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1.
Whey protein concentrate (WPC) was hydrolyzed by nine proteolytic enzymes to examine the effectiveness of the hydrolysates to bind iron. Degree of WPC hydrolysis was higher with pancreatin (13.91%), alcalase (13.60%), and flavourzyme (12.80%) compared with other enzymes (esperase, neutrase, papain, pepsin, protease and trypsin). Tricine sodium dodecyl sulfate-polyacrylamide gel electrophoresis and reverse-phase high performance liquid chromatography analyses revealed maximum hydrolysis of α-LA and β-LG with alcalase. Molecular masses of peptides derived from alcalase hydrolysate were smaller than 6.5 kDa. Iron-binding by alcalase hydrolysate was the highest (97.6%) of all other hydrolysates. Using ion-exchange chromatography alcalase hydrolysate was eluted at a 0.25 m NaCl gradient concentration with higher iron-binding ability. This eluted fraction had higher Lys (18.09%), Ala (17.24%), and Phe (16.58%) contents. Alcalase showed noticeably better effectiveness than other enzymes to produce a hydrolysate for the separation of iron-binding peptides derived from WPC.  相似文献   

2.
以ACE抑制活力和水解度为指标,考察6种常用蛋白酶(复合蛋白酶、风味蛋白酶、木瓜蛋白酶、菠萝蛋白酶、中性蛋白酶和碱性蛋白酶)对牛肉蛋白酶解产物的影响,比较不同蛋白酶酶解产物经模拟消化前后ACE抑制活力的变化,并分析了不同蛋白酶酶解产物的分子量分布和感官评价。结果表明:碱性蛋白酶最适于酶解牛肉生产降压肽,其酶解液ACE抑制率为51.19%,消化后活性降低幅度小,消化后酶解液ACE抑制率为39.65%,同时水解度为44.76%,大分子蛋白分解程度高。其次是复合蛋白酶和中性蛋白酶,两者的酶解液在消化前后都具有高ACE抑制活力,消化前抑制率分别为67.97%和62.00%,消化后抑制率分别为37.26%和43.12%,水解度分别为37.47%和36.35%,但大分子蛋白的分解程度较低。感官评价结果表明,不同酶解液的外观、气味和滋味与市售商品差异不大,无明显不良风味产生,可用于食品辅料的生产。  相似文献   

3.
Whey protein concentrate (WPC 80) was hydrolyzed by Alcalase 2.4 L and Protamex to 5, 10, 15 and 20% degree of hydrolysis (DH). WPC 80 and its hydrolysates were analyzed, compared and used for measuring some functional properties. All hydrolysates were different from WPC 80 in protein, moisture and ash content. Free amino groups and protein solubility increased with increasing DH. The peptides produced by hydrolysis had smaller molecular sizes, and their average molecular weight decreased as the DH increased. Except hydrolysates generated by Alcalase 2.4 L at 5% DH, all others showed poor emulsifying and foaming properties compared with unhydrolyzed WPC 80. Gelation properties of WPC 80 and its hydrolysates were different. The global amino acid compositions did not differ significantly between the different hydrolysates, and they were very close among WPC 80 and its hydrolysates except for Methionine, Glycine, Histidine and Valine.  相似文献   

4.
Removal of salts from protein hydrolysate mixture on large scale is very difficult and relatively inefficient. Selecting practical proteinase system and hydrolysis conditions for the production of whey protein isolate (WPI) enzymatic hydrolysates with high angiotensin I‐converting enzyme (ACE) inhibitory activity and low ash content is very useful. The effect of alcalase, neutrase, trypsin and their combined system, i.e. alcalase‐neutrase and trypsin‐neutrase, under two different hydrolysis conditions, i.e. pH‐controlled and pH‐spontaneous drop, on the formation of ACE‐inhibitory peptides and the characteristics of WPI hydrolysate was investigated. Results showed that the ACE‐inhibitory activity of WPI hydrolysate obtained with alcalase was significantly higher than that of its trypsin or neutrase hydrolysate obtained at the same hydrolysis time by both pH‐controlled and pH‐spontaneous drop method (P < 0.05). The WPI hydrolysate obtained after 3 h incubation with alcalase plus 2 h with neutrase under pH‐spontaneous drop condition possessed the highest ACE‐inhibitory activity of 54.30% and the lowest ash content of 2.95%. This is practical as a functional ingredient in the food industry because of its high ACE‐inhibitory capability, commercial availability in large supply of alcalase and neutrase and no needing for additional desalting process.  相似文献   

