





中国农业科学 ›› 2019, Vol. 52 ›› Issue (2): 339-349.doi: 10.3864/j.issn.0578-1752.2019.02.012
收稿日期:2018-07-05
接受日期:2018-11-12
出版日期:2019-01-16
发布日期:2019-01-21
联系方式:
周剑敏,E-mail: 9120111012@nufe.edu.cn。
基金资助:
ZHOU JianMin,YIN FangPing,YU Chen,TANG XiaoZhi(
)
Received:2018-07-05
Accepted:2018-11-12
Published:2019-01-16
Online:2019-01-21
摘要: 【目的】 利用挤压协同酶法制备高粱蛋白ACE抑制肽,为提高高粱蛋白资源的利用效率提供参考。【方法】 以高粱粉为原料,先经挤压处理,再经淀粉酶酶解,最后通过碱性蛋白酶酶解,获得高粱蛋白ACE抑制肽。研究物料水分、挤压温度和淀粉酶活力对高粱蛋白酶解液的水解度和ACE抑制活性的影响,并探讨高粱蛋白ACE抑制肽的稳定性。【结果】 随着物料水分含量和挤压温度的增加,挤压过程中单位机械能耗(SME)逐渐降低。在挤压环境下,高粱中淀粉和蛋白质的相互结合变得松散,淀粉-蛋白质包埋体系被破坏;同时高粱中球形蛋白质体被打破,提高所获得高粱蛋白的酶敏感性,在碱性蛋白酶的作用下生成更多具有抑制活性的短肽。挤压过程中物料水分含量和挤压温度以及α-淀粉酶活力对高粱蛋白酶解液的水解度和ACE抑制率有显著影响。随着物料水分的增加,蛋白质分子的聚合程度下降,使得高粱蛋白酶解液的水解度和ACE抑制率随之增加,当物料水分增加至19%后,挤压过程对蛋白质周围的淀粉分子的破坏作用降低,水解度和ACE抑制率的上升趋势趋于平缓;当挤压温度从120℃增加至180℃时,高粱内部的蛋白质-淀粉包埋体系破坏加剧,同时蛋白质的空间结构在高温作用下的变性程度加大,高粱蛋白酶解液的水解度由7.42%增加至11.06%,同时高粱蛋白ACE抑制肽的抑制率也由46.57%增加至53.41%;挤压后高粱粉经α-淀粉酶处理,进一步去除包裹在蛋白质周围的淀粉,发现随着α-淀粉酶活力的增加,高粱内部的蛋白质-淀粉包埋体系破坏程度加剧,为制备高粱蛋白ACE抑制肽提供更多原料,导致高粱蛋白酶解液的水解度和ACE抑制率随之增加,当α-淀粉酶活力增加至2.0 U·g -1时,淀粉酶与淀粉结合达到饱和状态,水解度和ACE抑制率趋于稳定。高粱蛋白ACE抑制肽经温度和酸碱处理后,ACE抑制活性在68.1%—71.31%,保持了良好的抑制活性;高粱蛋白ACE抑制肽在体外经胃肠道酶系消化酶解后,ACE抑制活性均高于73%,依然保持了较强的ACE抑制活性,说明挤压协同酶法制备的高粱蛋白ACE抑制肽具有长期保存有效性,同时能够在胃肠道消化后保持生物活性。 【结论】 采用挤压协同酶法可以显著提高高粱蛋白酶解液的水解度和ACE抑制肽的活性,同时制备的高粱蛋白ACE抑制肽具有良好的稳定性,为拓宽高粱的利用和制备功能性食品配料提供了一条新途径。
周剑敏,尹方平,于晨,汤晓智. 挤压协同酶法制备高粱蛋白ACE抑制肽及其稳定性[J]. 中国农业科学, 2019, 52(2): 339-349.
