Enzymatic hydrolysis of soy proteins and the hydrolysates utilisation
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[1] J. Rhee,et al. Hydrolysis of soybean isoflavone glucosides by lactic acid bacteria , 2002, Biotechnology Letters.
[2] K. Inouye,et al. Functional properties of soy protein hydrolysates obtained by selective proteolysis , 2005 .
[3] K. Shibasaki,et al. Major proteins of soybean seeds. A straightforward fractionation and their characterization. , 1976, Journal of agricultural and food chemistry.
[4] K. Setchell,et al. Evidence for lack of absorption of soy isoflavone glycosides in humans, supporting the crucial role of intestinal metabolism for bioavailability. , 2002, The American journal of clinical nutrition.
[5] M. Kikuchi,et al. Soy isoflavone aglycones are absorbed faster and in higher amounts than their glucosides in humans. , 2000, The Journal of nutrition.
[6] M. Garro,et al. Enzymatic hydrolysis of soybean protein using lactic acid bacteria , 2008 .
[7] M. Guo,et al. Enzymatic preparation of immunomodulating hydrolysates from soy proteins. , 2008, Bioresource technology.
[8] D. Żmudziński,et al. Enzymic modification of extruded soy protein concentrates as a method of obtaining new functional food components , 2004 .
[9] J. Adler-Nissen,et al. The Influence of Peptide Chain Length on Taste and Functional Properties of Enzymatically Modified Soy Protein , 1979 .
[10] I. Shaw,et al. Bioactive isoflavones in functional foods: the importance of gut microflora on bioavailability. , 2003, Nutrition reviews.
[11] A. Robichon,et al. Coupling of bitter receptor to phosphodiesterase through transducin in taste receptor cells , 1995, Nature.
[12] Y. Xiong,et al. Antioxidant Activity of Soy Protein Hydrolysates in a Liposomal System , 2002 .
[13] Que-King Wei,et al. Using of Lactobacillus and Bifidobacterium to product the isoflavone aglycones in fermented soymilk. , 2007, International journal of food microbiology.
[14] P. D. Collier,et al. Mechanism of formation of chloropropanols present in protein hydrolysates , 1991 .
[15] Jiaoyan Ren,et al. Modifications of soy protein isolates using combined extrusion pre-treatment and controlled enzymatic hydrolysis for improved emulsifying properties , 2011 .
[16] Cherl‐Ho Lee,et al. Characterization of hydrolysates produced by mild-acid treatment and enzymatic hydrolysis of defatted soybean flour , 2001 .
[17] M. Friedman,et al. Ninhydrin Assay For Proteolysis in Ripening Cheese , 1988 .
[18] M. Añón,et al. Relation between solubility and surface hydrophobicity as an indicator of modifications during preparation processes of commercial and laboratory-prepared soy protein isolates. , 2000, Journal of agricultural and food chemistry.
[19] K. H. Ney,et al. Voraussage der Bitterkeit von Peptiden aus deren Aminosäurezu-sammensetzung , 1971 .
[20] R. Ipsen,et al. Effect of limited hydrolysis on the interfacial rheology and foaming properties of beta-lactoglobulin A. , 2001, Colloids and surfaces. B, Biointerfaces.
[21] K. Maehashi,et al. Bitter peptides and bitter taste receptors , 2009, Cellular and Molecular Life Sciences.
[22] N. Ryba,et al. The receptors and coding logic for bitter taste , 2005, Nature.
[23] Y. Chu,et al. Functional properties of soy protein hydrolysate produced from a continuous membrane reactor system , 1999 .
[24] S. Frokjaer. Use of hydrolysates for protein supplementation , 1994 .
[25] N. Ryba,et al. Coding of Sweet, Bitter, and Umami Tastes Different Receptor Cells Sharing Similar Signaling Pathways , 2003, Cell.
[26] Karina D. Martínez,et al. Effect of limited hydrolysis of soy protein on the interactions with polysaccharides at the air–water interface , 2007 .
[27] M. Barać,et al. Effect of Limited Hydrolysis on Traditional Soy Protein Concentrate , 2006 .