5.
The angiotensin I-converting enzyme (ACE) inhibitory activity and hypocholesterolemic effect of Achatina fulica snail foot muscle protein hydrolysates (SFMPH) and its hydrolysates were studied. The SFMPHs were prepared at a temperature of 121°C for 60 min. To obtain the enzymatic hydrolysates, the SFMPHs were further hydrolysed with three proteases (papain, trypsin, or alcalase). Among all the hydrolysates, alcalase hydrolysate showed the highest degree of hydrolysis and was dominated by a small molecular size fraction (189–686 Da). The SFMPH treated by alcalase was effective in disintegrating intact cholesterol micelles. Furthermore, alcalase hydrolysate with a hydrolysis time of 60 min showed a strong ACE inhibitory activity in vitro with an IC50 of 0.024 mg/mL. Therefore, alcalase hydrolysate may be a promising ingredient for the use in functional foods.  相似文献   

6.
为了阐明超声-离子液体处理后乳清蛋白酶解动力学特性,研究初始底物质量浓度、酶质量浓度和酶解时间对乳清蛋白水解度的影响,在此基础上建立了乳清蛋白-碱性蛋白酶酶解动力学模型,并通过清除1,1-二苯基-2-三硝基苯肼(1,1-diphenyl-2-picrylhydrazyl,DPPH)自由基法、螯合Fe~(2+)法和还原力法研究了超声-离子液体处理对乳清蛋白酶解产物抗氧化活性的影响。结果表明:超声-离子液体处理后,乳清蛋白的酶解动力学模型发生了改变,其酶解反应所需的临界酶质量浓度降低了43.1%,这表明超声-离子液体处理促使了乳清蛋白酶解。抗氧化实验表明,超声-离子液体处理后,乳清蛋白酶解产物清除DPPH自由基活性和螯合Fe~(2+)能力分别提高了14.4%和28.4%,其还原力也得到了改善。体积排阻色谱分析表明,超声-离子液体处理显著提高了乳清蛋白酶解产物中1~5 ku组分的含量(P0.05),比未处理组提高了12.2%。  相似文献   

7.
In vitro protein digestion studies were carried out on raw and roasted peanut flour as the starting material in the production of peanut protein hydrolysate. Peanut flour was hydrolyzed with alcalase and alternately in a sequential digestion with pepsin-pancreatin, both for up to 24 h. The degree of hydrolysis (DH) at different times of hydrolysis was determined using the trinitrobenzenesulfonic acid (TNBS) method. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) was used to indicate destruction of native protein units in the enzymatic digests.Hydrolysis with alcalase was very rapid for the first 6 h after which a plateau was reached, whereas that with pepsin–pancreatin was more gradual reaching a plateau after 12 h of hydrolysis. Raw peanut hydrolyzed with alcalase and pepsin–pancreatin had 23% and 21% DH after 24 h respectively, whilst roasted peanut hydrolyzed with alcalase had 21% DH, with the pepsin–pancreatin hydrolysate recording the highest value of 25% after 24 h of hydrolysis.SDS-PAGE results showed that raw peanut samples behaved differently from the roasted samples; increasing hydrolysis time reduced larger peanut protein subunits, with only peptides of <20 kDa visible after hydrolysis for raw peanut, and virtually no distinct visible bands for the roasted peanut after 3 h of hydrolysis.  相似文献   