ZHOU JianMin,YIN FangPing,YU Chen,TANG XiaoZhi. Preparation and Stability of Sorghum ACE Inhibitory Peptides by Extrusion-Enzyme Synergistic Method[J]. Scientia Agricultura Sinica, 2019, 52(2): 339-349.
| [1] |
WHITE J W, ALAGARSWAMY G, OTTMAN M J, PORTER C H, SINGH U, HOOGENBOOM G . An overview of CERES-sorghum as implemented in the cropping system model version 4.5. Agronomy Journal, 2015,107(6):1987-2002.
doi: 10.2134/agronj15.0102 |
| [2] |
LINGLE S E, TEW T L, RUKAVINA H, BOYKIN D L . Post-harvest changes in sweet sorghum II: pH, acidity, protein, starch, and mannitol. Bioenergy Research, 2013,6(1):178-187.
doi: 10.1007/s12155-012-9248-5 |
| [3] |
VERGARA-BARBERÁN M, MOMPÓ-ROSELLÓ O, LERMA- GARCÍA M J, HERRERO-MARTÍNEZ J M, SIMO-ALFONSO E F . Enzyme-assisted extraction of proteins from citrus, fruits and prediction of their cultivar using protein profiles obtained by capillary gel electrophoresis. Food Control, 2017,72:14-19.
doi: 10.1016/j.foodcont.2016.07.025 |
| [4] | 陈子涵, 蒋继宏, 鞠秀云, 刘金娟 . 各食用米中活性成分及其抗氧化活性. 食品工业科技,2018(3):71-75. |
| CHEN Z H, JIANG J H, JU X Y, LIU J J . The bioactive compounds and their antioxidant activity of kinds of edible rice.Science & Technology of Food Industry, 2018(3):71-75. (in Chinese) | |
| [5] | MKANDAWIRE N L, KAUFMAN R C, BEAN S R, WELLER C L, JACKSON D S, ROSE D J . Effects of sorghum (Sorghum bicolor(L.) Moench) tannins on α-amylase activity and in vitro digestibility of starch in raw and processed flours. Journal of Agricultural & Food Chemistry, 2013,61(18):4448-4454. |
| [6] | WONG J H, LAU T, CAI N, SINGH J, PEDERSEN J F, VENSEL W H, HURKMAN W J, WILSON J D, LEMAUX P G, BUCHANAN B B . Digestibility of protein and starch from sorghum (Sorghum bicolor) is linked to biochemical and structural features of grain endosperm. Journal of Cereal Science, 2009,49(1):73-82. |
| [7] |
EZEOGU L I, DUODU K G, JRN T . Effects of endosperm texture and cooking conditions on the in vitro starch digestibility of sorghum and maize flours. Journal of Cereal Science, 2005,42(1):33-44.
doi: 10.1016/j.jcs.2005.02.002 |
| [8] | TAYLOR J, TAYLOR J R N . Alleviation of the adverse effect of cooking on sorghum protein digestibility through fermentation in traditional African porridges. International Journal of Food Science & Technology, 2010,37(2):129-137. |
| [9] | 阮晓慧, 韩军岐, 张润光, 张有林 . 食源性生物活性肽制备工艺、功能特性及应用研究进展. 食品与发酵工业, 2016,42(6):248-253. |
| RUAN X H, HAN J Q, ZHANG R G, ZHANG Y L . Progress in the preparation, functional properties and applications of food-derived bioactive peptides. Food and Fermentation Industries, 2016,42(6):248-253. (in Chinese) | |
| [10] |
BAH C S, CARNE A, MCCONNELL M A, MROS S, BEKHIT A E A . Production of bioactive peptide hydrolysates from deer, sheep, pig and cattle red blood cell fractions using plant and fungal protease preparations. Food Chemistry, 2016,202:458-466.
doi: 10.1016/j.foodchem.2016.02.020 |
| [11] | PIOVESANA S, CAPRIOTTI A L, CAVALIERE C, BARBERA G L, MONTONE C M, CHIOZZI R Z, LAGANÀ A . Recent trends and analytical challenges in plant bioactive peptide separation, identification and validation. Analytical & Bioanalytical Chemistry, 2018,410(15):1-20. |
| [12] | RUTHERFURD-MARKWICK K J, MOUGHAN P J . Bioactive peptides derived from food. Journal of AOAC International, 2005,88(3):955-966. |
| [13] |
DASKAYADIKMEN C, YUCETEPE A, KARBANCIOGLUGULER F, DASKAYA H, OZCELIK B . Angiotensin-I-converting enzyme (ACE)-Inhibitory peptides from plants . Nutrients, 2017,9(4):316-335.