[28] N. Shah,et al. Development of an isoflavone aglycone-enriched soymilk using soy germ, soy protein isolate and bifidobacteria , 2004 .
[29] J. Adler-Nissen. Determination of the degree of hydrolysis of food protein hydrolysates by trinitrobenzenesulfonic acid. , 1979, Journal of agricultural and food chemistry.
[30] J. Patino,et al. The effect of enzymatic treatment of a sunflower protein isolate on the rate of adsorption at the air–water interface , 2007 .
[31] E. Peñas,et al. Analytical, Nutritional and Clinical Methods High pressure and the enzymatic hydrolysis of soybean whey proteins , 2004 .
[32] Nan Unklesbay,et al. Hydrophobicity of bitter peptides from soy protein hydrolysates. , 2004, Journal of agricultural and food chemistry.
[33] M. Aaslyng,et al. Comparison of the Aroma Characteristics of Acid-Hydrolyzed and Enzyme-Hydrolyzed Vegetable Proteins Produced from Soy , 1998 .
[34] K. Nokihara,et al. Antioxidative Properties of Histidine-Containing Peptides Designed from Peptide Fragments Found in the Digests of a Soybean Protein. , 1998, Journal of agricultural and food chemistry.
[35] A. Siemensma,et al. The importance of peptide lengths in hypoallergenic infant formulae , 1993 .
[36] S. Hendrich. Bioavailability of isoflavones. , 2002, Journal of chromatography. B, Analytical technologies in the biomedical and life sciences.
[37] K. Nokihara,et al. Antioxidant activity of designed peptides based on the antioxidative peptide isolated from digests of a soybean protein , 1996 .
[38] J. Lampe,et al. Influence of soybean processing, habitual diet, and soy dose on urinary isoflavonoid excretion. , 1998, The American journal of clinical nutrition.
[39] E. Offord,et al. Hydrolysis of isoflavone glycosides to aglycones by beta-glycosidase does not alter plasma and urine isoflavone pharmacokinetics in postmenopausal women. , 2002, The Journal of nutrition.
[40] R. Margolskee,et al. Blocking taste receptor activation of gustducin inhibits gustatory responses to bitter compounds. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[41] R. Margolskee,et al. Trpm5 null mice respond to bitter, sweet, and umami compounds. , 2006, Chemical senses.
[42] N. Shah,et al. Enzymic Transformation of Isoflavone Phytoestrogens in Soymilk by β-Glucosidase-Producing Bifidobacteria , 2002 .
[43] Yuji Imaizumi,et al. Functional Interaction between T2R Taste Receptors and G-Protein α Subunits Expressed in Taste Receptor Cells , 2003, The Journal of Neuroscience.
[44] S. Braun,et al. Enzymatic production of protein hydrolysates for food use , 1994 .
[45] S. Ortiz,et al. Analysis of products, mechanisms of reaction, and some functional properties of soy protein hydrolysates , 2000 .
[46] Wen-Dee Chiang,et al. Enhancing the anti-adipogenic activity of soy protein by limited hydrolysis with Flavourzyme and ultrafiltration. , 2010 .
[47] S. Arai,et al. Comprehensive study on G protein α-subunits in taste bud cells, with special reference to the occurrence of Gαi2 as a major Gα species , 2000 .
[48] N. Shah,et al. Enhancing the biotransformation of isoflavones in soymilk supplemented with lactose using probiotic bacteria during extended fermentation. , 2010, Journal of food science.
[49] J. Wagner,et al. Hydrolysates of native and modified soy protein isolates: structural characteristics, solubility and foaming properties , 2002 .
[50] F. Ziegler,et al. Efficiency of enteral nitrogen support in surgical patients: small peptides v non-degraded proteins. , 1990, Gut.
[51] K. Hayashi,et al. Debittering of enzymatic hydrolysates using an aminopeptidase from the edible basidiomycete Grifola frondosa. , 2002, Journal of bioscience and bioengineering.
[52] Robert Masse,et al. Production and characterization of bioactive peptides from soy hydrolysate and soy-fermented food. , 2004 .
