinuous model. , 2003, Journal of agricultural and food chemistry.
[134] R. Graham,et al. Do Studies With ACE N‐ and C‐Domain‐Selective Inhibitors Provide Evidence for a Non‐ACE, Non‐Chymase Angiotensin II‐Forming Pathway? , 2003, Circulation research.
[135] Dimitris Georgiadis,et al. Roles of the Two Active Sites of Somatic Angiotensin‐Converting Enzyme in the Cleavage of Angiotensin I and Bradykinin Insights From Selective Inhibitors , 2003, Circulation research.
[136] Masaaki Yoshikawa,et al. Isolation and antihypertensive effect of angiotensin I-converting enzyme (ACE) inhibitory peptides from spinach Rubisco. , 2003, Journal of agricultural and food chemistry.
[137] N J Wald,et al. Value of low dose combination treatment with blood pressure lowering drugs: analysis of 354 randomised trials , 2003, BMJ : British Medical Journal.
[138] D. Coates. The angiotensin converting enzyme (ACE). , 2003, The international journal of biochemistry & cell biology.
[139] R. Carey,et al. Newly recognized components of the renin-angiotensin system: potential roles in cardiovascular and renal regulation. , 2003, Endocrine reviews.
[140] I. Bechmann,et al. Modification of microglia function protects from lesion‐induced neuronal alterations and promotes sprouting in the hippocampus , 2003, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[141] Daniel W. Jones,et al. The Seventh Report of the Joint National Committee on Prevention, Detection, Evaluation, and Treatment of High Blood Pressure: the JNC 7 report. , 2003, JAMA.
[142] D. Noh,et al. Preparation of angiotensin I converting enzyme inhibitor from corn gluten , 2003 .
[143] H. Ochiai,et al. Blood-pressure-lowering effect of a novel fermented milk containing γ-aminobutyric acid (GABA) in mild hypertensives , 2003, European Journal of Clinical Nutrition.
[144] R. Korpela,et al. A fermented milk high in bioactive peptides has a blood pressure-lowering effect in hypertensive subjects. , 2003, The American journal of clinical nutrition.
[145] L. Miclo,et al. Angiotensin‐I‐converting enzyme inhibitory peptides from tryptic hydrolysate of bovine αS2‐casein , 2002 .
[146] T. Nakano,et al. Angiotensin I-converting enzyme inhibitory peptides derived from wakame (Undaria pinnatifida) and their antihypertensive effect in spontaneously hypertensive rats. , 2002, Journal of agricultural and food chemistry.
[147] E. Seki,et al. Absorption of Val-Tyr with in vitro angiotensin I-converting enzyme inhibitory activity into the circulating blood system of mild hypertensive subjects. , 2002, Biological & pharmaceutical bulletin.
[148] Kiyoshi Matsumoto,et al. Latent production of angiotensin I‐converting enzyme inhibitors from buckwheat protein , 2002, Journal of peptide science : an official publication of the European Peptide Society.
[149] C. Soto,et al. Converting a peptide into a drug: strategies to improve stability and bioavailability. , 2002, Current medicinal chemistry.
[150] E. Seki,et al. Val‐Tyr As A Natural Antihypertensive Dipeptide Can Be Absorbed Into The Human Circulatory Blood System , 2002, Clinical and experimental pharmacology & physiology.
[151] R. Korpela,et al. Effect of long-term intake of milk products on blood pressure in hypertensive rats , 2002, Journal of Dairy Research.
[152] P. Deddish,et al. Neprilysin Inhibitors Potentiate Effects of Bradykinin on B2 Receptor , 2002, Hypertension.
[153] R. Korpela,et al. Long-term intake of milk peptides attenuates development of hypertension in spontaneously hypertensive rats. , 2001, Journal of physiology and pharmacology : an official journal of the Polish Physiological Society.
[154] D. Groneberg,et al. Intestinal peptide transport: ex vivo uptake studies and localization of peptide carrier PEPT1. , 2001, American journal of physiology. Gastrointestinal and liver physiology.
[155] H. Fujita,et al. Effects of an ace-inhibitory agent, katsuobushi oligopeptide, in the spontaneously hypertensive rat and in borderline and mildly hypertensive subjects , 2001 .
[156] Jiun-Rong Chen,et al. Identification of Antihypertensive Peptides from Peptic Digest of Two Microalgae, Chlorella vulgaris and Spirulina platensis , 2001, Marine Biotechnology.
[157] F. Shahidi,et al. Angiotensin I converting enzyme inhibitory peptides purified from bovine skin gelatin hydrolysate. , 2001, Journal of agricultural and food chemistry.
