[1] |
Rajashri K, Rastogi NK, Negi PS. 2020. Non-thermal processing of tender coconut water − A review. Food Reviews International 38:34−55 doi: 10.1080/87559129.2020.1847142 |
[2] |
Campos CF, Souza PEA, Coelho JV, Glória MBA. 1996. Chemical composition, enzyme activity and effect of enzyme inactivation on flavor quality of green coconut water. Journal of Food Processing and Preservation 20:487−500 doi: 10.1111/j.1745-4549.1996.tb00761.x |
[3] |
Cunha AG, Alves Filho EG, Silva LMA, Ribeiro PRV, Rodrigues THS, et al. 2020. Chemical composition of thermally processed coconut water evaluated by GC–MS, UPLC-HRMS, and NMR. Food Chemistry 324:126874 doi: 10.1016/j.foodchem.2020.126874 |
[4] |
Adubofuor J, Amoah I, Osei-Bonsu I. 2016. Sensory and physicochemical properties of pasteurized coconut water from two varieties of coconut. Food Science and Quality Management 54:26−32 |
[5] |
Sucupira NR, Alves Filho EG, Silva LMA, de Brito ES, Wurlitzer NJ, et al. 2017. NMR spectroscopy and chemometrics to evaluate different processing of coconut water. Food Chemistry 216:217−24 doi: 10.1016/j.foodchem.2016.08.035 |
[6] |
Naik M, Sunil CK, Rawson A, Venkatachalapathy N. 2022. Tender coconut water: a review on recent advances in processing and preservation. Food Reviews International 38:1215−36 doi: 10.1080/87559129.2020.1785489 |
[7] |
Prithviraj V, Pandiselvam R, Babu AC, Kothakota A, Manikantan MR, et al. 2021. Emerging non-thermal processing techniques for preservation of tender coconut water. LWT 149:111850 doi: 10.1016/j.lwt.2021.111850 |
[8] |
Allai FM, Azaz Ahmad Azad ZR, Ahmad Mir N, Gul K. 2023. Recent advances in non-thermal processing technologies for enhancing shelf life and improving food safety. Applied Food Research 3:100258 doi: 10.1016/j.afres.2022.100258 |
[9] |
Zhang Z, Zhang M, Gao Z, Cheng Y, Yang X, et al. 2024. Effect of dynamic high-pressure microfluidization on the quality of not-from-concentrate cucumber juice. Foods 13:2125 doi: 10.3390/foods13132125 |
[10] |
Kavinila S, Nimbkar S, Moses JA, Anandharamakrishnan C. 2023. Emerging applications of microfluidization in the food industry. Journal of Agriculture and Food Research 12:100537 doi: 10.1016/j.jafr.2023.100537 |
[11] |
Wei Y, Wang C, Liu X, Mackie A, Zhang M, et al. 2022. Co-encapsulation of curcumin and β-carotene in Pickering emulsions stabilized by complex nanoparticles: effects of microfluidization and thermal treatment. Food Hydrocolloids 122:107064 doi: 10.1016/j.foodhyd.2021.107064 |
[12] |
Huang X, Li C, Xi J. 2023. Dynamic high pressure microfluidization-assisted extraction of plant active ingredients: a novel approach. Critical Reviews in Food Science and Nutrition 63:12413−21 doi: 10.1080/10408398.2022.2101427 |
[13] |
Wang D, Zheng X, Fan Q, Wang P, Zeng H, et al. 2022. The effect of dynamic high-pressure microfluidization on the physicochemical and digestive properties of proteins in insoluble fraction of edible bird’s nest. Food Frontiers 3:339−46 doi: 10.1002/fft2.126 |
[14] |
Silva HD, Cerqueira MÂ, Vicente AA. 2012. Nanoemulsions for food applications: development and characterization. Food and Bioprocess Technology 5:854−67 doi: 10.1007/s11947-011-0683-7 |
[15] |
Tarafdar A, Kumar Y, Kaur BP, Badgujar PC. 2021. High-pressure microfluidization of sugarcane juice: effect on total phenols, total flavonoids, antioxidant activity, and microbiological quality. Journal of Food Processing and Preservation 45:e15428 doi: 10.1111/jfpp.15428 |
[16] |
Singh SV, Singh R, Verma K, Kamble MG, Tarafdar A, et al. 2022. Effect of microfluidization on quality characteristics of sapodilla (Manilkara achras L.) juice. Food Research International 162:112089 doi: 10.1016/j.foodres.2022.112089 |
[17] |
Suhag R, Singh S, Kumar Y, Prabhakar PK, Meghwal M. 2024. Microfluidization of ginger rhizome (Zingiber officinale roscoe) juice: impact of pressure and cycles on physicochemical attributes, antioxidant, microbial, and enzymatic activity. Food and Bioprocess Technology 17:1045−58 doi: 10.1007/s11947-023-03179-x |
[18] |
