What is the impact of amino acid mutations in the primary structure of caseins on the composition and functionality of milk and dairy products?
Tài liệu tham khảo
Adamov, 2020, Allele and genotype frequencies of the kappa-casein (CSN3) locus in Macedonian Holstein-Frisian cattle, Maced. Vet. Rev., 43, 45, 10.2478/macvetrev-2020-0013
Anema, 2019, Age gelation, sedimentation, and creaming in UHT milk: a review, Compr. Rev. Food Sci. Food Saf., 18, 140, 10.1111/1541-4337.12407
Anema, 2021, Heat-induced changes in caseins and casein micelles, including interactions with denatured whey proteins, Int. Dairy J., 122, 10.1016/j.idairyj.2021.105136
Aschaffenburg, 1963, Inherited casein variants in cow's milk: II. Breed differences in the occurrence of β-casein variants, J. Dairy Res., 30, 251, 10.1017/S0022029900011444
Aschaffenburg, 1968, Section G. Genetics. Genetic variants of milk proteins: their breed distribution, J. Dairy Res., 35, 447, 10.1017/S0022029900019208
Atamer, 2017, Bovine β-casein: isolation, properties and functionality. A review, Int. Dairy J., 66, 115, 10.1016/j.idairyj.2016.11.010
Berry, 2020, Defining the origin and function of bovine milk proteins through genomics: the biological implications of manipulation and modification, 143
Bijl, 2014, Factors influencing casein micelle size in milk of individual cows: genetic variants and glycosylation of κ-casein, Int. Dairy J., 34, 135, 10.1016/j.idairyj.2013.08.001
Bijl, 2020, Posttranslational modifications of caseins, 173
Bijl, 2019, A quantitative model of the bovine casein micelle: ion equilibria and calcium phosphate sequestration by individual caseins in bovine milk, Eur. Biophys. J., 48, 45, 10.1007/s00249-018-1330-2
Bisutti, 2022, The β-casein (CSN2) A2 allelic variant alters milk protein profile and slightly worsens coagulation properties in Holstein cows, J. Dairy Sci., 105, 1, 10.3168/jds.2021-21537
Boettcher, 2004, Effects of casein haplotypes on milk production traits in Italian Holstein and Brown Swiss cattle, J. Dairy Sci., 87, 4311, 10.3168/jds.S0022-0302(04)73576-6
Bonfatti, 2014, Glycosylation of κ-casein: genetic and nongenetic variation and effects on rennet coagulation properties of milk, J. Dairy Sci., 97, 1961, 10.3168/jds.2013-7418
Bonfatti, 2010, Effects of β-κ-casein (CSN2-CSN3) haplotypes, β-lactoglobulin (BLG) genotypes, and detailed protein composition on coagulation properties of individual milk of Simmental cows, J. Dairy Sci., 93, 3809, 10.3168/jds.2009-2779
Bonfatti, 2008, Validation of a new reversed-phase high-performance liquid chromatography method for separation and quantification of bovine milk protein genetic variants, J. Chromatogr. A, 1195, 101, 10.1016/j.chroma.2008.04.075
Broadbent, 2021, Quantitative mass spectrometry-based analysis of proteins related to cattle and their products – focus on cows' milk beta-casein proteoforms, Methods, 186, 112, 10.1016/j.ymeth.2020.09.011
Caroli, 2004, Genetic structure of milk protein polymorphisms and effects on milk production traits in a local dairy cattle, J. Anim. Breed. Genet., 121, 119, 10.1111/j.1439-0388.2003.00443.x
Carver, 2019, Functional and dysfunctional folding, association and aggregation of caseins, Advances in Protein Chemistry and Structural Biology, 118, 163, 10.1016/bs.apcsb.2019.09.002
