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花生蛋白碱性蛋白酶水解物对血管紧张素转化酶抑制作用的初步研究(英文) 被引量:22

Angiotensin I-converting Enzyme Inhibitory Activity of Peanut Protein Hydrolysates Prepared with Alcalase
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摘要 分别以碱性蛋白酶Alcalase和中性蛋白酶Neutrase对花生分离蛋白进行水解,制备花生分离蛋白水解物,并测定不同水解时间所得产物对血管紧张素转化酶(ACE)的抑制活性。未水解的花生分离蛋白没有 ACE抑制活性,用中性蛋白酶Neutrase水解所得的水解物显示弱ACE抑制活性。然而,碱性蛋白酶Alcalase水解物具有很强的ACE抑制活性,水解0.5 h时水解物活性最高,其半抑制浓度为(IC50)0.56 mg/mL。本研究表明,当用碱性蛋白酶Alcalase水解时,花生分离蛋白是生产ACE抑制肽的良好蛋白质来源,花生分离蛋白碱性蛋白酶 Alcalase水解物可作为具有降压功能的功能食品添料。 Peanut protein hydrolysates were prepared by enzymatic hydrolysis with Alcalase and Neutrase, and the angiotensin I-converting enzyme (ACE) inhibitory activities of the enzymatic hydrolysates were investigated at different hydrolysis times. The unhydrolyzed protein showed no inhibitory activity. Hydrolysates generated with Neutrase displayed very low ACE inhibitory activity, while those obtained with Alcalase exhibited high inhibitory activity. The highest ACE inhibitory activity with the IC_ 50 value of 0.56 mg protein/mL was found in the hydrolysate obtained with Alcalase at 30 min of hydrolysis time. These results indicate that peanut protein is a good protein source of ACE inhibitory peptides when hydrolyzed with the protease Alcalase. The peanut protein hydrolysates prepared with Alcalase might be utilized for physiologically functional foods with antihypertensive activity.
出处 《花生学报》 2005年第1期8-14,共7页 Journal of Peanut Science
基金 中央级科研院所科技基础性工作专项基金重点项目资助(No.2001DEA20022)
关键词 碱性蛋白酶 花生蛋白 蛋白水解物 酶水解 中性蛋白酶 ACE抑制活性 降压功能 血管紧张素转化酶 抑制作用 分离 angiotensin I-converting enzyme inhibition bioactive peptides peanut protein hydrolysates alcalase
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参考文献44

  • 1Erdos EG. Angiotensin I-convertingenzyme [J]. Circ Res, 1975,36: 247-255.
  • 2Messerli FH. Combinations in the treatment of hypertension: ACE inhibitors andcalcium antagonists [J]. Am J Hypertens, 1999,12: 86~90.
  • 3Muruyama S, Mitachi H, Tanaka H, et al. Studies on the active site andantihypertensive activity of angiotensin I-converting enzyme inhibitors derived fromcasein [J]. Agric Biol Chem, 1987, 51: 1581~1586.
  • 4Pihlanto-Leppala A, Rokka T and Korhonen H. Angiotensin I converting enzymeinhibitory peptides derived from bovine milk proteins [J]. Int Dairy J, 1998, 8: 325~331.
  • 5Tauzin J, Miclo L and Gaillard J-L. Angiotensin-I-converting enzyme inhibitorypeptides from tryptic hydrolysate of bovine αS2-casein [J]. FEBS Lett, 2002, 531: 369~374.
  • 6Pihlanto-Leppala A. Bioactive peptides derived from bovine proteins: opioid andace-inhibitory peptides [J]. Trends Food Sci Technol, 2001, 11: 347~356.
  • 7Hernandez-Ledesma B, Recio I, Ramos M, et al. Preparation of ovine and caprine β-lactoglobulinhydrolysates with ACE-inhibitory activity. Identification of active peptides from caprineβ-lactoglobulin hydrolysed with thermolysin [J]. Int Dairy J, 2002, 12: 805~812.
  • 8Matsui T, Matsufuji H, Seki E, et al. Inhibition of angiotensin I-converting enzymeby Bacillus licheniformis alkaline protease hydrolyzates derived from sardine muscle [J].Biosci, Biotechnol Biochem, 1993, 57: 922~925.
  • 9Aatawan M, Wahyuni M, Yasuhara T, et al. Effects of angiotensin I-converting enzymeinhibitory substances derived from Indonesian dried-salted fish on blood pressure of rats[J]. Biosci, Biotech Biochem, 1995, 59: 425~429.
  • 10Wako Y, Ishikawa S and Muramoto K. Angiotensin I-converting enzyme inhibitors inautolysates of liver and mantle muscle [J]. Biosci, Biotech Biochem, 1996, 60: 1353~1355.

二级参考文献16

  • 1刘大川,张维农,胡小泓.一步法花生浓缩蛋白制备工艺的研究[J].中国油脂,1997,22(1):33-36. 被引量:9
  • 2[1]Shaik-M M Basha, et al. Isolation and characterization of two cryoproteins from florummer peanut (Arachis hypogaea L.) seed[J]. J Agric Food Chem,1982,(30):36-41.
  • 3[2]Rhee K C, et al. Simultaneous recovery of protein and oil from raw peanuts in an aqueous system[J]. J. Food Sci,1972,37:141-145.
  • 4[3]Eapen K E, et al. Operations in the Wetrendering of peanut for the separation of protein, oil and starch[J]. J Am Oil Chem Soc, 1966,43:585.
  • 5[4]Rosenthal A, et al. Combined effect of operational variables and enzyme activity on aqueous enzymatic extraction of oil and protein from soybean[J]. Enzyme and Microbial Technology, 2001,28(6):224-228.
  • 6[5]Toyama N, et al. Cellulases and their applications, advances in chemistry series[C]. American Chemical Soeciety Publications,1984,391.
  • 7[6]Sosulski K,Sosulski F W, Coxworth E. Carbohydrase hydrolysis of canola to enhance oil extraction with hexane[J]. J Am Oil Chem Soc, 1988,65(3): 357-361.
  • 8[7]Guerard F, Dufosse L, De La Broise D, Binet A. Enzymatic hydrolysis of proteins from yellowfin tuna wastes using Alcalase[J]. Journal of Molecular Catalysis B: Enzymatic,2001,11:1051-1059.
  • 9[8]Guerard F, et al. Enzymatic hydrolysis of proteins from yellowfin tuna wastes using Alcalase[J]. Journal of Molecular Catalysis B: Enzymatic,2001,11:1051-1059.
  • 10[9]Rosenthal A, et al. Combined effect of operational variables and enzyme activity on aqueous enzymatic extraction of oil and protein from soybean[J]. Enzyme and Microbial Technology, 2001,28(6):224-228.

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