8.
Fish frames without heads from Atlantic cod and Atlantic salmon were proteolysed with the industrial enzymes neutrase®, alcalase® and pepsin for 1, 15, 30, 45, 60, 90 and 120 min. After 120 min of hydrolysis, salmon treated with alcalase and cod treated with pepsin yielded significantly (p < 0.05) higher protein recoveries (67.6 and 64% respectively) as compared to salmon treated with neutrase or pepsin and cod treated with neutrase or alcalase (53–62%). To minimise bitterness in the fish hydrolysates, kojizyme™ was added after 120 min of pre‐hydrolysis with alcalase, and the hydrolysis was run for additional times of 120, 240, 360, 480, 600 and 720 min. Protein recovery did not change significantly during the hydrolysis with kojizyme, but the degree of hydrolysis increased significantly (p < 0.01) in both the cod and salmon hydrolysates. A hydrolysate from cod treated with alcalase (150 min) followed by treatment with kojizyme (510 min) was produced. The final hydrolysate was freeze‐dried to a fish protein hydrolysate (FPH) and chemically characterised. The nutritional value of the FPH was established in an experiment with rats. Inclusion of 10% FPH‐N showed significantly (p < 0.05) higher nutritional value as compared to rats fed higher inclusion levels of FPH. © 2000 Society of Chemical Industry  相似文献   

9.
Antioxidant activity of whey protein concentrate (WPC) hydrolysates was evaluated. Hydrolysates were obtained by pepsin, trypsin, alcalase and flavourzyme enzymatic reaction and preheat treatment of 95 °C for 5 or 10 min. The degree of hydrolysis (DH) was determined by 2,4,6‐trinitrobenzene sulphonic acid method, and antioxidant properties were determined by three spectrophotometric methods: ferricyanide method, ferric reducing/antioxidant power assay and diphenyl‐picryl hydrazinyl radical‐scavenging activity. For all the enzymes, briefly preheat treatment (95 °C/5 min) increased DH of WPC. Alcalase hydrolysates showed the highest antioxidant activity by three methods. The changes in antioxidant activity was coincidental with the changes in DH (R2 = 0.988). Hydrolysates analysed by polyacrylamide gel electrophoresis and high performance liquid chromatography indicated that the α‐La was hydrolysed completely by pepsin, trypsin and alcalase and was resistant to flavourzyme to some extent; β‐lactoglobulin was only completely hydrolysed by trypsin and alcalase. Results indicated that antioxidant activity of hydrolysates was greatly related to the exposure of amino acid residues.  相似文献   

10.
ABSTRACT:  The effects of different proteolytic treatments on the physiochemical and bitterness properties of pea protein hydrolysates were investigated. A commercial pea protein isolate was digested using each of 5 different proteases to produce protein hydrolysates with varying properties. After 4 h of enzyme digestion, samples were clarified by centrifugation followed by desalting of the supernatant with a 1000 Da membrane; the retentates were then freeze-dried. Alcalase and Flavourzyme™ produced protein hydrolysates with significantly higher ( P < 0.05) degree of hydrolysis when compared to the other proteases. Flavourzyme, papain, and alcalase produced hydrolysates that contained the highest levels of aromatic amino acids, while trypsin hydrolysate had the highest levels of lysine and arginine. Papain hydrolysate contained high molecular weight peptides (10 to 178 kDa) while hydrolysates from the other 4 proteases contained predominantly low molecular weight peptides (≤ 23 kDa). DPPH (1,1-diphenyl-2-picrylhydrazyl) free radical scavenging activity of the Flavourzyme hydrolysate was significantly ( P < 0.05) the highest while alcalase and trypsin hydrolysates were the lowest. Inhibition of angiotensin converting enzyme (ACE) activity was significantly higher ( P < 0.05) for papain hydrolysate while Flavourzyme hydrolysate had the least inhibitory activity. Sensory analysis showed that the alcalase hydrolysate was the most bitter while papain and α-chymotrypsin hydrolysates were the least. Among the 5 enzymes used in this study, papain and α-chymotrypsin appear to be the most desirable for producing high quality pea protein hydrolysates because of the low bitterness scores combined with a high level of angiotensin converting enzyme inhibition and moderate free radical scavenging activity.  相似文献   