Cendron, 2021, Effects of β- and κ-casein, and β-lactoglobulin single and composite genotypes on milk composition and milk coagulation properties of Italian Holsteins assessed by FT-MIR, Ital. J. Anim. Sci., 20, 2243, 10.1080/1828051X.2021.2011442
Chen, 2018, Foam and thin films of hydrophilic silica particles modified by β-casein, J. Colloid Interface Sci., 513, 357, 10.1016/j.jcis.2017.11.022
Chessa, 2007, Development of a single nucleotide polymorphism genotyping microarray platform for the identification of bovine milk protein genetic polymorphisms, J. Dairy Sci., 90, 451, 10.3168/jds.S0022-0302(07)72647-4
Choi, 2002, Effects of genetic variants of κ-casein and β-lactoglobulin and heat treatment of milk on cheese and whey compositions, Asian-Australas. J. Anim. Sci., 15, 732, 10.5713/ajas.2002.732
Chung, 1995, Milk protein polymorphisms as genetic marker in Korean native cattle, Asian-Australas. J. Anim. Sci., 8, 187, 10.5713/ajas.1995.187
Cipolat-Gotet, 2018, Variations in milk protein fractions affect the efficiency of the cheese-making process, J. Dairy Sci., 101, 8788, 10.3168/jds.2018-14503
Comin, 2008, Effects of composite β-and κ-casein genotypes on milk coagulation, quality, and yield traits in Italian Holstein cows, J. Dairy Sci., 91, 4022, 10.3168/jds.2007-0546
Creamer, 1982, Surface hydrophobicity of αs1-I, αs1-casein A and B and its implications in cheese structure, J. Dairy Sci., 65, 902, 10.3168/jds.S0022-0302(82)82289-3
Dalgleish, 1993, The enzymatic coagulation of milk, 69
Dalgleish, 2011, On the structural models of bovine casein micelles—review and possible improvements, Soft Matter, 7, 2265, 10.1039/C0SM00806K
Dalgleish, 2012, The structure of the casein micelle of milk and its changes during processing, Annu. Rev. Food Sci. Technol., 3, 449, 10.1146/annurev-food-022811-101214
Dalgleish, 1989, Size-related differences in bovine casein micelles, Biochim. Biophys. Acta Gen. Subj., 991, 383, 10.1016/0304-4165(89)90061-5
Dalgleish, 2004, A possible structure of the casein micelle based on high-resolution field-emission scanning electron microscopy, Int. Dairy J., 14, 1025, 10.1016/j.idairyj.2004.04.008
Daniloski, 2021, Health-related outcomes of genetic polymorphism of bovine β-casein variants: a systematic review of randomised controlled trials, Trends Food Sci. Technol., 111, 233, 10.1016/j.tifs.2021.02.073
Daniloski, 2022, Properties of sodium caseinate as affected by the β-casein phenotypes, J. Colloid Interface Sci., 626, 939, 10.1016/j.jcis.2022.07.021
Daniloski, 2022, Rheological and structural properties of acid-induced milk gels as a function of β-casein phenotype, Food Hydrocolloids, 131, 10.1016/j.foodhyd.2022.107846
Daniloski, 2022, Conformational and physicochemical characteristics of bovine skim milk obtained from cows with different genetic variants of β-casein, Food Hydrocolloids, 124, 10.1016/j.foodhyd.2021.107186
Daniloski, 2022, Authentication of β-casein milk phenotypes using FTIR spectroscopy, Int. Dairy J., 129, 10.1016/j.idairyj.2022.105350
Daniloski, 2021, Bovine β-Casomorphins: friends or Foes? A comprehensive assessment of evidence from in vitro and ex vivo studies, Trends Food Sci. Technol., 116, 681, 10.1016/j.tifs.2021.08.003
Daniloski, 2022, Impact of heating on the properties of A1/A1, A1/A2, and A2/A2 β-casein milk phenotypes, Food Hydrocolloids, 128, 10.1016/j.foodhyd.2022.107604
Darewicz, 2007, Formation and stabilization of emulsion with A 1, A 2 and B β-casein genetic variants, Eur. Food Res. Technol., 226, 147, 10.1007/s00217-006-0519-2