Tarafdar A, Kaur BP, Pareek S. 2021. Effect of microfluidization on deteriorative enzymes, sugars, chlorophyll, and color of sugarcane juice. Food and Bioprocess Technology 14:1375−85 doi: 10.1007/s11947-021-02651-w |
[19] |
Fehrmann H, Diamond AE. 1967. Studies on Auxins in the Phytophthora Disease of the Potato Tuber I. Role of indole-acetic acid in pathogenesis. Journal of Phytopathology 59:83−100 doi: 10.1111/j.1439-0434.1967.tb02953.x |
[20] |
Huang W, Ji H, Liu S, Zhang C, Chen Y, et al. 2014. Inactivation effects and kinetics of polyphenol oxidase from Litopenaeus vannamei by ultra-high pressure and heat. Innovative Food Science & Emerging Technologies 26:108−15 doi: 10.1016/j.ifset.2014.10.005 |
[21] |
Tan TC, Cheng LH, Bhat R, Rusul G, Easa AM. 2014. Composition, physicochemical properties and thermal inactivation kinetics of polyphenol oxidase and peroxidase from coconut (Cocos nucifera) water obtained from immature, mature and overly-mature coconut. Food Chemistry 142:121−28 doi: 10.1016/j.foodchem.2013.07.040 |
[22] |
Lowry OH, Rosebrough NJ, Farr AL, Randall RJ. 1951. Protein measurement with the folin phenol reagent. Journal of Biological Chemistry 193:265−75 doi: 10.1016/s0021-9258(19)52451-6 |
[23] |
Latimer GW Jr. 2023. Official Methods of Analysis of AOAC International. 22nd Edition. Oxford: Oxford University Press. doi: 10.1093/9780197610145.003.3954 |
[24] |
Alothman M, Bhat R, Karim AA. 2009. Antioxidant capacity and phenolic content of selected tropical fruits from Malaysia, extracted with different solvents. Food Chemistry 115:785−88 doi: 10.1016/j.foodchem.2008.12.005 |
[25] |
Xu BJ, Chang SKC. 2007. A comparative study on phenolic profiles and antioxidant activities of legumes as affected by extraction solvents. Journal of Food Science 72:S159−S166 doi: 10.1111/j.1750-3841.2006.00260.x |
[26] |
Brand-Williams W, Cuvelier ME, Berset C. 1995. Use of a free radical method to evaluate antioxidant activity. LWT - Food Science and Technology 28:25−30 doi: 10.1016/s0023-6438(95)80008-5 |
[27] |
Bursal E, Gülçin İ. 2011. Polyphenol contents and in vitro antioxidant activities of lyophilised aqueous extract of kiwifruit (Actinidia deliciosa). Food Research International 44:1482−89 doi: 10.1016/j.foodres.2011.03.031 |
[28] |
Aniesrani Delfiya DS, Thangavel K. 2016. Effect of ohmic heating on polyphenol oxidase activity, electrical and physicochemical properties of fresh tender coconut water. International Journal of Food Engineering 12:691−700 doi: 10.1515/ijfe-2015-0329 |
[29] |
Liu W, Liu J, Liu C, Zhong Y, Liu W, et al. 2009. Activation and conformational changes of mushroom polyphenoloxidase by high pressure microfluidization treatment. Innovative Food Science & Emerging Technologies 10:142−47 doi: 10.1016/j.ifset.2008.11.009 |
[30] |
Iqbal A, Murtaza A, Hu W, Ahmad I, Ahmed A, et al. 2019. Activation and inactivation mechanisms of polyphenol oxidase during thermal and non-thermal methods of food processing. Food and Bioproducts Processing 117:170−82 doi: 10.1016/j.fbp.2019.07.006 |
[31] |
Balny C, Masson P. 1993. Effects of high pressure on proteins. Food Reviews International 9:611−28 doi: 10.1080/87559129309540980 |
[32] |
Terefe NS, Yang YH, Knoerzer K, Buckow R, Versteeg C. 2010. High pressure and thermal inactivation kinetics of polyphenol oxidase and peroxidase in strawberry puree. Innovative Food 11:52−60 doi: 10.1016/j.ifset.2009.08.009 |
[33] |
Rastogi NK, Eshtiaghi MN, Knorr D. 1999. Effects of combined high pressure and heat treatment on the reduction of peroxidase and polyphenoloxidase activity in red grapes. Food Biotechnology 13:195−208 doi: 10.1080/08905439909549971 |
[34] |
Chakraborty S, Rao PS, Mishra HN. 2015. Kinetic modeling of polyphenoloxidase and peroxidase inactivation in pineapple (Ananas comosus L.) puree during high-pressure and thermal treatments. Innovative Food Science & Emerging Technologies 27:57−68 doi: 10.1016/j.ifset.2014.11.003 |
[35] |