[158] D. Chung,et al. His-His-Leu, an angiotensin I converting enzyme inhibitory peptide derived from Korean soybean paste, exerts antihypertensive activity in vivo. , 2001, Journal of agricultural and food chemistry.
[159] P Corvol,et al. RXP 407, a selective inhibitor of the N-domain of angiotensin I-converting enzyme, blocks in vivo the degradation of hemoregulatory peptide acetyl-Ser-Asp-Lys-Pro with no effect on angiotensin I hydrolysis. , 2001, The Journal of pharmacology and experimental therapeutics.
[160] S. Ishikawa,et al. Peptide inhibitors for angiotensin I-converting enzyme from enzymatic hydrolysates of porcine skeletal muscle proteins. , 2001, Meat science.
[161] J. Pogue,et al. Effects of an angiotensin-converting-enzyme inhibitor, ramipril, on cardiovascular events in high-risk patients. , 2000, The New England journal of medicine.
[162] R. Fitzgerald,et al. Opioid peptides encrypted in intact milk protein sequences , 2000, British Journal of Nutrition.
[163] R. Fitzgerald,et al. Milk protein-derived peptide inhibitors of angiotensin-I-converting enzyme , 2000, British Journal of Nutrition.
[164] F. Luft,et al. Endothelial Dysfunction and Salt-Sensitive Hypertension in Spontaneously Diabetic Goto-Kakizaki Rats , 2000, Hypertension.
[165] Hyun-Kyung Shin,et al. Purification and Identification of Angiotensin-I Converting Enzyme Inhibitory Peptide from Small Red Bean Protein Hydrolyzate , 2000 .
[166] P. Ferranti,et al. Production of Angiotensin-I-Converting-Enzyme-Inhibitory Peptides in Fermented Milks Started by Lactobacillus delbrueckiisubsp. bulgaricus SS1 and Lactococcus lactissubsp. cremoris FT4 , 2000, Applied and Environmental Microbiology.
[167] K. Suetsuna,et al. Identification of an antihypertensive peptide from peptic digest of wakame (Undaria pinnatifida). , 2000, The Journal of nutritional biochemistry.
[168] A. Pihlanto-Leppälä. Bioactive peptides derived from bovine whey proteins: opioid and ace-inhibitory peptides. , 2000 .
[169] E Seki,et al. Antihypertensive effect of Valyl-Tyrosine, a short chain peptide derived from sardine muscle hydrolyzate, on mild hypertensive subjects , 2000, Journal of Human Hypertension.
[170] E. G. Erdös,et al. Protein kinase C and phosphatase inhibitors block the ability of angiotensin I-converting enzyme inhibitors to resensitize the receptor to bradykinin without altering the primary effects of bradykinin. , 2000, The Journal of pharmacology and experimental therapeutics.
[171] H. Fujita,et al. Classification and Antihypertensive Activity of Angiotensin I-Converting Enzyme Inhibitory Peptides Derived from Food Proteins , 2000 .
[172] Kiyoshi Matsumoto,et al. Depressor effect of wheat germ hydrolysate and its novel angiotensin I-converting enzyme inhibitory peptide, Ile-Val-Tyr, and the metabolism in rat and human plasma. , 2000, Biological & pharmaceutical bulletin.
[173] R. Korpela,et al. α-Lactorphin lowers blood pressure measured by radiotelemetry in normotensive and spontaneously hypertensive rats. , 2000 .
[174] P. Koskinen,et al. Angiotensin I-converting enzyme inhibitory properties of whey protein digests: concentration and characterization of active peptides. , 2000, The Journal of dairy research.
[175] S. Yusuf,et al. Effects of an angiotensin-converting-enzyme inhibitor, ramipril, on cardiovascular events in high-risk patients. The Heart Outcomes Prevention Evaluation Study Investigators. , 2000 .
[176] H. Suh,et al. A peptide from corn gluten hydrolysate that is inhibitory toward angiotensin I converting enzyme , 1999, Biotechnology Letters.
[177] H. Fujita,et al. LKPNM: a prodrug-type ACE-inhibitory peptide derived from fish protein. , 1999, Immunopharmacology.
[178] B. Chung,et al. A novel angiotensin-I-converting enzyme inhibitory peptide from human αs1-casein , 1999, Biotechnology Letters.
[179] Y. Osajima,et al. Preparation and characterization of novel bioactive peptides responsible for angiotensin I‐converting enzyme inhibition from wheat germ , 1999, Journal of peptide science : an official publication of the European Peptide Society.
[180] M. Shimizu. Modulation of intestinal functions by food substances. , 1999, Die Nahrung.