Darewicz, 2000, Dephosphorylation-induced structural changes in β-casein and its amphiphilic fragment in relation to emulsion properties, Biochimie, 82, 191, 10.1016/S0300-9084(00)00210-8
Day, 2015, Casein polymorphism heterogeneity influences casein micelle size in milk of individual cows, J. Dairy Sci., 98, 3633
de Jong, 1993, Determination of milk proteins by capillary electrophoresis, J. Chromatogr. A, 652, 207, 10.1016/0021-9673(93)80661-Q
De Kruif, 2002, Micellisation of β-casein, Colloids Surf. A Physicochem. Eng. Asp., 210, 183, 10.1016/S0927-7757(02)00371-0
De Kruif, 2012, Casein micelles and their internal structure, Adv. Colloid Interface Sci., 171, 36, 10.1016/j.cis.2012.01.002
De Poi, 2020, Development of an LC-MS method for the identification of β-casein genetic variants in bovine milk, Food Anal. Methods, 13, 2177, 10.1007/s12161-020-01817-0
Devold, 2000, Size of native and heated casein micelles, content of protein and minerals in milk from Norwegian Red Cattle—effect of milk protein polymorphism and different feeding regimes, Int. Dairy J., 10, 313, 10.1016/S0958-6946(00)00073-X
Duarte-Vázquez, 2018, Use of urea-polyacrylamide electrophoresis for discrimination of A1 and A2 beta casein variants in raw cow's milk, J. Food Sci. Technol., 55, 1942, 10.1007/s13197-018-3088-z
Dumpler, 2020, Invited review: heat stability of milk and concentrated milk: past, present, and future research objectives, J. Dairy Sci., 103, 10986, 10.3168/jds.2020-18605
Elferink, 2022, Development of a microsphere-based immunoassay authenticating A2 milk and species purity in the milk production chain, Molecules, 27, 3199, 10.3390/molecules27103199
Elliot, 1996, Diabetes and cows' milk, Lancet, 348, 1657, 10.1016/S0140-6736(05)65718-2
Farrell, 2004, Nomenclature of the proteins of cows' milk—sixth revision, J. Dairy Sci., 87, 1641, 10.3168/jds.S0022-0302(04)73319-6
Fox, 2015, Milk proteins, 145
Frederiksen, 2011, Composition and effect of blending of noncoagulating, poorly coagulating, and well-coagulating bovine milk from individual Danish Holstein cows, J. Dairy Sci., 94, 4787, 10.3168/jds.2011-4343
Fuerer, 2020, Protein fingerprinting and quantification of β-casein variants by ultra-performance liquid chromatography–high-resolution mass spectrometry, J. Dairy Sci., 103, 1193, 10.3168/jds.2019-16273
Gai, 2021, Effect of protein genotypes on physicochemical properties and protein functionality of bovine milk: a review, Foods, 10, 2409, 10.3390/foods10102409
Gallinat, 2013, DNA-based identification of novel bovine casein gene variants, J. Dairy Sci., 96, 699, 10.3168/jds.2012-5908
Gambra, 2013, Genomic architecture of bovine κ-casein and β-lactoglobulin, J. Dairy Sci., 96, 5333, 10.3168/jds.2012-6324
Gazi, 2022, Heterogeneity, fractionation, and isolation, 881
Givens, 2013, Proportions of A1, A2, B and C β-casein protein variants in retail milk in the UK, Food Chem., 139, 549, 10.1016/j.foodchem.2013.01.115
Goulding, 2020, Milk proteins: an overview, 21
Guo, 2022, Online trypsin digestion coupled with LC-MS/MS for detecting of A1 and A2 types of β-casein proteins in pasteurized milk using biomarker peptides, J. Food Sci. Technol., 1
Gustavsson, 2014, Factors influencing chymosin-induced gelation of milk from individual dairy cows: major effects of casein micelle size and calcium, Int. Dairy J., 39, 201, 10.1016/j.idairyj.2014.06.011
