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Microencapsulation: a pragmatic approach towards delivery of probiotics in gut

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Pages 437-458 | Received 25 Jan 2021, Accepted 24 Jun 2021, Published online: 19 Jul 2021

References

  • Albadran, H.A., et al., 2020. Development of chitosan-coated agar-gelatin particles for probiotic delivery and targeted release in the gastrointestinal tract. Applied microbiology and biotechnology, 104 (13), 5749–5757.
  • Allan-Wojtas, P., Hansen, L.T., and Paulson, A.T., 2008. Microstructural studies of probiotic bacteria-loaded alginate microcapsules using standard electron microscopy techniques and anhydrous fixation. Lwt - food science and technology, 41 (1), 101–108.
  • Altamirano-Fortoul, R., et al., 2012. Viability of some probiotic coatings in bread and its effect on the crust mechanical properties. Food hydrocolloids, 29 (1), 166–174.
  • Amal, H., et al., 2016. Detection of precancerous gastric lesions and gastric cancer through exhaled breath. Gut, 65 (3), 400–407.
  • Amin, T., Thakur, M., and Jain, S.C., 2021. Microencapsulation-the future of probiotic cultures. Journal of microbiology, biotechnology and food sciences, 3, 35–43.
  • Amine, K.M., et al., 2014. Survival of microencapsulated Bifidobacteriumlongum in Cheddar cheese during production and storage. Food control, 37, 193–199.
  • Anal, A.K. and Singh, H., 2007. Recent advances in Micro-encapsualtion of probiotics for industrial applications and targeted delivery. Trends in food science & technology, 18 (5), 240–251.
  • Annan, N.T., Borza, A.D., and Hansen, L.T., 2008. Encapsulation in alginate-coated gelatin microspheres improves survival of the probiotic Bifidobacteriumadolescentis 15703T during exposure to simulated gastro-intestinal conditions. Food research international, 41 (2), 184–193.
  • Aro, H., et al., 2013. The utilization of oat polar lipids produced by supercritical fluid technologies in the encapsulation of probiotics. Lwt - food science and technology, 53 (2), 540–546.
  • Awaisheh, S. S., 2012. Probiotic food products classes, types, and processing. London: INTECH Open Access Publisher.
  • Batista, A.L.D., et al., 2015. Quality parameters of probiotic yoghurt added to glucose oxidase compared to commercial products through microbiological, physical–chemical and metabolic activity analyses. Food research international, 77, 627–635.
  • Bertoft, E., 2017. Understanding starch structure: recent progress. Agronomy, 7 (3), 56.
  • Bhatia, A., et al., 2012. Preparation, characterization and hypocholesterolemic effect of sodium alginate encapsulated lab isolate. Journal of microbiology and biotechnology, 2, 741–746.
  • Bosnea, L.A., et al., 2017. Growth adaptation of probiotics in biopolymer-based coacervate structures to enhance cell viability. LWT, 77, 282–289.
  • Burgain, J., et al., 2013a. Encapsulation of Lactobacillus rhamnosusGG in microparticles: influence of casein to whey protein ratio on bacterial survival during digestion. Innovative food science & emerging technologies, 19, 233–242.
  • Burgain, J., et al., 2013b. In vitro interactions between probiotic bacteria and milk proteins probed by atomic force microscopy. Colloids and surfaces. B, biointerfaces, 104, 153–162.
  • Burgain, J., et al., 2014. Significance of bacterial surface molecules interactions with milk proteins to enhance Micro-encapsualtion of Lactobacillus rhamnosus GG. Food hydrocolloids, 41, 60–70.
  • Călinoiu, L.F., et al., 2019. Chitosan coating applications in probiotic microencapsulation. Coatings, 9 (3), 194.
  • Chackoshian, K.A. and Shojaosadati, S.A., 2017. Improvement of probiotic survival in fruit juice and under gastrointestinal conditions using pectin-nanochitin-nanolignocellulose as a novel prebiotic gastrointestinal-resistant matrix. Applied food biotechnology, 4, 179–191.
  • Champagne, C.P. and Fustier, P., 2007. Microencapsulation for the improved delivery of bioactive compounds into foods . Current opinion in biotechnology, 18 (2), 184–190.
  • Chen, X., et al., 2008. Characterization of microRNAs in serum: a novel class of biomarkers for diagnosis of cancer and other diseases. Cell research, 18 (10), 997–1006.
