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用于食品和农业应用的生物活性化合物包封

Encapsulation of Bioactive Compounds for Food and Agricultural Applications.

作者信息

Zabot Giovani Leone, Schaefer Rodrigues Fabiele, Polano Ody Lissara, Vinícius Tres Marcus, Herrera Esteban, Palacin Heidy, Córdova-Ramos Javier S, Best Ivan, Olivera-Montenegro Luis

机构信息

Laboratory of Agroindustrial Processes Engineering (LAPE), Federal University of Santa Maria (UFSM), Cachoeira do Sul 6508-010, Brazil.

Grupo de Investigación en Bioprocesos y Conversión de la Biomasa, Universidad San Ignacio de Loyola, Lima 15024, Peru.

出版信息

Polymers (Basel). 2022 Oct 6;14(19):4194. doi: 10.3390/polym14194194.

Abstract

This review presents an updated scenario of findings and evolutions of encapsulation of bioactive compounds for food and agricultural applications. Many polymers have been reported as encapsulated agents, such as sodium alginate, gum Arabic, chitosan, cellulose and carboxymethylcellulose, pectin, Shellac, xanthan gum, zein, pullulan, maltodextrin, whey protein, galactomannan, modified starch, polycaprolactone, and sodium caseinate. The main encapsulation methods investigated in the study include both physical and chemical ones, such as freeze-drying, spray-drying, extrusion, coacervation, complexation, and supercritical anti-solvent drying. Consequently, in the food area, bioactive peptides, vitamins, essential oils, caffeine, plant extracts, fatty acids, flavonoids, carotenoids, and terpenes are the main compounds encapsulated. In the agricultural area, essential oils, lipids, phytotoxins, medicines, vaccines, hemoglobin, and microbial metabolites are the main compounds encapsulated. Most scientific investigations have one or more objectives, such as to improve the stability of formulated systems, increase the release time, retain and protect active properties, reduce lipid oxidation, maintain organoleptic properties, and present bioactivities even in extreme thermal, radiation, and pH conditions. Considering the increasing worldwide interest for biomolecules in modern and sustainable agriculture, encapsulation can be efficient for the formulation of biofungicides, biopesticides, bioherbicides, and biofertilizers. With this review, it is inferred that the current scenario indicates evolutions in the production methods by increasing the scales and the techno-economic feasibilities. The Technology Readiness Level (TRL) for most of the encapsulation methods is going beyond TRL 6, in which the knowledge gathered allows for having a functional prototype or a representative model of the encapsulation technologies presented in this review.

摘要

本综述介绍了用于食品和农业应用的生物活性化合物包封的最新研究结果和进展情况。许多聚合物已被报道可作为包封剂,如海藻酸钠、阿拉伯胶、壳聚糖、纤维素和羧甲基纤维素、果胶、虫胶、黄原胶、玉米醇溶蛋白、普鲁兰多糖、麦芽糊精、乳清蛋白、半乳甘露聚糖、变性淀粉、聚己内酯和酪蛋白酸钠。该研究中考察的主要包封方法包括物理方法和化学方法,如冷冻干燥、喷雾干燥、挤压、凝聚、络合和超临界抗溶剂干燥。因此,在食品领域,生物活性肽、维生素、精油、咖啡因、植物提取物、脂肪酸、类黄酮、类胡萝卜素和萜类是主要的被包封化合物。在农业领域,精油、脂质、植物毒素、药物、疫苗、血红蛋白和微生物代谢产物是主要的被包封化合物。大多数科学研究有一个或多个目标,如提高制剂系统的稳定性、延长释放时间、保留和保护活性特性、减少脂质氧化、保持感官特性以及即使在极端的热、辐射和pH条件下仍呈现生物活性。考虑到全球对现代可持续农业中生物分子的兴趣日益增加,包封对于生物杀菌剂、生物杀虫剂、生物除草剂和生物肥料的制剂可能是有效的。通过本综述可以推断,当前情况表明生产方法在规模和技术经济可行性方面有所发展。大多数包封方法的技术就绪水平(TRL)正在超越TRL 6,在TRL 6中,所积累的知识使得能够拥有本综述中介绍的包封技术的功能原型或代表性模型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d8d9/9571964/14bc56e4bd64/polymers-14-04194-g001.jpg

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