Hallén, 2007, Effect of genetic polymorphism of milk proteins on rheology of chymosin-induced milk gels, Int. Dairy J., 17, 791, 10.1016/j.idairyj.2006.09.011
Hallén, 2008, Effect of β‐casein, κ‐casein and β‐lactoglobulin genotypes on concentration of milk protein variants, J. Anim. Breed. Genet., 125, 119, 10.1111/j.1439-0388.2007.00706.x
Han, 2000, Biochemical, molecular and physiological characterization of a new β-casein variant detected in Korean Cattle, Anim. Genet., 31, 49, 10.1046/j.1365-2052.2000.00582.x
Haq, 2014, Comparative evaluation of cow β-casein variants (A1/A2) consumption on Th2-mediated inflammatory response in mouse gut, Eur. J. Nutr., 53, 1039, 10.1007/s00394-013-0606-7
He, 2017, Effects of cow's milk beta-casein variants on symptoms of milk intolerance in Chinese adults: a multicentre, randomised controlled study, Nutr. J., 16, 1, 10.1186/s12937-017-0275-0
Hemar, 2021, Viscosity, size, structural and interfacial properties of sodium caseinate obtained from A2 milk, Colloids Surf. A Physicochem. Eng. Asp., 614, 10.1016/j.colsurfa.2021.126163
Hockey, 2021, The Moo’D Study: protocol for a randomised controlled trial of A2 beta-casein only versus conventional dairy products in women with low mood, Trials, 22, 899, 10.1186/s13063-021-05812-6
Holt, 1992, Structure and stability of bovine casein micelles, Adv. Protein Chem., 43, 63, 10.1016/S0065-3233(08)60554-9
Holt, 2004, An equilibrium thermodynamic model of the sequestration of calcium phosphate by casein micelles and its application to the calculation of the partition of salts in milk, Eur. Biophys. J., 33, 421, 10.1007/s00249-003-0377-9
Holt, 2016, Casein and casein micelle structures, functions and diversity in 20 species, Int. Dairy J., 60, 2, 10.1016/j.idairyj.2016.01.004
Horne, 1998, Casein interactions: casting light on the black boxes, the structure in dairy products, Int. Dairy J., 8, 171, 10.1016/S0958-6946(98)00040-5
Horne, 2017, A balanced view of casein interactions, Curr. Opin. Colloid Interface Sci., 28, 74, 10.1016/j.cocis.2017.03.009
Horne, 2020, Casein micelle structure and stability, 213
Huppertz, 2013, Chemistry of the caseins, 135
Huppertz, 2018, The caseins: structure, stability, and functionality, 49
Huppertz, 2022, Caseins and casein micelles, 155
Huppertz, 2017, Hydration of casein micelles and caseinates: implications for casein micelle structure, Int. Dairy J., 74, 1, 10.1016/j.idairyj.2017.03.006
Huppertz, 2021, Variation in casein distribution and mineralisation in the milk from Holstein-Friesian cows, Int. Dairy J., 119, 10.1016/j.idairyj.2021.105064
Ikonen, 2001, Associations between casein haplotypes and first lactation milk production traits in Finnish Ayrshire cows, J. Dairy Sci., 84, 507, 10.3168/jds.S0022-0302(01)74501-8
Ipsen, 2004, The relation between protein structure, interfacial rheology and foam formation for various milk proteins, Annu. Trans. Nord. Rheol. Soc, 21, 143
Jann, 2002, A new variant in exon VII of bovine β-casein gene (CSN2) and its distribution among European cattle breeds, J. Anim. Breed. Genet., 119, 65, 10.1046/j.1439-0388.2002.00318.x
Jensen, 2012, Milk protein genetic variants and isoforms identified in bovine milk representing extremes in coagulation properties, J. Dairy Sci., 95, 2891, 10.3168/jds.2012-5346
Jensen, 2012, Distinct composition of bovine milk from Jersey and Holstein-Friesian cows with good, poor, or noncoagulation properties as reflected in protein genetic variants and isoforms, J. Dairy Sci., 95, 6905, 10.3168/jds.2012-5675