  • Cheow, W.S., Kiew, T.Y., and Hadinoto, K., 2014. Controlled release of Lactobacillus rhamnosus biofilm probiotics from alginate-locust bean gum microcapsules. Carbohydrate polymers, 103, 587–595.
  • Chun, H., Kim, C.H., and Cho, Y.H., 2014. Microencapsulation of Lactobacillus plantarum DKL 109 using external ionic gelation method. Korean journal for food science of animal resources, 34 (5), 692–699.
  • Da Silva, B.V., Barreira, J.C., and Oliveira, M.B.P., 2016. Natural phytochemicals and probiotics as bioactive ingredients for functional foods: Extraction, biochemistry and protected-delivery technologies. Trends in food science and technology, 50, 144–158.
  • Das, D. and Goyal, A., 2014. Characterization and biocompatibility of glucan: a safe food additive from probiotic Lactobacillus plantarum DM5. Journal of the science of food and agriculture, 94 (4), 683–690.
  • Davis, C., 2014. Enumeration of probiotic strains: review of culture-dependent and alternative techniques to quantify viable bacteria. Journal of microbiological methods, 103, 9–17.
  • de Araújo Etchepare, M., et al., 2020. Improvement of the viability of encapsulated probiotics using whey proteins. LWT, 117, 108601.
  • Dehkordi, S.S., et al., 2020. Optimization of alginate-whey protein isolate microcapsules for survivability and release behavior of probiotic bacteria. Applied biochemistry and biotechnology, 190 (1), 182–196.
  • Dhakal, S.P. and He, J., 2020. Microencapsulation of vitamins in food applications to prevent losses in processing and storage: a review. Food research international, 137, 109326.
  • Dias, M.I., Ferreira, I.C., and Barreiro, M.F., 2015. Microencapsulation of bioactives for food applications. Food & function, 6 (4), 1035–1052.
  • Doherty, S.B., et al., 2011. Development and characterisation of whey protein micro-beads as potential matrices for probiotic protection. Food hydrocolloids, 25 (6), 1604–1617.
  • Dong, Q.Y., et al., 2013. Alginate‐based and protein‐based materials for probiotics encapsulation: a review. International journal of food science & technology, 48 (7), 1339–1351.
  • Đorđević, V., et al., 2015. Trends in encapsulation technologies for delivery of food bioactive compounds. Food engineering reviews, 7 (4), 452–490.
  • Ebrahimi, B., et al., 2018. Survival of probiotic bacteria in carboxymethyl cellulose-based edible film and assessment of quality parameters. LWT, 87, 54–60.
  • Ephrem, E., et al., 2018. Encapsulation of natural active compounds, enzymes, and probiotics for fruit juice fortification, preservation, and processing: an overview. Journal of functional foods, 48, 65–84.
  • Espitia, P.J.P., et al., 2016. Probiotics and their potential applications in active edible films and coatings. Food research international, 90, 42–52.
  • Esquena, J., 2016. Water-in-water (W/W) emulsions. Current opinion in colloid and interface science., 25, 109–119.
  • Etchepare, M.A., et al., 2015. Microencapsulaçao de probioticosutilizandoalginatosodio. Ciência rural, 45 (7), 1319–1326.
  • Feng, K., et al., 2020. A novel route for double-layered encapsulation of probiotics with improved viability under adverse conditions. Food chemistry, 310, 125977.
  • Foroutan, N.S., et al., 2017. Isolation and identification of an indigenous probiotic Lactobacillus Strain: Its encapsulation with natural branched polysaccharids to improve bacterial viability. Applied food biotechnology, 4 (3), 133–142.
  • Frakolaki, G., et al., 2020. A review of the microencapsulation techniques for the incorporation of probiotic bacteria in functional foods. Critical reviews in food science and nutrition, 61, 1515–1536.
  • Fritzen-Freire, C.B., et al., 2013. Effect of the application of Bifidobacterium BB-12 microencapsulated by spray drying with prebiotics on the properties of ricotta cream. Food research international, 52 (1), 50–55.
  • Gani, A., et al., 2018. β-d-glucan as an enteric delivery vehicle for probiotics . International journal of biological macromolecules, 106, 864–869.