Bai JW, Gao ZJ, Xiao HW, Wang XT, Zhang Q. 2013. Polyphenol oxidase inactivation and vitamin C degradation kinetics of Fuji apple quarters by high humidity air impingement blanching. International Journal of Food Science & Technology 48:1135−41 doi: 10.1111/j.1365-2621.2012.03193.x |
[36] |
Choi MH, Kim GH, Lee HS. 2002. Effects of ascorbic acid retention on juice color and pigment stability in blood orange (Citrus sinensis) juice during refrigerated storage. Food Research International 35:753−59 doi: 10.1016/s0963-9969(02)00071-6 |
[37] |
Tarafdar A, Nair SG, Pal Kaur B. 2019. Identification of microfluidization processing conditions for quality retention of sugarcane juice using genetic algorithm. Food and Bioprocess Technology 12:1874−86 doi: 10.1007/s11947-019-02345-4 |
[38] |
Huang X, Tu Z, Jiang Y, Xiao H, Zhang Q, et al. 2012. Dynamic high pressure microfluidization-assisted extraction and antioxidant activities of lentinan. International Journal of Biological Macromolecules 51:926−32 doi: 10.1016/j.ijbiomac.2012.07.018 |
[39] |
Mahnot NK, Kalita D, Mahanta CL, Chaudhuri MK. 2014. Effect of additives on the quality of tender coconut water processed by nonthermal two stage microfiltration technique. LWT - Food Science and Technology 59:1191−95 doi: 10.1016/j.lwt.2014.06.040 |
[40] |
Klomklao S, Kishimura H, Nonami Y, Benjakul S. 2009. Biochemical properties of two isoforms of trypsin purified from the Intestine of skipjack tuna (Katsuwonus pelamis). Food Chemistry 115:155−62 doi: 10.1016/j.foodchem.2008.11.087 |
[41] |
Pandiselvam R, Prithviraj V, Manikantan MR, Shameena Beegum PP, Ramesh SV, et al. 2022. Central composite design, Pareto analysis, and artificial neural network for modeling of microwave processing parameters for tender coconut water. Measurement: Food 5:100015 doi: 10.1016/j.meafoo.2021.100015 |
[42] |
Adjei-Fremah S, Worku M, De Erive MO, He F, Wang T, et al. 2019. Effect of microfluidization on microstructure, protein profile and physicochemical properties of whole cowpea flours. Innovative Food Science & Emerging Technologies 57:102207 doi: 10.1016/j.ifset.2019.102207 |
[43] |
Barrett DM, Somogyi L, Ramaswamy HS. 2004. Processing Fruits: Science and Technology. 2nd Edition. Boca Raton: CRC Press. doi: 10.1201/9781420040074 |
[44] |
Karacam CH, Sahin S, Oztop MH. 2015. Effect of high pressure homogenization (microfluidization) on the quality of Ottoman Strawberry (F. Ananassa) juice. LWT - Food Science and Technology 64:932−37 doi: 10.1016/j.lwt.2015.06.064 |
[45] |
Koley TK, Nishad J, Kaur C, Su Y, Sethi S, et al. 2020. Effect of high-pressure microfluidization on nutritional quality of carrot (Daucus carota L.) juice. Journal of Food Science and Technology 57:2159−68 doi: 10.1007/s13197-020-04251-6 |
[46] |
Kadam US, Ghosh SB, De S, Suprasanna P, Devasagayam TPA, et al. 2008. Antioxidant activity in sugarcane juice and its protective role against radiation induced DNA damage. Food Chemistry 106:1154−60 doi: 10.1016/j.foodchem.2007.07.066 |
[47] |
Rajashri K, Roopa BS, Negi PS, Rastogi NK. 2020. Effect of ozone and ultrasound treatments on polyphenol content, browning enzyme activities, and shelf life of tender coconut water. Journal of Food Processing and Preservation 44:e14363 doi: 10.1111/jfpp.14363 |
[48] |
Wang X, Wang S, Wang W, Ge Z, Zhang L, et al. 2019. Comparison of the effects of dynamic high-pressure microfluidization and conventional homogenization on the quality of peach juice. Journal of the Science of Food and Agriculture 99:5994−6000 doi: 10.1002/jsfa.9874 |
[49] |
McInerney JK, Seccafien CA, Stewart CM, Bird AR. 2007. Effects of high pressure processing on antioxidant activity, and total carotenoid content and availability, in vegetables. Innovative Food Science & Emerging Technologies 8:543−48 doi: 10.1016/j.ifset.2007.04.005 |
[50] |
Velázquez-Estrada RM, Hernández-Herrero MM, Rüfer CE, Guamis-López B, Roig-Sagués AX. 2013. Influence of ultra high pressure homogenization processing on bioactive compounds and antioxidant activity of orange juice. Innovative Food Science & Emerging Technologies 18:89−94 doi: 10.1016/j.ifset.2013.02.005 |