Jia, 2022, Novel top-down high-resolution mass spectrometry-based metabolomics and lipidomics reveal molecular change mechanism in A2 milk after CSN2 gene mutation, Food Chem., 391, 10.1016/j.foodchem.2022.133270
Joshi, 2021, A and A 2 milk caseins-comparative FTIR and spectroflourimetry analysis, Indian J. Anim. Sci., 91, 765, 10.56093/ijans.v91i9.116469
Kehoe, 2011, Interaction between β-casein and whey proteins as a function of ph and salt concentration, J. Agric. Food Chem., 59, 349, 10.1021/jf103371g
Ketto, 2019, Effect of milk protein genetic polymorphisms on rennet and acid coagulation properties after standardisation of protein content, Int. Dairy J., 88, 18, 10.1016/j.idairyj.2018.08.008
Ketto, 2017, Effects of milk protein polymorphism and composition, casein micelle size and salt distribution on the milk coagulation properties in Norwegian Red cattle, Int. Dairy J., 70, 55, 10.1016/j.idairyj.2016.10.010
Kumar, 2018, Milk proteins, health issues and its implications on national livestock breeding policy of India, Curr. Sci., 115, 1393, 10.18520/cs/v115/i7/1393-1398
Liyanaarachchi, 2018, Caseins and their interactions that modify heat aggregation of whey proteins in commercial dairy mixtures, Int. Dairy J., 83, 43, 10.1016/j.idairyj.2018.03.006
Lucey, 2002, Formation and physical properties of milk protein gels, J. Dairy Sci., 85, 281, 10.3168/jds.S0022-0302(02)74078-2
Lucey, 2020, Milk protein gels, 599
Lucey, 2018, Perspectives on casein interactions, Int. Dairy J., 85, 56, 10.1016/j.idairyj.2018.04.010
Lucey, 2000, Rheological properties of milk gels formed by a combination of rennet and glucono-δ-lactone, J. Dairy Res., 67, 415, 10.1017/S0022029900004246
Lucey, 2022, Impact of heat treatment of milk on acid gelation, Int. Dairy J., 105222
Martin, 2013, Genetic polymorphism of milk proteins, 463
McCarthy, 2013, The physical characteristics and emulsification properties of partially dephosphorylated bovine β-casein, Food Chem., 138, 1304, 10.1016/j.foodchem.2012.11.080
McCarthy, 2022, Heat treatment of milk: effect on concentrate viscosity, powder manufacture and end-product functionality, Int. Dairy J., 128, 10.1016/j.idairyj.2021.105289
McLean, 1987, Effects of milk protein genetic variants and composition on heat stability of milk, J. Dairy Res., 54, 219, 10.1017/S002202990002536X
McSweeney, 2013
Mendes, 2019, A2A2 milk: Brazilian consumers' opinions and effect on sensory characteristics of Petit Suisse and Minas cheeses, Lebensm. Wiss. Technol., 108, 207, 10.1016/j.lwt.2019.03.064
Milan, 2020, Comparison of the impact of bovine milk β-casein variants on digestive comfort in females self-reporting dairy intolerance: a randomized controlled trial, Am. J. Clin. Nutr., 111, 149, 10.1093/ajcn/nqz279
Miranda, 2020, An improved LC–MS method to profile molecular diversity and quantify the six main bovine milk proteins, including genetic and splicing variants as well as post-translationally modified isoforms, Food Chem. X, 5, 10.1016/j.fochx.2020.100080
Neill, 2021, A2 milk: a new way to offer a flat white?, Hosp. Insights, 5, 14, 10.24135/hi.v5i1.92
Ng-Kwai-Hang, 2003, Genetic polymorphism of milk proteins, 739
Nguyen, 2018, Differences in the yoghurt gel microstructure and physicochemical properties of bovine milk containing A1A1 and A2A2 β-casein phenotypes, Food Res. Int., 112, 217, 10.1016/j.foodres.2018.06.043