11.
ABSTRACT:  Although enzymatic hydrolysates of soy protein isolate (SPI) have physiological functionality, partially hydrolyzed SPI exhibits bitter taste depending on proteases and degree of hydrolysis (DH). To determine proteolysis conditions for SPI, it is important to evaluate bitterness during enzymatic hydrolysis. Taste dilution analysis (TDA) has been developed for the screening technique of taste-active compounds in foods. The objectives of the present study were to evaluate bitterness of enzyme-hydrolyzed SPI by TDA and to compare bitterness of SPI hydrolysates with respect to kinds of proteases and DH. SPI was hydrolyzed at 50 °C and pH 6.8 to 7.1 to obtain various DH with commercial proteases (flavourzyme, alcalase, neutrase, protamex, papain, and bromelain) at E/S ratios of 0.5%, 1%, and 2%. The DH of enzymatic hydrolysates was measured by trinitrobenzenesulfonic acid method. The bitterness of enzymatic hydrolysates was evaluated by TDA, which is based on threshold detection in serially diluted samples. Taste dilution (TD) factor was defined as the dilution at which a taste difference between the diluted sample and 2 blanks could be detected. As DH increased, the bitterness increased for all proteases evaluated. Alcalase showed the highest TD factor at the same DH, followed by neutrase. Flavourzyme showed the lowest TD factor at the entire DH ranges. At the DH of 10%, TD factor of hydrolysate by flavourzyme was 0 whereas those by protamex and alcalase were 4 and 16, respectively. These results suggest that TDA could be applied for the alternative of bitterness evaluation to the hedonic scale sensory evaluation.  相似文献   

12.
Commercial whey protein concentrate (WPC) was hydrolysed with either Alcalase 2.4 FG (Novo Nordisk), or papain (Sigma) (in one‐step process) or with two enzymes (in two‐step process) to determine the changes in the immunoreactivity of α‐lactalbumin and β‐lactoglobulin. Enzymatic hydrolysis of WPC was performed by pH‐stat method. Hydrolysates were analysed using sodium dodecyl sulphate‐polyacrylamide gel electrophoresis, immunoblotting and size‐exclusion chromatography (SE‐HPLC). Immunoreactive properties of peptide fractions separated from the hydrolysates by fast protein liquid chromatography (FPLC) were determined using dot‐immunobinding and enzyme‐linked immunosorbent assay (ELISA) methods. Finally the sensory analysis was used to confirm organoleptic changes resulting from the application of different enzymes. The ‘two‐step’ process was observed to be the most effective however allergenic epitopes were still present, as it was found by ELISA with anti‐α‐la and anti‐β‐lg antibodies. The addition of papain as the second enzyme in the hydrolysis process contributed to the improvement of the sensory properties of WPC hydrolysate as compared with the Alcalase hydrolysate. Alcalase‐papain partially hydrolysated WPC can be found a promising base for production of the tolerogenic formula.  相似文献   

13.
The gelling ability of whey proteins can be changed by limited hydrolysis and by the addition of other components such as polysaccharides. In this work the effect of the concentration of locust bean gum (LBG) on the heat-set gelation of aqueous whey protein hydrolysates (10% w/w) from pepsin and trypsin was assessed at pH 7.0. Whey protein concentrate (WPC) mild hydrolysis (up to 2.5% in the case of pepsin and 1.0% in the case of trypsin) ameliorates the gelling ability. The WPC synergism with LBG is affected by the protein hydrolysis. For a WPC concentration of 10% (w/w), no maximum value was found in the G′ dependence on LBG content in the case of the hydrolysates, unlike the intact WPC. However, for higher protein concentrations, the behaviour of gels from whey proteins or whey protein hydrolysates towards the presence of LBG becomes very similar. In this case, a small amount of LBG in the presence of salt leads to a big enhancement in the gel strength. Further increases in the LBG concentration led to a decrease in the gel strength.  相似文献   

14.
This study aimed to investigate the effect of pepsin pretreatment on the ACE‐inhibitory and DPPH radical scavenging activities of soya protein hydrolysates prepared with alcalase and protamex. The protein recovery, TCA‐soluble peptide content, surface hydrophobicity, particle size and zeta potential were evaluated. Results showed that the hydrolysates exhibited varying ACE‐inhibitory (i.e. the highest value 72.6% by alcalase and 84.3% by protamex) and DPPH radical scavenging activities (i.e. the highest value 51.9% by alcalase and 51.7% by protamex). Pepsin pretreatment could make soya proteins more susceptible for hydrolysis, and the results showed that the ACE‐inhibitory and DPPH radical scavenging activities of the resultant hydrolysates were improved. A highly significant positive correlation between ACE‐inhibitory and DPPH radical scavenging activities was observed in the alcalase hydrolysates, while no significant correlation among other treatments. The physical properties of hydrolysates, that is surface hydrophobicity, particle size and zeta potential, could influence their ACE‐inhibitory and DPPH radical scavenging activities.  相似文献   

