Which casein micelle removal method is suitable for studies of human milk extracellular vesicles? A systematic comparison of four different treatments for casein depletion before extracellular vesicle isolation from human milk

Hatice Cetinkaya , Supasek Kongsomros , Laurie Nommsen-Rivers , Ardythe L. Morrow , Somchai Chutipongtanate

Extracellular Vesicles and Circulating Nucleic Acids ›› 2024, Vol. 5 ›› Issue (2) : 221 -32.

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Extracellular Vesicles and Circulating Nucleic Acids ›› 2024, Vol. 5 ›› Issue (2) :221 -32. DOI: 10.20517/evcna.2024.02
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Which casein micelle removal method is suitable for studies of human milk extracellular vesicles? A systematic comparison of four different treatments for casein depletion before extracellular vesicle isolation from human milk

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Abstract

Aim: This study aimed to systematically compare four casein micelle removal methods on the particle and protein characteristics of the isolated human milk EVs.

Methods: The defatted milk was treated with 1% sodium citrate, 20 mM ethylenediaminetetraacetic acid (EDTA), 1% acetic acid, or 1% chymosin/calcium chloride for 30 min at 4 °C to remove casein micelles. EV isolation was performed using qEV size exclusion chromatography. Milk turbidity at the optical density 350 nm and dot immunoblot with casein antibody were applied to monitor the qEV fractions. Particle analyses were performed using transmission electron microscopy (TEM) and nanoparticle tracking analysis (NTA). The enrichment of human milk EV markers, i.e., tetraspanins, Alix, lactadherin, butyrophilin, and xanthine dehydrogenase, and casein depletion capabilities were evaluated by proteomics and immunoblotting.

Results: Compared to the untreated condition, sodium citrate and EDTA decreased milk turbidity by disrupting casein micelles, while acetic acid and chymosin removed them by inducing precipitation/coagulation. All treatments shifted casein immunoreactivity in the qEV fractions from large micelles (the exclusion volume) to small molecular sizes (gel-infiltrated fractions). Acidification affected human milk EV morphology, while EDTA, acetic acid, and chymosin methods slightly altered EV particle numbers. Different casein micelle removal methods confer different degrees of human milk EV marker enrichment and casein depletion. The method performances could be ranked as follows: chymosin > EDTA > acetic acid > sodium citrate.

Conclusion: Our findings suggest that chymosin and EDTA should be considered as the method of choice for casein micelle removal in future studies involving human milk EV isolation and characterization.

Keywords

Acidification / casein micelles / calcium chelation / coagulation / extracellular vesicles / human milk / method comparison

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Hatice Cetinkaya, Supasek Kongsomros, Laurie Nommsen-Rivers, Ardythe L. Morrow, Somchai Chutipongtanate. Which casein micelle removal method is suitable for studies of human milk extracellular vesicles? A systematic comparison of four different treatments for casein depletion before extracellular vesicle isolation from human milk. Extracellular Vesicles and Circulating Nucleic Acids, 2024, 5(2): 221-32 DOI:10.20517/evcna.2024.02

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References

[1]

Chutipongtanate S,Newburg DS.Human milk extracellular vesicles: a biological system with clinical implications.Cells2022;11:2345 PMCID:PMC9367292

[2]

Ngu A,Zempleni J.Milk-borne small extracellular vesicles: kinetics and mechanisms of transport, distribution, and elimination.Extracell Vesicles Circ Nucl Acids2023;4:339-46 PMCID:PMC10568984

[3]

Freiría-Martínez L,Rodríguez-Jamardo C.Proteomic analysis of exosomes derived from human mature milk and colostrum of mothers with term, late preterm, or very preterm delivery.Anal Methods2023;15:4905-17

[4]

Meng Z,Lv D.Human milk extracellular vesicles enhance muscle growth and physical performance of immature mice associating with Akt/mTOR/p70s6k signaling pathway.J Nanobiotechnology2023;21:304 PMCID:PMC10463453

[5]

Chutipongtanate S,Zhang X.Prenatal SARS-CoV-2 infection alters postpartum human milk-derived extracellular vesicles.bioRxiv2023;Online ahead of print:2023.06.01.543234 PMCID:PMC10312504

[6]

Peng W,Li S.The association of human milk feeding with short-term health outcomes among chinese very/extremely low birth weight infants.J Hum Lact2022;38:670-7

[7]

Royo F,Falcón-Pérez JM,Witwer KW.Methods for separation and characterization of extracellular vesicles: results of a worldwide survey performed by the ISEV rigor and standardization subcommittee.Cells2020;9:1955 PMCID:PMC7563174

[8]

Welsh JA,O'Driscoll L.MISEV ConsortiumMinimal information for studies of extracellular vesicles (MISEV2023): from basic to advanced approaches.J Extracell Vesicles2024;13:e12404 PMCID:PMC10850029

[9]

Hernell O. Human Milk vs. Cow’s milk and the evolution of infant formulas. In: Clemens R, Hernell O, Michaelsen K, editors. Milk and Milk Products in Human Nutrition. S. Karger AG; 2011. pp. 17-28.