[181] D. Kwon,et al. Purification and Identification of Angiotensin-I Converting Enzyme Inhibitory Peptide from Kidney Bean Protein Hydrolyzate , 1999 .
[182] T. Benzing,et al. Angiotensin-converting enzyme inhibitor ramiprilat interferes with the sequestration of the B2 kinin receptor within the plasma membrane of native endothelial cells. , 1999, Circulation.
[183] P. Deddish,et al. Enhancement of bradykinin and resensitization of its B2 receptor. , 1999, Hypertension.
[184] M. Horiuchi,et al. Recent progress in angiotensin II type 2 receptor research in the cardiovascular system. , 1999, Hypertension.
[185] T. Saito,et al. Structural analysis of new antihypertensive peptides derived from cheese whey protein by proteinase K digestion. , 1998, Journal of dairy science.
[186] Y. Pinto,et al. Lessons from rat models of hypertension: from Goldblatt to genetic engineering. , 1998, Cardiovascular research.
[187] K. Suetsuna. Isolation and characterization of angiotensin I-converting enzyme inhibitor dipeptides derived from Allium sativum L (garlic) , 1998 .
[188] P. Deddish,et al. N-domain-specific substrate and C-domain inhibitors of angiotensin-converting enzyme: angiotensin-(1-7) and keto-ACE. , 1998, Hypertension.
[189] A. Pihlanto-Leppälä,et al. Angiotensin I converting enzyme inhibitory peptides derived from bovine milk proteins , 1998 .
[190] R. Minshall,et al. Potentiation of the actions of bradykinin by angiotensin I-converting enzyme inhibitors. The role of expressed human bradykinin B2 receptors and angiotensin I-converting enzyme in CHO cells. , 1997, Circulation research.
[191] P. Corvol,et al. Substrate dependence of angiotensin I-converting enzyme inhibition: captopril displays a partial selectivity for inhibition of N-acetyl-seryl-aspartyl-lysyl-proline hydrolysis compared with that of angiotensin I. , 1997, Molecular pharmacology.
[192] R. Fitzgerald,et al. Identification of a novel angiotensin‐I‐converting enzyme inhibitory peptide corresponding to a tryptic fragment of bovine β‐lactoglobulin , 1997, FEBS letters.
[193] N. Hooper,et al. Membrane protein secretases. , 1997, The Biochemical journal.
[194] T. Takano,et al. Antihypertensive peptides are present in aorta after oral administration of sour milk containing these peptides to spontaneously hypertensive rats. , 1996, The Journal of nutrition.
[195] Y. Hata,et al. A placebo-controlled study of the effect of sour milk on blood pressure in hypertensive subjects. , 1996, The American journal of clinical nutrition.
[196] K. Muramoto,et al. Angiotensin I-converting enzyme inhibitors in autolysates of squid liver and mantle muscle. , 1996, Bioscience, biotechnology, and biochemistry.
[197] N. Yamamoto,et al. Identification of an antihypertensive peptide from casein hydrolysate produced by a proteinase from Lactobacillus helveticus CP790. , 1996, Journal of dairy science.
[198] K. Suzuki,et al. Isolation from alpha-zein of thermolysin peptides with angiotensin I-converting enzyme inhibitory activity. , 1996, Bioscience, biotechnology, and biochemistry.
[199] R. Fitzgerald,et al. Synthetic peptides corresponding to alpha-lactalbumin and beta-lactoglobulin sequences with angiotensin-I-converting enzyme inhibitory activity. , 1996, Biological chemistry Hoppe-Seyler.
[200] T. Takano,et al. Decrease of tissue angiotensin I-converting enzyme activity upon feeding sour milk in spontaneously hypertensive rats. , 1996, Bioscience, biotechnology, and biochemistry.
[201] H. Fujita,et al. Isolation and characterization of ovokinin, a bradykinin B1 agonist peptide derived from ovalbumin , 1995, Peptides.
[202] Y. Osajima,et al. Antihypertensive effects of angiotensin fragments in SHR. , 1995, Bioscience, biotechnology, and biochemistry.
[203] N. Yamamoto,et al. Antihypertensive effect of sour milk and peptides isolated from it that are inhibitors to angiotensin I-converting enzyme. , 1995, Journal of dairy science.
[204] T. Tadokoro,et al. Effects of angiotensin I-converting enzyme inhibitory substances derived from Indonesian dried-salted fish on blood pressure of rats. , 1995, Bioscience, biotechnology, and biochemistry.