  • Gåserød, O., Smidsrød, O., and Skjåk-Braek, G., 1998. Microcapsules of alginate-chitosan–I: a quantitative study of the interaction between alginate and chitosan. Biomaterials, 19 (20), 1815–1825.
  • Gawkowski, D. and Chikindas, M.L., 2013. Non-dairy probiotic beverages: the next step into human health. Beneficial microbes, 4 (2), 127–242.
  • Gbassi, G.K., et al., 2009. Micro-encapsualtion of Lactobacillus plantarumspp in an alginate matrix coated with whey proteins. International journal of food microbiology, 129 (1), 103–105.
  • González-Ferrero, C., Irache, J.M., and González-Navarro, C.J., 2018. Soybean protein-based microparticles for oral delivery of probiotics with improved stability during storage and gut resistance. Food chemistry, 239, 879–888.
  • Grumet, L., Tromp, Y., and Stiegelbauer, V., 2020. The development of high-quality multispecies probiotic formulations: from bench to market. Nutrients, 12 (8), 2453.
  • Guerin, J., et al., 2017. Lactobacillus rhamnosus GG encapsulation by spray-drying: milk proteins clotting control to produce innovative matrices. Journal of food engineering., 193, 10–19.
  • Gunasekaran, S., 2014. Rationales of nano and micro-encapsulation for food ingredients. In: H.S. Kwak, ed. Nano and micro-encapsulation for foods. New York, NY: John Wiley & Sons, Ltd., 43–64.
  • Hee, K.W., et al., 2012. Probiotic properties of Weissella strains isolated from human faeces. Anaerobe, 18 (1), 96–102.
  • Heidebach, T., Först, P., and Kulozik, U., 2012. Microencapsulation of probiotic cells for food applications. Critical reviews in food science and nutrition, 52 (4), 291–311.
  • Huq, T., et al., 2013. Encapsulation of probiotic bacteria in biopolymeric system. Critical reviews in food science and nutrition, 53 (9), 909–916.
  • Ji, R., et al., 2019. Extending viability of Bifidobacterium longum in chitosan-coated alginate microcapsules using emulsification and internal gelation encapsulation technology. Frontiers microbiol, 10, 1389.
  • Jyothi, S.S., et al., 2012. Micro-encapsualtion: a review. International journal of pharma and bio sciences, (3), 509–531.
  • Kamalian, N., et al., 2014. Effect of alginate and chitosan on viability and release behavior of Bifidobacteriumpseudocatenulatum G4 in simulated gastrointestinal fluid. Carbohydrate polymers, 111 (11), 700–706.
  • Karimi, M., et al., 2020. Development of active antimicrobial poly (l-glutamic) acid-poly (l-lysine) packaging material to protect probiotic bacterium. Polymer testing 83, 106338.
  • Karimi, N., et al., 2015. Phytosome and liposome: the beneficial encapsulation systems in drug delivery and food application. Applied food biotechnology, 2 (3), 17–27.
  • Karthikeyan, N., et al., 2014. Enhancement of probiotic viability in ice cream by Micro-encapsualtion. International journal of environmental science and technology, 3 (1), 339–347.
  • Khem, H., Mortazavian, A. M., and Iravani, S., 2016. Technology and stability of probiotic in fermented milks. Probiotic and prebiotic foods: technology, stability and benefits to the human health. New York, NY: Nova Science Publishers Ltd., 131–169.
  • Kim, N.C., Kim, J.B., and Kwak, H.S., 2008. Micro-encapsualtion of Korean mistletoe (Viscum album var. coloratum) extract and its application into milk. Asian-Australasian journal of animal sciences, 21 (2), 299–306.
  • Kiran, F., Mokrani, M., and Osmanagaoglu, O., 2015. Effect of encapsulation on viability of Pediococcus pentosaceus OZF during its passage through the gastrointestinal tract model. Current microbiology, 71 (1), 95–105.
  • Krasaekoopt, W., 2013. Micro-encapsualtion of probiotics in hydrocolloid gel matrices: a review. Encapsulation, 24, 76–86.
  • Krasaekoopt, W. and Tandhanskul, A., 2014. Sensory and acceptance assessment of yoghurt containing probiotic beads in Thailand. Kasetsart journal - natural science, 42, 99.
  • Laelorspoen, N., et al., 2014. Micro-encapsualtion of Lactobacillus acidophilus in zein–alginate core–shell microcapsules via electro spraying. Journal of functional foods, 7 (70), 342–349.