[10]

Blans K,Sørensen LV.Pellet-free isolation of human and bovine milk extracellular vesicles by size-exclusion chromatography.J Extracell Vesicles2017;6:1294340 PMCID:PMC5373680

[11]

McMahon DJ.Supramolecular structure of the casein micelle.J Dairy Sci2008;91:1709-21

[12]

Trejo R,Jurat-Fuentes J.Cryo-transmission electron tomography of native casein micelles from bovine milk.J Dairy Sci2011;94:5770-5 PMCID:PMC4181329

[13]

Brennan K,FitzGerald SP.A comparison of methods for the isolation and separation of extracellular vesicles from protein and lipid particles in human serum.Sci Rep2020;10:1039 PMCID:PMC6978318

[14]

Somiya M,Ochiya T.Biocompatibility of highly purified bovine milk-derived extracellular vesicles.J Extracell Vesicles2018;7:1440132 PMCID:PMC5827637

[15]

Rahman MM,Yamauchi M.Acidification effects on isolation of extracellular vesicles from bovine milk.PLoS One2019;14:e0222613 PMCID:PMC6746375

[16]

Benmoussa A,Gilbert C.Isolating multiple extracellular vesicles subsets, including exosomes and membrane vesicles, from bovine milk using sodium citrate and differential ultracentrifugation.Bio Protoc2020;10:e3636 PMCID:PMC7842771

[17]

Morozumi M,Shimizu T.Comparison of isolation methods using commercially available kits for obtaining extracellular vesicles from cow milk.J Dairy Sci2021;104:6463-71

[18]

Liu Q,Li J.Oral administration of bovine milk-derived extracellular vesicles attenuates cartilage degeneration via modulating gut microbiota in DMM-induced mice.Nutrients2023;15:747 PMCID:PMC9920331

[19]

Chen CC,Li WT.Influence of chymosin on physicochemical and hydrolysis characteristics of casein micelles and individual caseins.Nanomaterials2021;11:2594 PMCID:PMC8539682

[20]

Mukhopadhya A,O'Driscoll L.Extracellular vesicle separation from milk and infant milk formula using acid precipitation and ultracentrifugation.STAR Protoc2021;2:100821 PMCID:PMC8449126

[21]

Pietrzak-Fiećko R.The comparison of nutritional value of human milk with other mammals' milk.Nutrients2020;12:1404 PMCID:PMC7284997

[22]

Liao Y,Xu W,Phinney BS.Absolute quantification of human milk caseins and the whey/casein ratio during the first year of lactation.J Proteome Res2017;16:4113-21

[23]

Βasdeki AM,Βiliaderis CG.Physicochemical properties of human breast milk during the second year of lactation.Curr Res Food Sci2021;4:565-76. PMCID:PMC8384777

[24]

Huppertz T,Kelly A. Proteins in food processing. In: Woodhead Publishing Cambridge, UK; 2018. pp. 1-654.

[25]

Hassanin AA,Atallah OO.Phylogenetic comparative analysis: chemical and biological features of caseins (alpha-S-1, alpha-S-2, beta- and kappa-) in domestic dairy animals.Front Vet Sci2022;9:952319 PMCID:PMC9519386

[26]

Tong L,Zhang X.Oral administration of bovine milk-derived extracellular vesicles alters the gut microbiota and enhances intestinal immunity in mice.Mol Nutr Food Res2020;64:e1901251

[27]

Chutipongtanate S.Multiplex biomarker screening assay for urinary extracellular vesicles study: a targeted label-free proteomic approach.Sci Rep2018;8:15039 PMCID:PMC6177456

[28]

Admyre C,Qazi KR.Exosomes with immune modulatory features are present in human breast milk.J Immunol2007;179:1969-78

[29]

van Herwijnen MJ,Goerdayal S.Comprehensive proteomic analysis of human milk-derived extracellular vesicles unveils a novel functional proteome distinct from other milk components.Mol Cell Proteomics2016;15:3412-23 PMCID:PMC5098039

[30]

Yamauchi M,Rahman M.Efficient method for isolation of exosomes from raw bovine milk.Drug Dev Ind Pharm2019;45:359-64

[31]

Heidarzadeh M,Rahbarghazi R.Protein corona and exosomes: new challenges and prospects.Cell Commun Signal2023;21:64 PMCID:PMC10041507

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