[205] P. Corvol,et al. The Hemoregulatory Peptide N-Acetyl-Ser-Asp-Lys-Pro Is a Natural and Specific Substrate of the N-terminal Active Site of Human Angiotensin-converting Enzyme (*) , 1995, The Journal of Biological Chemistry.
[206] E. Seki,et al. Angiotensin I-converting enzyme inhibitory peptides in an alkaline protease hydrolyzate derived from sardine muscle. , 1994, Bioscience, biotechnology, and biochemistry.
[207] N. Hooper,et al. Families of zinc metalloproteases , 1994, FEBS letters.
[208] S. Imayasu,et al. Structure and activity of angiotensin I converting enzyme inhibitory peptides from sake and sake lees. , 1994, Bioscience, biotechnology, and biochemistry.
[209] S. Imayasu,et al. Antihypertensive effects of peptide in sake and its by-products on spontaneously hypertensive rats. , 1994, Bioscience, biotechnology, and biochemistry.
[210] N. Yamamoto,et al. Antihypertensive effect of the peptides derived from casein by an extracellular proteinase from Lactobacillus helveticus CP790. , 1994, Journal of dairy science.
[211] E. Seki,et al. Inhibition of angiotensin I-converting enzyme by Bacillus licheniformis alkaline protease hydrolyzates derived from sardine muscle. , 1993, Bioscience, biotechnology, and biochemistry.
[212] N. Hooper,et al. Characterization of a secretase activity which releases angiotensin-converting enzyme from the membrane. , 1993, The Biochemical journal.
[213] Y. Takeda,et al. Angiotensin I-converting enzyme inhibitory peptides derived from bonito bowels autolysate. , 1993, Bioscience, biotechnology, and biochemistry.
[214] Lei Wei,et al. Differences in the properties and enzymatic specificities of the two active sites of angiotensin I-converting enzyme (kininase II). Studies with bradykinin and other natural peptides. , 1993, The Journal of biological chemistry.
[215] H. Chiba,et al. Peptide inhibitors for angiotensin I-converting enzyme from thermolysin digest of dried bonito. , 1992, Bioscience, biotechnology, and biochemistry.
[216] K. Murakami. [Molecular biology in renin angiotensin system]. , 1992, Nihon rinsho. Japanese journal of clinical medicine.
[217] L. Wei,et al. Expression and characterization of recombinant human angiotensin I-converting enzyme. Evidence for a C-terminal transmembrane anchor and for a proteolytic processing of the secreted recombinant and plasma enzymes. , 1991, The Journal of biological chemistry.
[218] J F Riordan,et al. Molecular cloning of human testicular angiotensin-converting enzyme: the testis isozyme is identical to the C-terminal half of endothelial angiotensin-converting enzyme. , 1989, Proceedings of the National Academy of Sciences of the United States of America.
[219] T. Kaneko,et al. Angiotensin I-Converting Enzyme Inhibitory Activities of Synthetic Peptides Related to the Tandem Repeated Sequence of a Maize Endosperm Protein , 1989 .
[220] P Corvol,et al. Two putative active centers in human angiotensin I-converting enzyme revealed by molecular cloning. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[221] N. Tomizuka,et al. Studies on the Active Site and Antihypertensive Activity of Angiotensin I-Converting Enzyme Inhibitors Derived from Casein , 1987 .
[222] Hideo Suzuki,et al. A Peptide Inhibitor of Angiotensin I Converting Enzyme in the Tryptic Hydrolysate of Casein , 1982 .
[223] B. Tennant,et al. Gastrointestinal Function , 1980, Clinical Biochemistry of Domestic Animals.
[224] H. Cheung,et al. Binding of peptide substrates and inhibitors of angiotensin-converting enzyme. Importance of the COOH-terminal dipeptide sequence. , 1980, The Journal of biological chemistry.
[225] K. Nagasawa,et al. Peptide inhibitors of angiotensin I-converting enzyme in digests of gelatin by bacterial collagenase. , 1979, Biochimica et biophysica acta.
[226] B Rubin,et al. Design of specific inhibitors of angiotensin-converting enzyme: new class of orally active antihypertensive agents. , 1977, Science.
[227] B. Rubin,et al. Effects of the Nonapeptide SQ 20881 on Blood Pressure of Rats with Experimental Renovascular Hypertension , 1973, Proceedings of the Society for Experimental Biology and Medicine. Society for Experimental Biology and Medicine.
[228] M A Ondetti,et al. Angiotensin-converting enzyme inhibitors from the venom of Bothrops jararaca. Isolation, elucidation of structure, and synthesis. , 1971, Biochemistry.
[229] D W Cushman,et al. Spectrophotometric assay and properties of the angiotensin-converting enzyme of rabbit lung. , 1971, Biochemical pharmacology.