doi: 10.3390/nu9040316 |
| [14] |
RUDOLPH S, LUNOW D, KAISER S, HENLE T . Identification and quantification of ACE-inhibiting peptides in enzymatic hydrolysates of plant proteins. Food Chemistry, 2017,224:19-25.
doi: 10.1016/j.foodchem.2016.12.039 |
| [15] | 梁婷婷, 佟立涛, 蒲华寅, 王丽丽, 周闲容, 鞠志远, 周素梅, 黄峻榕 . 动植物源蛋白体外消化产物结构性质及ACE抑制活性. 食品科学, 2018,39(4):6-12. |
| LIANG T T, TONG L T, PU H Y, WANG L L, ZHOU X R, JU Z Y, ZHOU S M, HUANG J R . Structures and angiotensin converting enzyme (ACE) inhibitory activity of in vitro digests of animal and plant proteins. Food Science, 2018,39(4):6-12. (in Chinese) | |
| [16] | IWANIAK A, MINKIEWICZ P, DAREWICZ M . Food-originating ACE inhibitors, including antihypertensive peptides, as preventive food components in blood pressure reduction. Comprehensive Reviews in Food Science & Food Safety, 2014,13(2):114-134. |
| [17] | PAN D, GUO Y . Optimization of sour milk fermentation for the production of ACE-inhibitory peptides and purification of a novel peptide from whey protein hydrolysate.International Dairy Journal,2010,20(7):472-479. |
| [18] | MOSLEHISHAD M, EHSANI M R, SALAMI M, MIRDAMADI S, EZZATPANAH H, NASLAJI A N, MOOSAVI-MOVAHEDI A A . The comparative assessment of ACE-inhibitory and antioxidant activities of peptide fractions obtained from fermented camel and bovine milk by lactobacillus rhamnosus PTCC 1637. International Dairy Journal, 2013,29(2):82-87. |
| [19] |
LÓPEZFANDIÑO R, OTTE J, JVAN C . Physiological, chemical and technological aspects of milk-protein-derived peptides with antihypertensive and ACE-inhibitory activity. International Dairy Journal, 2006,16(11):1277-1293.
doi: 10.1016/j.idairyj.2006.06.004 |
| [20] | WU S, FENG X, LAN X, XU Y, & LIAO D . Purification and identification of angiotensin-I converting enzyme (ACE) inhibitory peptide from lizard fish (Saurida elongata) hydrolysate. Journal of Functional Foods, 2015,13:295-299. |
| [21] |
GARCÍA-MORENO P J, ESPEJO-CARPIO F J, GUADIX A, GUADIX E M . Production and identification of angiotensin I-converting enzyme (ACE) inhibitory peptides from Mediterranean fish discards. Journal of Functional Foods, 2015,18:95-105.
doi: 10.1016/j.jff.2015.06.062 |
| [22] | BHAT I, KARUNASAGAR I . Antihypertensive activity of fish protein hydrolysates and its peptides. Critical Reviews in Food Science & Nutrition, 2018: 1-12. |
| [23] | 翟爱华, 袁文帅 . 米糠蛋白ACE抑制肽在大鼠体内降压效果的研究. 食品工业科技, 2015,36(23):348-352. |
| ZHAI A H, YUAN W S . Study on antihypertensive effect of the rice bran protein ace inhibitory peptides on rats. Science & Technology of Food Industry, 2015,36(23):348-352. (in Chinese) | |
| [24] | LIU X, MIAO X, WU D, LIU C, FANG L, LIU J, MIN W . Purification and identification of ACE-inhibiting peptides from wild pine nut peptide fractions (PNPF). European Food Research & Technology, 2017,244(6):1-10. |
| [25] | TERASHIMA M, BABA T, IKEMOTO N, KATAYAMA M, MORIMOTO T, MATSUMURA S . Novel angiotensin-converting enzyme (ACE) inhibitory peptides derived from boneless chicken leg meat. Journal of Agricultural & Food Chemistry, 2010,58(12):7432-7436. |
| [26] | LI X, LI Y, HUANG X, ZHENG J, ZHANG F, KAN J . Identification and characterization of a novel angiotensin I-converting enzyme inhibitory peptide (ACEIP) from silkworm pupa. Food Science & Biotechnology, 2014,23(4):1017-1023. |
| [27] |
WHITE B L, SANDERS T H, DAVIS J P . Potential ACE-inhibitory activity and nanoLC-MS/MS sequencing of peptides derived from aflatoxin contaminated peanut meal. LWT-Food Science and Technology, 2014,56(2):537-542.
