• Title/Summary/Keyword: Angiotensin-converting enzyme (ACE) inhibitor

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Purification and Characterization of an Angiotensin Converting Enzyme Inhibitor from Squid Ink

  • Kim, So-youn;Kim, Sun-hye;Song, Kyung-Bin
    • Proceedings of the Korean Society of Postharvest Science and Technology of Agricultural Products Conference
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    • 2003.10a
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    • pp.135.2-135
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    • 2003
  • Angiotensin converting enzyme (ACE) converts angiotensin I into angiotensin II by cleaving C-terminal dipeptide of angiotensin I and inactivates bradykinin. ACE inhibitors have been screened from various food sources since the inhibitors decrease blood pressure. Therefore, in this study, an ACE inhibitor was isolated and purified from squid ink using membrane filtration, gel permeation chromatography, normal phase HPLC, and fast protein liquid chromatography. The purified inhibitor was identified to be a molecular mass of 294 by mass spectrometry, and to have IC$\sub$50/ value of 4.9 $\mu\textrm{g}$/mL.

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Isolation of Angiotensin Converting Enzyme Inhibitor from Doenjang (전통된장으로부터 Angiotensin Converting Enzyme 저해물질의 분리)

  • Kim, Seung-Ho;Lee, Yun-Jin;Kwon, Dae-Young
    • Korean Journal of Food Science and Technology
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    • v.31 no.3
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    • pp.848-854
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    • 1999
  • Inhibitory compounds of angiotensin converting enzyme (ACE) were separated from Doenjang (traditional Korean fermented soybean paste). Water extracts from Doenjang which showed ACE inhibitory activity were separated with gel permeation chromatography (GPC), in which two fractions with high ACE inhibitory activities were obtained. The first fraction from GPC was further isolated by semi-preparative reverse phase preparative-HPLC (high performance liquid chromatography) and 2-dimensional electrophoresis/thin layer chromatography (TLC). The purified spot had molecular weight of 759 daltons and ninhydrin-positive non-peptide. The second fraction from GPC was also further isolated by semi-preparative reverse phase HPLC and $NH_2-column$ HPLC. One fraction with high ACE inhibitory activity was purified and characterized. Molecular weight of this fraction by LC-MS was 272.34 daltons. The active fraction was identified as Arg-Pro with ACE $IC_{50}$ of $92\;{\mu}M$.

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The Novel Angiotensin I Converting Enzyme Inhibitory Peptide from Rainbow Trout Muscle Hydrolysate

  • Kim, Sung-Rae;Byun, Hee-Guk
    • Fisheries and Aquatic Sciences
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    • v.15 no.3
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    • pp.183-190
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    • 2012
  • The purpose of this study was the purification and characterization of an angiotensin I converting enzyme (ACE) inhibitory peptide purified from enzymatic hydrolysates of rainbow trout Oncorhynchus mykiss muscle. After removal of lipid, the approximate composition analysis of the rainbow trout revealed 24.4%, 1.7%, and 68.3% for protein, lipid, and moisture, respectively. Among six hydrolysates, the peptic hydrolysate exhibited the highest ACE inhibitory activity. We attempted to purify ACE inhibitory peptides from peptic hydrolysate using high performance liquid chromatography on an ODS column. The $IC_{50}$ value of purified ACE inhibitory peptide was $63.9{\mu}M$. The amino acid sequence of the peptide was identified as Lys-Val-Asn-Gly-Pro-Ala-Met-Ser-Pro-Asn-Ala-Asn, with a molecular weight of 1,220 Da, and the Lineweaver-Burk plots suggested that they act as a competitive inhibitor against ACE. Our study suggested that novel ACE inhibitory peptides purified from rainbow trout muscle protein may be beneficial as anti-hypertension compounds in functional foods.

Effects of Captopril on the Active Angiotensin Converting Enzyme at the Pulmonary Endothelial Cells (Captopril에 의한 폐동맥 내피세포중 활성형 Angiotensin 전환효소의 변화)