  • Lancuški, A., et al., 2017. Design of starch-formate compound fibers as encapsulation platform for biotherapeutics. Carbohydrate polymers, 158, 68–76.
  • Librán, C.M., Castro, S., and Lagaron, J.M., 2017. Encapsulation by electrospray coating atomization of probiotic strains. Innovative food science & emerging technologies, 39, 216–222.
  • Liu, W., et al., 2016. Environmental stress stability of microencapsules based on liposomes decorated with chitosan and sodium alginate. Food chemistry, 196, 396–404.
  • Malmo, C., La Storia, A., and Mauriello, G., 2013. Microencapsulation of Lactobacillus reuteri DSM 17938 cells coated in alginate beads with chitosan by spray drying to use as a probiotic cell in a chocolate soufflé. Food and bioprocess technology, 6 (3), 795–805.
  • Martin-Dejardin, F., et al., 2013. A way to follow the viability of encapsulated Bifidobacterium bifidum subjected to a freeze-drying process in order to target the colon: interest of flow cytometry. European journal of pharmaceutical sciences: official journal of the european federation for pharmaceutical sciences, 49 (2), 166–174.
  • Mirzaei, H., Pourjafar, H., and Homayouni, A., 2012. Effect of calcium alginate and resistant starch Micro-encapsualtion on the survival rate of Lactobacillus acidophilus La5 and sensory properties in Iranian white brined cheese. Food chemistry, 132 (4), 1966–1970.
  • Mishra M., ed., 2015. Handbook of encapsulation and controlled release. Boca Raton, FL: CRC Press.
  • Mohamed, S.A., El-Sakhawy, M., and El-Sakhawy, M.A.M., 2020. Polysaccharides, protein and lipid -based natural edible films in food packaging: a review. Carbohydrate polymers, 238, 116178.
  • Moschakis, T. and Biliaderis, C.G., 2017. Biopolymer-based coacervates: structures, functionality and applications in food products. Current opinion in colloid & interface science, 28, 96–109.
  • Mousa, A., et al., 2014. Evaluation of physiochemical, textural, microbiological and sensory characteristics in set yoghurt reinforced by microencapsulated Bifidobacteriumbifidum F‐35. International journal of food science & technology, 49 (7), 1673–1679.
  • Nazzaro, F., et al., 2012. Microencapsulation in food science and biotechnology. Current opinion in biotechnology, 23 (2), 182–186.
  • Necas, J. and Bartosikova, L., 2013. Carrageenan: a review. Veterinární medicína, 58 (4), 187–205.
  • Nicolai, T. and Murray, B., 2017. Particle stabilized water in water emulsions. Food hydrocolloids, 68 (68), 157–163.
  • Nualkaekul, S., et al., 2013. Influence of encapsulation and coating materials on the survival of Lactobacillus plantarum and Bifidobacteriumlongum in fruit juices. Food research international., 53 (1), 304–311.
  • Ogunsona, E., Ojogbo, E., and Mekonnen, T., 2018. Advanced material applications of starch and its derivatives. European polymer journal, 108, 570–581.
  • Omar, J.M., et al., 2013. Lactobacillus fermentum and Lactobacillus amylovorus as probiotics alter body adiposity and gut micro flora in healthy persons. Journal of functional foods, 5 (1), 116–123.
  • Orazio, G., et al., 2015. Micro-encapsualtion of new probiotic formulations for gastrointestinal delivery: in vitro study to assess viability and biological properties. Applied microbiology and biotechnology, 99 (22), 9779–9789.
  • Ortakci, F. and Sert, S., 2012. Stability of free and encapsulated Lactobacillus acidophilus ATCC 4356 in yogurt and in an artificial human gastric digestion system. Journal of dairy science, 95 (12), 6918–6925.
  • Pan, L.X., et al., 2013. Encapsulation in alginate-skim milk microspheres improves viability of Lactobacillus bulgaricus in stimulated gastrointestinal conditions. International journal of food sciences and nutrition, 64 (3), 380–384.
  • Panghal, A., et al., 2019. Microencapsulation for delivery of probiotic bacteria. Nanobiotechnology in bioformulations. Cham, Switzerland: Springer, 135–160.
  • Pech-Canul, A.D.L.C., et al., 2020. A brief review of edible coating materials for the microencapsulation of probiotics. Coatings, 10 (3), 197.