15.
Protein isolate from pumpkin oil cake (PuOC PI) was hydrolysed by alcalase, flavourzyme and by sequential use of these enzymes, respectively, and the antioxidant properties and angiotensin-I converting enzyme (ACE) inhibitory activities of hydrolysates were evaluated. Under the same reaction conditions, alcalase hydrolysates showed a higher degree of hydrolysis (DH) than did flavourzyme hydrolysates. The highest DH’s by individual enzymes were 53.23 ± 0.7% and 37.17 ± 1.05%, respectively, both at 60 min. The increase of radical scavenging activity (RSA) in hydrolysates was positively correlated with the increase of DH, for both enzymes, though hydrolysates with flavourzyme showed two- or three-fold lower RSA than with alcalase. The highest bioactive potential was determined in the alcalase hydrolysate at 60 min, with RSA being 7.59 ± 0.081 mM TEAC/mg and ACE-inhibitory activity 71.05 ± 7.5% (IC50 = 0.422 mg/ml). When this hydrolysate was further hydrolysed by flavourzyme, DH increased up to 69.29 ± 0.9%, but lower RSA (4.82 ± 0.21 mM TEAC/mg) and ACE-inhibitory activity (55.81 ± 6.196%) were determined in the final hydrolysate. This study suggested that the PuOC proteins could be converted into protein hydrolysates with antioxidant and ACE-inhibitory activities by enzymatic hydrolysis. Alcalase was shown as promising enzyme in further development of bioprocesses for the production of new bioactive food ingredients.  相似文献   

16.
Tea dregs possess abundant proteins, and the objective of this study was to investigate the antioxidant activity of tea dregs protein hydrolysate with limited hydrolysis by protamex and its possible action mechanism. Tea dregs protein was hydrolysed by alcalase, protamex or neutrase. The hydrolysis condition was optimised, and the hydrolysate was characterised for 1,1‐diphenyl‐2‐picryl hydrazyl (DPPH) radical‐scavenging activity, hydroxyl radical‐scavenging activity and antioxidant activity in linoleic acid (LA) system and in chicken products. Tea dregs protein hydrolysate (TDPH) was formulated (0.1%, 0.5%, 1.0%, w/w) into chicken products to determine in situ antioxidant efficacy. Thiobarbituric acid‐reactive substances (TBARS) and peroxide value (POV) formed in chicken products during storage (4 °C, 0–7 days) were analysed. Results showed that the optimum hydrolysis condition was at 50 °C, pH 7.0 for 20 min, and the concentration of tea dregs protein was 1.5%; ratio of protamex to substrate was 6000 U g?1. The radical‐scavenging ratio of TDPH to 1,1‐diphenyl‐2‐picryl hydrazyl (DPPH) was 90.30% at the concentration of 0.1 mg mL?1 and that to hydroxyl radical was 65.18% at the concentration of 1.0 mg mL?1. Moreover, it also showed strong antioxidant activity both in linoleic acid (LA) system and in chicken products. The molecular weight distribution of tea dregs hydrolysates was determined by nanofiltration tubular membrane, and the protein hydrolysates with molecular weight above 8000 Da had more effective antioxidant activity. The radical‐scavenging activities to DPPH and hydroxyl radical were 85.72% at 0.1 mg mL?1 and 71.52% at 1.0 mg mL?1, respectively. These findings suggest that the enzymatic hydrolysate of tea dregs protein probably possesses the specific peptides/amino acids which could stabilise or terminate the radicals through donating hydrogen. In addition, the hydrolysate could form a physical barrier around the fat droplets.  相似文献   