  • 안형수
    • YAKHAK HOEJI
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    • v.37 no.1
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    • pp.41-48
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    • 1993
  • The effect of captopril on the lung angiotensin converting enzyme (ACE) was investigated after 3 weeks oral administration (120~160 mg/kg/day) through drinking water in SpragueDawley rats. On the $^{125}$I-351A, an ACE inhibitor, binding assay in the isolated perpused lungs, the number of ACE molecules at the intrapulmonary endothelial cell surface was significantly decreased (p<0.001), and recovered to the normal level 7 days after discontinuation of captopril treatment. Intrapulmonary conversion ratio of Al to All was also significantly decreased (p<0.05) in the isolated perpused lungs. Bolus intravenous injection of angiotensin I did not showed pressor response in the both of systemic and pulmonary blood pressure of the anesthetized rats. ACE activity of the lung homogenates was also significantly reduced. These data consistently indicate the decrease of functionally active ACE molecule at the pulmonary artery after chronic captopril treatment. However, serum ACE activity was increased three fold in captopril treated rats compared to the normal rats. So, these results suggest that the functionally active ACE molecule at the pulmonary artery was still inhibited, which is directly associated with the antihypertensive effects, even if the total angiotensn converting enzyme induction was resulted after chronic captopril treatment.

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Effect of phlorotannins isolated from Ecklonia cava on angiotensin I-converting enzyme (ACE) inhibitory activity

  • Wijesinghe, W.A.J.P.;Ko, Seok-Chun;Jeon, You-Jin
    • Nutrition Research and Practice
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    • v.5 no.2
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    • pp.93-100
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    • 2011
  • Inhibition of angiotensin I-converting enzyme (ACE) activity is the most common mechanism underlying the lowering of blood pressure. In the present study, five organic extracts of a marine brown seaweed Ecklonia cava were prepared by using ethanol, ethyl acetate, chloroform, hexane, and diethyl ether as solvents, which were then tested for their potential ACE inhibitory activities. Ethanol extract showed the strongest ACE inhibitory activity with an $IC_{50}$ value of 0.96 mg/ml. Five kinds of phlorotannins, phloroglucinol, triphlorethol-A, eckol, dieckol, and eckstolonol, were isolated from ethanol extract of E. cava, which exhibited potential ACE inhibition. Dieckol was the most potent ACE inhibitor and was found to be a non-competitive inhibitor against ACE according to Lineweaver-Burk plots. Dieckol had an inducible effect on the production of NO in EAhy926 cells without having cytotoxic effect. The results of this study indicate that E. cava could be a potential source of phlorotalnnins with ACE inhibitory activity for utilization in production of functional foods.

Purification and Characterization of Angiotensin I-Converting Enzyme Inhibitor from Porphyra yezoensis (김으로부터 분리한 Angiotensin-I Converting Enzyme 저해제의 정제 및 특성)

  • 최수진;전우진;유광원;신동훈;홍범식;조홍연;양한철
    • Journal of the Korean Society of Food Science and Nutrition
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    • v.29 no.4
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    • pp.719-725
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    • 2000
  • This study focused on the purification and characterization of ACE inhibitor from Porphyra yezoensis. The dried Porphyra yezoensis was ground and hydrolyzed with 2.5 N HCl, followed by neutralization and centrifugation. Then, the subsequential purification of ACE inhibitor was carried out by Amberlite XAD 8, DEAE-Toyopearl 650C, Sephadex LH-20 column chromatography and reverse phase HPLC with C18 column. The purified ACE inhibitor was peptide which consisted of glycine (24.5%), arginine (56.8%) and proline (18.8%). Also, it showed the competitive inhibition pattern to ACE. The apparent molecular mass of purified peptide was 580 dalton, and an IC50 value of ACE inhibitor was 10.6 $\mu\textrm{g}$.

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Purification and Characterization of Angiotensin I Converting Enzyme lnhibitory Peptides from Enzymatic Hydrolysate of Cod Liver Protein (대구의 간 단백질의 효소적 가수분해물로부터 안지오텐신 I 전환효소 저해 펩타이드의 분리.정제 및 특성)

  • 최영일;박표잠;최정호;변희국;정인철;문성훈;김세권
    • Journal of Life Science
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    • v.10 no.2
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    • pp.140-149
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    • 2000
  • In order to utilize marine processing waste which would normally be discarded, cod liver protein was hydrolysed by ${\alpha}$-chymotrysin, and the hydrolysate was investigated for the new angiotensin I converting enzyme (ACE) inhibitor. Thy hydrolysate was separated into three major types, with molecular weight cut-off (MWCO) values less than 10 kDa, 5 kDa and 1 kDa of ultrafiltration membranes, respectively. ACE inhibitory peptides were isolated from the fractions passed through MWCO 1 kDa membrane, and purified by using ion-exchange chromatography on a SP-Sephadex C-25 column, gel filtration on a Sephadex G-15 column, and HPLC on an ODS column. The purity was identified with capillary electrophoresis. The amino acid sequences of two peptides were Met-Ile-Pro-Pro-Tyr-Tyr (IC50=10.9 ${\mu}$M) and Gly-Leu-Arg-Asn-Gly-Ile (IC50=35.0 ${\mu}$M)