doi: 10.1016/j.lwt.2013.11.039 |
| [28] |
RONG H, GIRGIH A T, ELODIE R, LAURENT B, XING-RONG J, ALUKO R E . Selective separation and concentration of antihypertensive peptides from rapeseed protein hydrolysate by electrodialysis with ultrafiltration membranes. Food Chemistry, 2016,197(Pt A):1008-1014.
doi: 10.1016/j.foodchem.2015.11.081 |
| [29] | GAO D, CHANG T, LI H, & CAO Y . Angiotensin I-converting enzyme inhibitor derived from cottonseed protein hydrolysate. African Journal of Biotechnology, 2010,9(53):8977-8983. |
| [30] | SHOBAKO N, OGAWA Y, ISHIKADO A, HARADA K, KOBAYASHI E, SUIDO H, KUSAKARI T, MAEDA M, SUWA M, MATSUMOTO M, KANAMOTO R, OHINATA K . A novel anti-hypertensive peptide identified in thermolysin-digested rice bran. Molecular Nutrition & Food Research, 2017: 1700-1732. |
| [31] |
HUANG W H, SUN J, HE H, DONG H W, LI J T . Antihypertensive effect of corn peptides, produced by a continuous production in enzymatic membrane reactor, in spontaneously hypertensive rats. Food Chemistry, 2011,128(4):968-973.
doi: 10.1016/j.foodchem.2011.03.127 |
| [32] |
BELTON P S, DELGADILLO I, HALFORD N G, SHEWRY P R . Kafirin structure and functionality. Journal of Cereal Science, 2006,44(3):272-286.
doi: 10.1016/j.jcs.2006.05.004 |
| [33] | KAMATH V, NIKETH S, CHANDRASHEKAR A, RAJINI P S . Chymotryptic hydrolysates of α-kafirin, the storage protein of sorghum (Sorghum bicolor) exhibited angiotensin converting enzyme inhibitory activity. Food Chemistry, 2007,100(1):306-311. |
| [34] | 杜金娟 . 甜高粱ACE抑制肽的制备及其特性研究[D]. 镇江: 江苏科技大学, 2013. |
| DU J J . Preparation and physicochemical properties of ACE-inhibitory peptides from sweet sorghum protein[D]. Zhenjiang: Jiangsu University of Science and Technology, 2013. ( in Chinese) | |
| [35] |
WU Q Y, DU J J, JIA J Q, KUANG C . Production of ACE inhibitory peptides from sweet sorghum grain protein using alcalase: Hydrolysis kinetic, purification and molecular docking study. Food Chemistry, 2016,199:140-149.
doi: 10.1016/j.foodchem.2015.12.012 |
| [36] | CAMARGO F I, CORTEZ D A, UEDA-NAKAMURA T, NAKAMURA C V, DIAS FILHO B P . Antiviral activity and mode of action of a peptide isolated from sorghum bicolor. Phytomedicine International Journal of Phytotherapy & Phytopharmacology, 2008,15(3):202-208. |
| [37] | RIAZ M N. Extruders in Food Applications. USA: CRC Press, 2000. |
| [38] |
SHERI J . BATTERMAN‐AZCONA, LAWTON J W, BRUCE R. HAMAKER. Effect of specific mechanical energy on protein bodies and α‐zeins in corn flour extrudates. Cereal Chemistry, 1999,76(2):316-320.