[230] H. Kato,et al. Bradykinin-potentiating peptides from the venom of Agkistrodon halys blomhoffi. Isolation of five bradykinin potentiators and the amino acid sequences of two of them, potentiators B and C. , 1971, Biochemistry.
[231] S. Ferreira,et al. Isolation of bradykinin-potentiating peptides from Bothrops jararaca venom. , 1970, Biochemistry.
[232] THE WORLD HEALTH ORGANIZATION , 1954 .
[233] T. Henle,et al. Tryptophan-containing dipeptides are bioavailable and inhibit plasma human angiotensin-converting enzyme in vivo , 2016 .
[234] Jana Rückriemen,et al. Tryptophan-containing dipeptides are C-domain selective inhibitors of angiotensin converting enzyme. , 2015, Food chemistry.
[235] Se-kwon Kim,et al. A novel angiotensin I converting enzyme inhibitory peptide from tuna frame protein hydrolysate and its antihypertensive effect in spontaneously hypertensive rats , 2010 .
[236] Chien-Ning Huang,et al. Bovine casein hydrolysate (c12 Peptide) reduces blood pressure in prehypertensive subjects. , 2007, American journal of hypertension.
[237] B. Muguerza,et al. Identification of novel antihypertensive peptides in milk fermented with Enterococcus faecalis , 2007 .
[238] Y. Mine,et al. ACE inhibitory peptides. , 2006 .
[239] I. Bae,et al. Tyr-Pro-Lys, an angiotensin I-converting enzyme inhibitory peptide derived from broccoli (Brassica oleracea Italica) , 2006 .
[240] B. Muguerza,et al. Antihypertensive activity of milk fermented by Enterococcus faecalis strains isolated from raw milk , 2006 .
[241] Toshiyuki,et al. Structures and Activity of Angiotensin-converting Enzyme Inhibitors in an a-Zein Hydrolysate , 2006 .
[242] Yasunori Nakamura,et al. Effects of the liquid yogurts containing "lactotripeptide (VPP, IPP)" on high-normal blood pressure , 2004 .
[243] I. Recio,et al. Preparation of ovine and caprine β-lactoglobulin hydrolysates with ACE-inhibitory activity. Identification of active peptides from caprine β-lactoglobulin hydrolysed with thermolysin , 2002 .
[244] R. Korpela,et al. The effect of a Lactobacillus helveticus LBK-16 H fermented milk on hypertension: a pilot study on humans , 2002 .
[245] K. Arihara,et al. Antihypertensive activities of peptides derived from porcine skeletal muscle myosin in spontaneously hypertensive rats , 2002 .
[246] R. Kedzierski,et al. Endothelin system: the double-edged sword in health and disease. , 2001, Annual review of pharmacology and toxicology.
[247] R. Ohba,et al. Antihypertensive effect of ACE inhibitory oligopeptides from chicken egg yolks. , 2001, Comparative biochemistry and physiology. Toxicology & pharmacology : CBP.
[248] Lei Wei,et al. Expression and Characterization of Recombinant Human Angiotensin I-converting Enzyme , 2001 .
[249] Jianping Wu,et al. Hypotensive and physiological effect of angiotensin converting enzyme inhibitory peptides derived from soy protein on spontaneously hypertensive rats. , 2001, Journal of agricultural and food chemistry.
[250] H. Itakura,et al. The Effect of Sour Milk on Blood Pressure in Untreated Hypertensive and Normotensive Subjects , 2001 .
[251] Yasunori Nakamura,et al. Hypotensive Effects of Sour Milk in Subjects with Mild or Moderate Hypertension , 2001 .
[252] Yasunori Nakamura,et al. Effect of large high intake of tablets containing "lactotripeptides (VPP, IPP)" on blood pressure, pulse rate and clinical parameters in healthy volunteers , 2001 .
[253] S. Matsunaga,et al. Dogger Bank Itch revisited: isolation of (2-hydroxyethyl) dimethylsulfoxonium chloride as a cytotoxic constituent from the marine sponge Theonella aff. mirabilis. , 2001, Comparative biochemistry and physiology. Part B, Biochemistry & molecular biology.
[254] H. Meisel. Biochemical properties of regulatory peptides derived from milk proteins. , 1997, Biopolymers.
[255] C. H. Conrad,et al. Myocardial fibrosis and stiffness with hypertrophy and heart failure in the spontaneously hypertensive rat. , 1995, Circulation.
[256] C. Ahn,et al. Fractionation of Angiotensin Converting Enzyme(ACE) Inhibitory Peptides from Soybean Paste , 1995 .