微藻多糖:粮食生产和可持续农业的替代来源

Juliana Botelho Moreira, B. Vaz, B. B. Cardias, Camila Gonzales Cruz, Ana Claudia Araujo de Almeida, Jorge Alberto Vieira Costa, M. G. Morais
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引用次数: 25

摘要

碳水化合物或多糖是卡尔文循环中光合作用和碳固定的主要产物。与其他来源相比,从微藻中提取的多糖具有安全性、生物相容性、可生物降解性、稳定性和多用途性。这些聚合物大分子根据每种微藻呈现出复杂的生化结构。此外,它们还具有乳化特性和生物特性,包括抗氧化、抗炎、抗肿瘤和抗菌活性。有些微藻的碳水化合物浓度很高。其他物种可以通过改变温度和光照、碳源、宏量和微量元素限制(主要是氮)以及生理盐水胁迫来调整其代谢以产生更多的糖。除了在不利条件下生长外,微藻还可以利用工业废水作为营养物质的替代来源。微藻多糖主要由戊糖和己糖单糖亚基组成,具有许多糖苷键。微藻多糖可以是细胞壁的结构成分,可以是能量的储存,也可以是与细胞相互作用的保护性多糖。微藻多糖的工业用途正在增加。这些微生物表现出流变学和生物学特性,使它们在食品工业和农业中具有很好的应用前景。因此,微藻多糖在几个领域的潜在应用是有希望的可持续替代品,而生产微藻种类的选择取决于所需的功能活性。在此背景下,本文综述了微藻多糖生产技术,强调了其在食品、动物饲料和农业领域的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microalgae Polysaccharides: An Alternative Source for Food Production and Sustainable Agriculture
Carbohydrates or polysaccharides are the main products derived from photosynthesis and carbon fixation in the Calvin cycle. Compared to other sources, polysaccharides derived from microalgae are safe, biocompatible, biodegradable, stable, and versatile. These polymeric macromolecules present complex biochemical structures according to each microalgal species. In addition, they exhibit emulsifying properties and biological characteristics that include antioxidant, anti-inflammatory, antitumor, and antimicrobial activities. Some microalgal species have a naturally high concentration of carbohydrates. Other species can adapt their metabolism to produce more sugars from changes in temperature and light, carbon source, macro and micronutrient limitations (mainly nitrogen), and saline stress. In addition to growing in adverse conditions, microalgae can use industrial effluents as an alternative source of nutrients. Microalgal polysaccharides are predominantly composed of pentose and hexose monosaccharide subunits with many glycosidic bonds. Microalgae polysaccharides can be structural constituents of the cell wall, energy stores, or protective polysaccharides and cell interaction. The industrial use of microalgae polysaccharides is on the rise. These microorganisms present rheological and biological properties, making them a promising candidate for application in the food industry and agriculture. Thus, microalgae polysaccharides are promising sustainable alternatives for potential applications in several sectors, and the choice of producing microalgal species depends on the required functional activity. In this context, this review article aims to provide an overview of microalgae technology for polysaccharide production, emphasizing its potential in the food, animal feed, and agriculture sector.
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