doi: 10.1094/CCHEM.1999.76.2.316 |
| [39] | FAPOJUWO O, MAGA J A, JANSEN G R . Effect of extrusion cooking on in vitro protein digestibility of sorghum. Journal of Food Science, 2010,52(1):218-219. |
| [40] |
DAHLIN K, LORENZ K . Protein digestibility of extruded cereal grains. Food Chemistry, 1993,48(1):13-18.
doi: 10.1016/0308-8146(93)90214-Z |
| [41] | HAMAKER B R, MERTZ E T, AXTELL J D . Effect of extrusion on sorghum kafirin solubility. Cereal Chemistry, 1994,71(5):515-517. |
| [42] | ZHAN X, WANG D, BEAN S R, MO X, SUN X S, BOYLE D . Ethanol production from supercritical-fluid-extrusion cooked sorghum. Industrial Crops & Products, 2006,23(3):304-310. |
| [43] | 郭兴凤 . 蛋白质水解度的测定. 中国油脂, 2000,25(6):176-177. |
| GUO X F . Determination of hydrolysis degree of protein. China Oils & Fats, 2016, 25(6):176-177. (in Chinese) | |
| [44] |
SHALABY S M, ZAKORA M, OTTE J . Performance of two commonly used angiotensin-I-converting enzyme inhibition assays using FAPGG and HHL as substrates. Journal of Dairy Research, 2006,73:178-186.
doi: 10.1017/S0022029905001639 |
| [45] | 解铁民, 高扬, 张英蕾, 李哲滨 . 挤压参数对薏米挤出产品物理特性的影响. 食品与机械, 2013,29(1):18-22. |
| XIE T M, GAO Y, ZHANG Y L, LI Z B . Extrusion cooking suitability of job's tears and properties of extrudate. Food & Machinery, 2013,29(1):18-22. (in Chinese) | |
| [46] |
YU C, LIU J, TANG X, SHEN X, LIU S . Correlations between the physical properties and chemical bonds of extruded corn starch enriched with whey protein concentrate. RSC Advances, 2017,7(20):11979-11986.
doi: 10.1039/C6RA26764E |
| [47] |
LI M, HASJIM J, XIE F, HALLEY P J, GILBERT R G . Shear degradation of molecular, crystalline, and granular structures of starch during extrusion. Starch‐Stärke, 2014,66(7/8):595-605.
doi: 10.1002/star.201300201 |
| [48] |
DUODU K G, NUNES A, DELGADILLO I, PARKER M L, MILLS E N C, BELTON P S, TAYLOR J R N, PARKER M L, PARKER M L . Effect of grain structure and cooking on sorghum and maize in vitro, protein digestibility. Journal of Cereal Science, 2002,35(2):161-174.
doi: 10.1006/jcrs.2001.0411 |
| [49] | SCHOBER T J, BEAN S R, BOYLE D L . Gluten-free sorghum bread improved by sourdough fermentation: Biochemical, rheological, and microstructural background. Journal of Agricultural & Food Chemistry, 2007,55(13):5137-5146. |
| [50] | HAMAKER B R, BUGUSU B A . Overview: sorghum proteins and food quality//Workshop on the proteins of sorghum and millets: Enhancing nutritional and functional properties for Africa. Pretoria: South Africa, 2003. |
| [51] | HERNÁNDEZ-LEDESMA B, CONTRERAS M D M, RECIO I . Antihypertensive peptides: production, bioavailability and incorporation into foods. Advances in Colloid & Interface Science, 2010,165(1):23-35. |
| [52] |
MAHASUKHONTHACHAT K, SOPADE P A, GIDLEY M J . Kinetics of starch digestion and functional properties of twin- screw extruded sorghum. Journal of Cereal Science, 2010,51(3):392-401.
doi: 10.1016/j.jcs.2010.02.008 |
| [53] | 杜双奎, 魏益民, 张波 . 挤压膨化过程中物料组分的变化分析. 中国粮油学报, 2005,20(3):39-43. |
| DU S K, WEI Y M, ZHANG B . Changes of material components during extrusion. Journal of the Chinese Cereals & Oils Association, 2005,20(3):39-43. (in Chinese) | |
| [54] | BHATTACHARYA M, HANNA M A . kinetics of starch gelatinization during extrusion cooking. Journal of Food Science, 2010,52(3):764-766. |
| [55] |
LI M, HASJIM J, XIE F W, HALLEY P J, GILBERT R G . Shear degradation of molecular, crystalline, and granular structures of starch during extrusion. Starch - Stärke, 2014,66(7/8):595-605.