  • Peredo, A.G., et al., 2016. The effect of prebiotics on the viability of encapsulated probiotic bacteria. LWT, 73, 191–196.
  • Picot, A. and Lacroix, C., 2004. Encapsulation of bifidobacteria in whey protein-based microcapsules and survival in simulated gastrointestinal conditions and in yoghurt. International dairy journal, 14 (6), 505–515.
  • Pillai, D.S., et al., 2012. Micro-encapsualtion of Garciniacowa fruit extract and effect of its use on pasta process and quality. International journal of food properties, 15 (3), 590–604.
  • Pinto, S.S., et al., 2012. Effects of the addition of microencapsulated Bifidobacterium BB-12 on the properties of frozen yoghurt. Journal of food engineering, 111 (4), 563–569.
  • Pourjafar, H., et al., 2020. Viability of microencapsulated and non-microencapsulated Lactobacilli in a commercial beverage. Biotechnology reports, 25, 00432.
  • Prasanna, P.H.P. and Charalampopoulos, D., 2018. Encapsulation of Bifidobacteriumlongum in alginate-dairy matrices and survival in simulated gastrointestinal conditions, refrigeration, cow milk and goat milk. Food bioscience, 21, 72–79.
  • Ramos, P.E., et al., 2018. Physiological protection of probiotic microcapsules by coatings. Critical reviews in food science and nutrition, 58 (11), 1864–1877.
  • Rashidinejad, A., et al., 2020. Co-encapsulation of probiotics with prebiotics and their application in functional/synbiotic dairy products. Critical reviews in food science and nutrition, 2020, 1–25.
  • Rathore, N.S., et al., 2014. Genetic stability in micropropagated Cleome gynandra revealed by SCoT analysis. Acta physiologiae plantarum, 36 (2), 555–559.
  • Riaz, Q.U.A. and Masud, T., 2013. Recent trends and applications of encapsulating materials for probiotic stability. Critical reviews in food science and nutrition, 53 (3), 231–244.
  • Ribeiro, J.S. and Veloso, C.M., 2021. Microencapsulation of natural dyes with biopolymers for application in food: a review. Food hydrocolloids, 112, 106374.
  • Rinaudo, M., 2014. Biomaterialesbasados en unpolisacarido natural: alginato. TIP, 17 (1), 92–96.
  • Rodrigues, D., et al., 2011. The potential effect of FOS and inulin upon probiotic bacterium performance in curdled milk matrices. Lwt - food science and technology, 44 (1), 100–108.
  • Sabikhi, L., et al., 2010. Resistance of microencapsulated Lactobacillus acidophilus LA1 to processing treatments and simulated gut conditions. Food and bioprocess technology, 3 (4), 586–593.
  • Samedi, L. and Charles, A.L., 2019. Viability of 4 probiotic bacteria microencapsulated with arrowroot starch in the simulated gastrointestinal tract (GIT) and yoghurt. Foods, 8 (5), 175.
  • Sanchez, M.T., Ruiz, M.A., and Morales, M.E., 2015. Microorganismosprobioticso. Ars pharmaceutica (internet), 56 (1), 45–59.
  • Sathyabama, S., et al., 2014. Co-encapsulation of probiotics with prebiotics on alginate matrix and its effect on viability in simulated gastric environment. Lwt - food science and technology, 57 (1), 419–425.,
  • Serna-Cock, L. and Vallejo-Castillo, V., 2013. Probiotic encapsulation. African journal of microbiology research, 7 (40), 4743–4753.
  • Shi, L. E., et al., 2014. Use of encapsulation technology for improving the viability of probiotics. Journal of functional foods, 2, 239–253.
  • Shi, L., et al., 2013. Encapsulation of Lactobacillus bulgaricus in carragenan-locust bean gum coated milk microspheres with double layer structure. Lwt - food science and technology, 54 (1), 147–151.
  • Silva, K.A., et al., 2013. Olive oil and lemon salad dressing microencapsulated by freeze-drying. Lwt - food science and technology, 50 (2), 569–574.
  • Singh, P., et al., 2017. Development of carboxymethyl cellulose-chitosan hybrid micro- and macroparticles for encapsulation of probiotic bacteria. Carbohydrate polymers, 175, 87–95.
  • Solanki, H.K., et al., 2013. Development of micro-encapsualtion delivery system for long-term preservation of probiotics as biotherapeutics agent. Biomed research international, 2013 (5), 1–276.