Nguyen, 2020, Application of ultra-high performance liquid chromatography coupled to high-resolution mass spectrometry (Orbitrap™) for the determination of beta-casein phenotypes in cow milk, Food Chem., 307, 1, 10.1016/j.foodchem.2019.125532
Nguyen, 2019, Identification and quantification of beta-casomorphin peptides naturally yielded in raw milk by liquid chromatography-tandem mass spectrometry, Lebensm. Wiss. Technol., 111, 465, 10.1016/j.lwt.2019.05.074
Noni, 2008, Release of β-casomorphins 5 and 7 during simulated gastro-intestinal digestion of bovine β-casein variants and milk-based infant formulas, Food Chem., 110, 897, 10.1016/j.foodchem.2008.02.077
O'Mahony, 2013, Milk proteins: introduction and historical aspects, 43
Peterson, 1966, Detection of new types of β-casein by polyacrylamide gel electrophoresis at acid pH: a proposed nomenclature, Biochem. Biophys. Res. Commun., 22, 388, 10.1016/0006-291X(66)90658-9
Poulsen, 2013, The occurrence of noncoagulating milk and the association of bovine milk coagulation properties with genetic variants of the caseins in 3 Scandinavian dairy breeds, J. Dairy Sci., 96, 4830, 10.3168/jds.2012-6422
Poulsen, 2021, Genetic factors affecting the composition and quality of cow's milk, 1
Poulsen, 2017, Protein heterogeneity of bovine β-casein in Danish dairy breeds and association of rare β-casein F with milk coagulation properties, Acta Agri. Scand. Sec. A—Animal Sci., 66, 190
Ramakrishnan, 2022, A1 beta-casein milk transits the stomach more quickly than A2 beta-casein milk in lactose maldigesters using magnetic resonance imaging, Curr. Develop. Nutri., 6, 329, 10.1093/cdn/nzac053.070
Ramakrishnan, 2020, Milk containing A2 β-casein only, as a single meal, causes fewer symptoms of lactose intolerance than milk containing A1 and A2 β-caseins in subjects with lactose maldigestion and intolerance: a randomized, double-blind, crossover trial, Nutrients, 12, 3855, 10.3390/nu12123855
Raynes, 2015, Structural differences between bovine A1 and A2 β-casein alter micelle self-assembly and influence molecular chaperone activity, J. Dairy Sci., 98, 2172, 10.3168/jds.2014-8800
Ristanić, 2022, Use of allele specific PCR to investigate the presence of β-casein polymorphism in Holstein-Friesian cows, Vet. Glas., 76, 17, 10.2298/VETGL211125004R
Robitaille, 1995, Influence of κ-casein and β-lactoglobulin genetic variants on the heat stability of milk, J. Dairy Res., 62, 593, 10.1017/S0022029900031320
Sadler, 1968, Acid production and curd toughness in milks of different αs1-casein types, J. Dairy Sci., 51, 28, 10.3168/jds.S0022-0302(68)86913-9
Şahin, 2022, Assessment of A1 and A2 variants in the CNS2 gene of some cattle breeds by using ACRS-PCR method, Anim. Biotechnol., 1, 10.1080/10495398.2022.2036176
Sanders, 2020, The molecular chaperone β-casein prevents amorphous and fibrillar aggregation of α-lactalbumin by stabilisation of dynamic disorder, Biochem. J., 477, 629, 10.1042/BCJ20190638
Schmidt, 1970, Differences between the association of the genetic variants B, C and D of αs1-casein, Biochim. Biophys. Acta, 221, 140, 10.1016/0005-2795(70)90209-6
Sebastiani, 2022, Marker-assisted selection of dairy cows for β-casein gene A2 variant, Ital. J. Food Sci., 34, 21, 10.15586/ijfs.v34i2.2178
Senocq, 2002, A new bovine β-casein genetic variant characterized by a Met93→ Leu 93 substitution in the sequence A2, Lait, 82, 171, 10.1051/lait:2002002