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Tumor necrosis factor α-converting enzyme inhibitor attenuates lipopolysaccharide-induced reactive oxygen species and mitogen-activated protein kinase expression in human renal proximal tubule epithelial cells

  • Bae, Eun Hui;Kim, In Jin;Choi, Hong Sang;Kim, Ha Yeon;Kim, Chang Seong;Ma, Seong Kwon;Kim, In S.;Kim, Soo Wan
    • The Korean Journal of Physiology and Pharmacology
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    • v.22 no.2
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    • pp.135-143
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    • 2018
  • Tumor necrosis $factor-{\alpha}$ ($TNF{\alpha}$) and the angiotensin system are involved in inflammatory diseases and may contribute to acute kidney injury. We investigated the mechanisms by which $TNF{\alpha}$-converting enzyme (TACE) contributes to lipopolysaccharide (LPS)-induced renal inflammation and the effect of TACE inhibitor treatment on LPS-induced cellular injury in human renal proximal tubule epithelial (HK-2) cells. Mice were treated with LPS (10 mg/kg, i.p.) and HK-2 cells were cultured with or without LPS ($10{\mu}g/ml$) in the presence or absence of a type 1 TACE inhibitor ($1{\mu}M$) or type 2 TACE inhibitor ($10{\mu}M$). LPS treatment induced increased serum creatinine, $TNF{\alpha}$, and urinary neutrophil gelatinase-associated lipocalin. Angiotensin II type 1 receptor, mitogen activated protein kinase (MAPK), and TACE increased, while angiotensin-converting enzyme-2 (ACE2) expression decreased in LPS-induced acute kidney injury and LPS-treated HK-2 cells. LPS induced reactive oxygen species and the down-regulation of ACE2, and these responses were prevented by TACE inhibitors in HK-2 cells. TACE inhibitors increased cell viability in LPS-treated HK-2 cells and attenuated oxidative stress and inflammatory cytokines. Our findings indicate that LPS activates renin angiotensin system components via the activation of TACE. Furthermore, inhibitors of TACE are potential therapeutic agents for kidney injury.

Screening New Antihypertensive Angiotensin I-Converting Enzyme Inhibitor -Producing Yeast and Optimization of Production Condition (항고혈압성 안지오텐신 전환효소 저해제를 생산하는 새로운 효모의 선별 및 저해물질 최적 생산조건)

  • Kang, Min-Gu;Kim, Ha-Kun;Yi, Sung-Hun;Lim, Sung-Il;Lee, Jong-Soo
    • The Korean Journal of Mycology
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    • v.39 no.3
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    • pp.194-197
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    • 2011
  • Forty eight strains of yeast were cultured in potato dextorse(PD) broth at $30^{\circ}C$ for 24 hr and centrifuged with 12,000 rpm for 20 min. After concentrated the cultures, antihypertensive angiotensin I-converting enzyme(ACE) inhibitory activities of its concentrates were investigated. Among them, the concentrates from Saccharomyces cerevisiae Y183-3 showed the highest ACE inhibitory activity of 71.8%. The ACE inhibitor from Saccharomyces cerevisiae Y183-3 was maximally produced when Saccharomyces cerevisiae Y183-3 cultured in PD broth at $30^{\circ}C$ for 36 hr.

Partial Purification of Angiotensin Converting Enzyme Inhibitory Peptide Isolated form Supernatant of Bovine Plasma Treated by Trichloroscetic Acid

  • Park, Eun-Hee;Song, Kyung-Bin
    • Preventive Nutrition and Food Science
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    • v.3 no.4
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    • pp.379-381
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    • 1998
  • An angiotensin converting enzyme (ACE) inhibitor was isolated and partially purified from bovine blood plasma. Bovine blood plasma was obtained after removing blood cells by centrifugation, followed by the addition of anticoagulant to whole bovine blood. To precipitate plasma proteins, bovine blood plasma was treated with 4% trichloroacetic acid (TCA) as a final concentration .An ACE inhibitor was isolated from TCA supernatnat, using ultrafiltration, gel permeation chormatography, and reverse-phase high pressure liquid chromatogrpahy. The ACE inhibitor purified from TCA supernatant had IC50 values of 9.4$\mu$M.

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