[53] M. Jara-Marini,et al. Enzymatic Hydrolysis and Synthesis of Soy Protein to Improve its Amino Acid Composition and Functional Properties , 2000 .
[54] T. Hofmann,et al. Sensomics mapping and identification of the key bitter metabolites in Gouda cheese. , 2008, Journal of agricultural and food chemistry.
[55] J. Hamada,et al. Effect of Limited Proteolysis on the Enzymatic Phosphorylation of Soy Protein , 1996 .
[56] O. Donkor,et al. Production of beta-glucosidase and hydrolysis of isoflavone phytoestrogens by Lactobacillus acidophilus, Bifidobacterium lactis, and Lactobacillus casei in soymilk. , 2007, Journal of food science.
[57] C. Cordle. Control of food allergies using protein hydrolysates , 1994 .
[58] R. Fitzgerald,et al. Enzymatic debittering of food protein hydrolysates. , 2006, Biotechnology advances.
[59] S. C. Garner,et al. Health potential of soy isoflavones for menopausal women , 1999, Public Health Nutrition.
[60] L. Skibsted,et al. Effect of high hydrostatic pressure on the enzymic hydrolysis of β-lactoglobulin B by trypsin, thermolysin and pepsin , 1996, Journal of Dairy Research.
[61] J. H. Kim,et al. Conversion of isoflavone glucosides to aglycones in soymilk by fermentation with lactic acid bacteria. , 2007, Journal of food science.
[62] Wang Zhang,et al. Enzymatic hydrolysis of soy protein isolate and effect of succinylation on the functional properties of resulting protein hydrolysates , 1998 .
[63] L. Johnson,et al. Limited hydrolysis of soy proteins with endo- and exoproteases , 2004 .
[64] D. Combes,et al. Effect of different proteases on bitterness of hemoglobin hydrolysates , 1997, Applied biochemistry and biotechnology.
[65] G. Beecher,et al. Isoflavones in retail and institutional soy foods. , 1999, Journal of agricultural and food chemistry.
[66] Zhongqing Ma,et al. Hydrolytic characteristics of chitosan-immobilized As 1.398 neutral proteinase (from B. subtilis) to soybean protein , 1996 .
[67] N. Nio,et al. Characteristic Property of Low Bitterness in Protein Hydrolysates by a Novel Soybean Protease D3 , 2006 .
[68] Karina D. Martínez,et al. Effects of soy protein hydrolysis and polysaccharides addition on foaming properties studied by cluster analysis , 2011 .
[69] H. Adlercreutz. Can rye intake decrease risk of human breast cancer? , 2010, Food & nutrition research.
[70] N. Ryba,et al. T2Rs Function as Bitter Taste Receptors , 2000, Cell.
[71] F. Ziegler,et al. Pharmacokinetic assessment of an oligopeptide-based enteral formula in abdominal surgery patients. , 1998, The American journal of clinical nutrition.
[72] D. Walsh,et al. Modification of the nitrogen solubility properties of soy protein isolate following proteolysis and transglutaminase cross-linking , 2003 .
[73] E. Peñas,et al. Enzymatic proteolysis, under high pressure of soybean whey: Analysis of peptides and the allergen Gly m 1 in the hydrolysates , 2006 .
[74] L. Johnson,et al. Physicochemical and Functional Properties of Soy Protein Substrates Modified by Low Levels of Protease Hydrolysis , 2005 .
[75] V. Abram,et al. Bitterness intensity of soybean protein hydrolysates—chemical and organoleptic characterization , 1996 .
[76] C. Jacobsen,et al. The pH-stat and its use in biochemistry. , 1957, Methods of biochemical analysis.
[77] Jiun-Rong Chen,et al. SOYBEAN PROTEIN‐DERIVED HYDROLYSATE AFFECTS BLOOD PRESSURE IN SPONTANEOUSLY HYPERTENSIVE RATS , 2004 .
[78] C. Dambmann,et al. Improved Method for Determining Food Protein Degree of Hydrolysis , 2001 .