Slattery, 1976, Review: casein micelle structure; an examination of models, J. Dairy Sci., 59, 1547, 10.3168/jds.S0022-0302(76)84403-7
Slattery, 1973, A model for the formation and structure of casein micelles from subunits of variable composition, Biochim. Biophys. Acta Protein Struct., 317, 529, 10.1016/0005-2795(73)90246-8
Syme, 2002, A Raman optical activity study of rheomorphism in caseins, synucleins and tau: new insight into the structure and behaviour of natively unfolded proteins, Eur. J. Biochem., 269, 148, 10.1046/j.0014-2956.2001.02633.x
Thompson, 1969, Amino acid composition of β-caseins from the milks of Bos indicus and Bos taurus cows: a comparative study, Comp. Biochem. Physiol., 30, 91, 10.1016/0010-406X(69)91300-0
Thompson, 1964, Genetic polymorphism in caseins of cows' milk. II. Confirmation of the genetic control of β-casein variation, J. Dairy Sci., 47, 378, 10.3168/jds.S0022-0302(64)88670-7
Thorn, 2015, Casein structures in the context of unfolded proteins, Int. Dairy J., 46, 2, 10.1016/j.idairyj.2014.07.008
Thorn, 2005, Amyloid fibril formation by bovine milk κ-casein and its inhibition by the molecular chaperones αS-and β-casein, Biochemistry, 44, 17027, 10.1021/bi051352r
Vallas, 2012, Composite β-κ-casein genotypes and their effect on composition and coagulation of milk from Estonian Holstein cows, J. Dairy Sci., 95, 6760, 10.3168/jds.2012-5495
Van Vliet, 1991, Relation between syneresis and rheological properties of particle gels, Colloid Polym. Sci., 269, 620, 10.1007/BF00659917
Vigolo, 2022, Characterization of the genetic polymorphism linked to the β-casein A1/A2 alleles using different molecular and biochemical methods, J. Dairy Sci., 105, 1, 10.3168/jds.2022-22136
Vigolo, 2022, β-Casein variants differently affect bulk milk mineral content, protein composition, and technological traits, Int. Dairy J., 124, 10.1016/j.idairyj.2021.105221
Vincent, 2016, Quantitation and identification of intact major milk proteins for high-throughput LC-ESI-Q-TOF MS analyses, PLoS One, 11, 10.1371/journal.pone.0163471
Visser, 1995, Identification of a new genetic variant of bovine ß-casein using reversed-phase high-performance liquid chromatography and mass spectrometric analysis, J. Chromatogr. A, 711, 141, 10.1016/0021-9673(95)00058-U
Walsh, 1998, Influence of κ-casein genetic variant on rennet gel microstructure, cheddar cheesemaking properties and casein micelle size, Int. Dairy J., 8, 707, 10.1016/S0958-6946(98)00103-4
Wang, 2022, Comparison on properties between normal and A2 bovine milk fermented using commercial bacteria mixed with/without two probiotics from human milk, Int. J. Biol. Macromol., 216, 105, 10.1016/j.ijbiomac.2022.06.200
Xiao, 2022, Rapid identification of A1 and A2 milk based on the combination of mid-infrared spectroscopy and chemometrics, Food Control, 134, 10.1016/j.foodcont.2021.108659
Yadav, 2020, Oral feeding of cow milk containing A1 variant of β casein induces pulmonary inflammation in male Balb/c mice, Sci. Rep., 10, 1, 10.1038/s41598-020-64997-z
Yousefi, 2009, Chaperone‐like activities of different molecular forms of β‐casein. Importance of polarity of N‐terminal hydrophilic domain, Biopolymers: Org. Res. Biomol., 91, 623, 10.1002/bip.21190
Zhang, 2005, Chaperone-like activity of β-casein, Int. J. Biochem. Cell Biol., 37, 1232, 10.1016/j.biocel.2004.12.004