17.
由于高温花生粕中的花生蛋白在高温压榨过程中高度变性,因此在食品工业中蛋白利用率较低。本研究通过对比高温花生粕和低温花生粕经过不同商业蛋白酶(Alcalase 2.4 L,Neutrase,Papain,Protamex及Flavorzyme 500 MG)水解后水解产物特性的蛋白回收率、水解度、分子量分布及抗氧化活性,确定高温花生粕是否适合采用生物酶解的方式利用其中的蛋白质并筛选合适的蛋白酶。结果表明,高温花生粕经不同蛋白酶水解后,其蛋白质利用率均在60.61~67.86%,与低温花生粕相当;水解度及分子量分布方面,高温花生粕Flavorzyme水解产物的DH最高,高达44.92%,且含有较多的3 ku小分子肽及游离氨基酸;此外,高温花生粕不同酶水解产物的DPPH自由基清除活性均高于低温花生粕,这可能是由于高温花生粕水解产物中含有较多具有供电子的小分子肽、游离氨基酸以及高温压榨过程中生成的美拉德反应产物。  相似文献   

18.
为花生饼粕制备花生呈味基料提供一种高效复合酶,以蛋白回收率、水解度和滋味稀释倍数为评价指标,运用最优混料试验设计优化风味蛋白酶、碱性蛋白酶和复合蛋白酶的组合,经构建回归模型确定最佳复合酶组成。结果表明:复配酶最佳组合为风味蛋白酶:碱性蛋白酶:复合蛋白酶=0.721:0.149:0.129,该组合能明显提高呈味基料的生产效率(蛋白回收率为(81.95%±2.69%)、水解度为(52.79%±2.04%)、滋味稀释倍数为(53.80±1.67)。验证实验证实,模型预测值与实验值相符,模型成立。经凝胶渗透色谱法测定,分子量小于1000 Da的水解产物占(96.84%±0.83%),且小于180 Da的含量为(63.63%±2.85%),这表明该呈味基料为短肽与氨基酸的混合物。最佳酶配比制备的酶解液作为一种呈味基料,具有良好的食品工业应用前景。  相似文献   

19.
To evaluate the free radical‐scavenging activities of sweet potato protein (SPP) and its hydrolysates, single enzymes alone (alcalase, neutrase, protamex) or in combination with flavourzyme were employed. Compared with SPP, free radical‐scavenging activities of the resulting hydrolysates were all significantly increased (P < 0.05). Alcalase (ALC) hydrolysates exhibited the highest superoxide, hydroxyl and 1,1‐diphenyl‐2‐picrylhydrazyl (DPPH) radical‐scavenging activities (P < 0.05), which was 18.71 ± 0.22, 27.13 ± 0.24 and 90.10 ± 0.15% respectively. Compared with SPP hydrolysates by single enzymes, the hydrolysates obtained by combination of enzyme systems exhibited higher degree of hydrolysis, but lower free radicals scavenging activities. In addition, the content of several antioxidant amino acid residues, such as His, Met, Tyr and Phe, in ALC hydrolysates was much higher compared with SPP and other hydrolysates using amino acids composition assay. The results suggested that peptides with free radical‐scavenging activity could be released from entire SPP chain via moderate enzymatic hydrolysis.  相似文献   

20.
干酪乳清水解产物的抗氧化活性研究   总被引:2,自引:2,他引:0  
选用新鲜干酪乳清为原料,研究碱性蛋白酶对乳清水解产物的抗氧化活性。以水解产物的亚铁还原能力、对卵磷脂脂质氧化体系的过氧化抑制作用、羟自由基清除能力和超氧阴离子自由基的清除能力为指标评价乳清水解产物的抗氧化能力。结果表明,乳清在水解前经过预热处理并不能增加其水解产物的抗氧化活性,1 h水解物的亚铁还原能力最高,2 h水解产物对卵磷脂脂质氧化体系的过氧化抑制作用最高,抑制率达到24.82%;2 h水解产物羟自由基清除率最高,达到70.28%;2 h水解产物超氧阴离子自由基清除率最高,达到21.4%。但是乳清水解产物的抗氧化能力与水解度没有线性关系。  相似文献   

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