[79] F. Church,et al. Spectrophotometric Assay Using o-Phthaldialdehyde for Determination of Proteolysis in Milk and Isolated Milk Proteins , 1983 .
[80] N. Shah,et al. Biotransformation of Isoflavones by Bifidobacteria in Fermented Soymilk Supplemented with D‐Glucose and L‐Cysteine , 2003 .
[81] D. Żmudziński,et al. New protein preparations from soy flour obtained by limited enzymic hydrolysis of extrudates , 2004 .
[82] Y. Fuke,et al. Nature of stem bromelain treatments on the aggregation and gelation of soybean proteins , 1985 .
[83] Tiande Cai,et al. Physicochemical Properties and Yields of Sunflower Protein Enzymatic Hydrolysates As Affected by Enzyme and Defatted Sunflower Meal , 1996 .
[84] J. Rhee,et al. Soy Protein Hydrolysate Debittering by Lysine‐Acetylation , 1994 .
[85] H. Oku,et al. Soybean-milk-coagulating activity of Bacillus pumilus derives from a serine proteinase , 2000, Applied Microbiology and Biotechnology.
[86] A. Clemente,et al. Protein quality of chickpea (Cicer arietinum L.) protein hydrolysates , 1999 .
[87] R. Jost,et al. Effect of High-pressure Treatment on the Tryptic Hydrolysis of Bovine β-Lactoglobulin AB , 1998 .
[88] S. Isobe,et al. Changes of soy protein under ultra-high hydraulic pressure , 2007 .
[89] Xinhuai Zhao,et al. Limited hydrolysis of soybean protein concentrate and isolate with two proteases and the impact on emulsifying activity index of hydrolysates , 2009 .
[90] Robert F Margolskee,et al. Molecular Mechanisms of Bitter and Sweet Taste Transduction* , 2002, The Journal of Biological Chemistry.
[91] J. Parajó,et al. Antioxidant properties of ultrafiltration-recovered soy protein fractions from industrial effluents and their hydrolysates , 2006 .
[92] J. S. Madsen,et al. Hydrolysis of β-lactoglobulin by four different proteinases monitored by capillary electrophoresis and high performance liquid chromatography , 1997 .
[93] B. Saha,et al. Debittering of protein hydrolyzates. , 2001, Biotechnology advances.
[94] N. Shah,et al. Evaluation of enzymic potential for biotransformation of isoflavone phytoestrogen in soymilk by Bifidobacterium animalis, Lactobacillus acidophilus and Lactobacillus casei , 2006 .
[95] E. Liman. Changing Taste by Targeting the Ion Channel TRPM5~!2009-12-02~!2010-02-22~!2010-07-26~! , 2010 .
[96] Khee Choon Rhee,et al. Functional properties of proteolytic enzyme modified soy protein isolate , 1990 .
[97] F. Yamauchi,et al. Structural Analysis of Antioxidative Peptides from Soybean .beta.-Conglycinin , 1995 .
[98] A. Renken,et al. Continuous Monitoring of Enzymatic Whey Protein Hydrolysis. Correlation of Base Consumption with Soluble Nitrogen Content , 1994 .
[99] H. Matsunami,et al. Receptors for bitter and sweet taste , 2002, Current Opinion in Neurobiology.
[100] S. Koyama,et al. Practical debittering using model peptides and related compounds. , 1990, Agricultural and biological chemistry.
[101] R. Aluko,et al. Soybean foods and their benefits: potential mechanisms of action. , 2005, Nutrition reviews.
[102] J. Ashton,et al. Stability of β-glucosidase Activity Produced by Bifidobacterium and Lactobacillus spp. in Fermented Soymilk During Processing and Storage , 2006 .
[103] P. Murphy,et al. Isoflavone content in commercial soybean foods , 1994 .
[104] K. Tokuyasu,et al. Debittering of Protein Hydrolysates Using Aeromonas caviae Aminopeptidase , 1997 .
[105] Wang Zhang,et al. Effect of succinylation on the physicochemical properties of soy protein hydrolysate , 2001 .