  • Sorndech, W., et al., 2018. Isomalto-oligosaccharides: recent insights in production technology and their use for food and medical applications. LWT, 95, 135–142.
  • Stamatopoulos, K., et al., 2021. Sporopollenin exine microcapsules as potential intestinal delivery system of probiotics. Small, 17 (7), 2004573.
  • Teodouro, R., et al., 2014. Characterization of microencapsulated rosemary essential oil and its antimicrobial effect on fresh dough. Food and bioprocess technology, l7, 2560–2569.
  • Tolve, R., et al., 2016. Encapsulation of health-promoting ingredients: applications in foodstuffs. International journal of food sciences and nutrition, 67 (8), 888–918.
  • Tripathi, M.K. and Giri, S.K., 2014. Probiotic functional foods: survival of probiotics during processing and storage. Journal of functional foods, 9, 225–241.
  • Umer, H., et al., 2011. Micro-encapsualtion: process, techniques and applications. International journal of research in pharmaceutical and biomedical sciences, 2 (2), 474–481.
  • Vandamme, T. F., et al., 2014. Microencapsulating bioactive for food. Beneficial microbes in fermented and functional foods. New York, NY: CRC Press, 255–271.
  • Villena, M.J.M., et al., 2015. Development of gastro-resistant tablets for the protection and intestinal delivery of Lactobacillus fermentum CECT 5716. International journal of pharmaceutics, 487 (1–2), 314–319.
  • Vivek, K., 2013. Use of encapsulated probiotics in dairy-based foods. International journal of food, agriculture and veterinary sciences, 3 (1), 188–199.
  • Wang, R., Tian, Z., and Chen, L., 2011. A novel process for microencapsualtion of fish oil with barley protein. Food research international, 44 (9), 2735–2741.
  • Yang, X., et al., 2015. Development and evaluation of novel microcapsules containing poppy-seed oil using complex coacervation. Journal of food engineering, 161 (16), 87–93.
  • Yao, M., et al., 2020. Progress in microencapsulation of probiotics: a review. Comprehensive reviews in food science and food safety, 19 (2), 857–874.
  • Yari, M., Fooladi, J., and Motlagh, M.A.K., 2015. Microencapsulation and Fermentation of Lactobacillus acidophilus LA-5 and Bifidobacterium BB-12. Applied food biotechnology, 2 (4), 27–32.
  • Ye, Q., Georges, N., and Selomulya, C., 2018. Microencapsulation of active ingredients in functional foods: From research stage to commercial food products. Trends in food science and technology, 78, 167–179.
  • Ying, D., et al., 2013. Microencapsulated Lactobacillus rhamnosus GG in whey protein and resistant starch matrices: probiotic survival in fruit juice. Journal of functional foods, 5 (1), 98–105.
  • Yoha, K.S., Moses, J.A., and Anandharamakrishnan, C., 2020. Effect of encapsulation methods on the physicochemical properties and the stability of Lactobacillus plantarum (NCIM 2083) in synbiotic powders and in-vitro digestion conditions. Journal of food engineering, 283, 110033.
  • Zanjani, M.A.K., et al., 2014. Micro-encapsulation of probiotics by calcium alginate-gelatinized starch with chitosan coating and evaluation of survival in simulated human gastro-intestinal condition. The Iranian journal of pharmaceutical research, 13 (3), 843–852.
  • Zaremotekhases, F., et al., 2020. Effect of sodium alginate fibers encapsulating rejuvenators on the self-healing capability and cracking resistance of asphalt mixtures. Journal of materials in civil engineering, 32 (12), 04020355.
  • Zargar, V., Asghari, M., and Dashti, A., 2015. A review on chitin and Chitosan polymers: structure, chemistry, solubility, derivatives and applications. Chembioeng reviews, 2 (3), 204–226.
  • Zhao, Y., et al., 2012. Effects of potential probiotic Bacillus subtilisT13 on growth, immunity and disease resistance against Vibrio splendidus infection in juvenile sea cucumber Apostichopusjaponicus. Fish & shellfish immunology, 32 (5), 750–755.
  • Zhao, Y., et al., 2020. Mechanism of emulsification and demulsification for temperature-sensitive ionic liquid microemulsion. Journal of molecular liquids, 319, 114–352.

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