doi: 10.1002/star.201300201 |
| [56] |
GROPPER M, MORARU C I, KOKINI J L . Effect of specific mechanical energy on properties of extruded protein-starch mixtures. Cereal Chemistry, 2002,79(3):429-433.
doi: 10.1094/CCHEM.2002.79.3.429 |
| [57] |
YURYEV V P, ZASYPKIN D V, ALEXEYEV V V, GENIN Y V, EZERNITSKAYA M G, TOLSTOGUZOV V B . Structure of protein texturates obtained by thermoplastic extrusion. Food/Nahrung, 1990,34(7):607-613.
doi: 10.1002/(ISSN)1521-3803 |
| [58] | MAURICE T J, STANLEY D W . Texture-structure relationships in texturized soy protein iv. influence of process variables on extrusion texturization. Canadian Institute of Food Science & Technology Journal, 1978,11(1):1-6. |
| [59] | LI Y, SOPADE P A . Kinetics of protein digestion and molecular weight profiles in a model sorghum-barley blend as affected by extrusion conditions// Cereal Chemistry Conference, 2012. |
| [60] | 方勇, 王红盼, 裴斐, 马宁, 汤晓智, 杨文建, 胡秋辉 . 挤压膨化对金针菇-发芽糙米复配粉的消化特性及挥发性物质的影响. 中国农业科学, 2016,49(23):4606-4618. |
| FANG Y, WANG H P, PEI F, NING M, TANG X Z, YANG W J, HU Q H . Effect of extrusion on digestion properties and volatile compounds in germinated brown rice compounded of flammulina velutipes flour. Scientia Agricultura Sinica, 2016,49(23):4606-4618. (in Chinese) | |
| [61] | 陈锋亮, 魏益民, 张波 . 物料含水率对大豆蛋白挤压产品组织化质量的影响. 中国农业科学, 2010,43(4):805-811. |
| CHEN F L, WEI Y M, ZHANG B . Effect of moisture content on quality of texturization of product extruded from soy protein isolate. Scientia Agricultura Sinica, 2010,43(4):805-811. (in Chinese) | |
| [62] | 房岩强, 魏益民, 张波 . 蛋白质结构在挤压过程中的变化. 中国粮油学报, 2013,28(5):100-104, 111. |
| FANG Y, WEI Y M, ZHANG B . Transformations of protein structure in extrusion . Journal of the Chinese Cereals & Oils Association, 2013,28(5), 100-104, 111. (in Chinese) | |
| [63] |
JAFARI M, KOOCHEKI A, MILANI E . Effect of extrusion cooking on chemical structure, morphology, crystallinity and thermal properties of sorghum flour extrudates. Journal of Cereal Science, 2017,75:324-331.
doi: 10.1016/j.jcs.2017.05.005 |
| [64] | 梁婷婷, 佟立涛, 蒲华寅, 王丽丽, 周闲容, 鞠志远, 周素梅, 黄峻榕 . 动植物源蛋白体外消化产物结构性质及ACE抑制活性. 食品科学, 2018,39(4):6-12. |
| LIANG T T, TONG L T, PU H Y, WANG L L, ZHOU X R, JU Z Y, ZHOU S M, HUANG J R . Structures and angiotensin converting enzyme (ACE) inhibitory activity of in vitro digests of animal and plant proteins. Food Science, 2018,39(4):6-12. (in Chinese) | |
| [65] | TOOPCHAM T, ROYTRAKUL S, YONGSAWATDIGUL J . Characterization and identification of angiotensin I-converting enzyme (ACE) inhibitory peptides derived from tilapia using Virgibacillus halodenitrificans, SK1-3-7 proteinases. Journal of Functional Foods, 2015,14:435-444. |
| [66] | WOOD A J, GOLDSBROUGH P B . Characterization and expression of dehydrins in water-stressed sorghum bicolor. Physiologia Plantarum, 2010,99(1):144-152. |
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