Biotechnology, Department of Chemistry, Lund University, Post Office Box 124, 221 00 Lund, Sweden.
Faculty of Life and Environmental Sciences, University of Iceland, Askja, IS-101 Reykjavík, Iceland.
Molecules. 2020 Feb 19;25(4):930. doi: 10.3390/molecules25040930.
Marine macroalgal (seaweed) polysaccharides are highly promising for next-generation applications in several industries. However, despite the reported comprehensive potential of these polysaccharides, commercial products are scarce on the market. Seaweed cultivations are increasing in number and production quantity, owing to an elevated global trend of utilization interest in seaweed. The extraction of polysaccharides from seaweed generally generates low yields, but novel methods are being developed to facilitate and improve the extraction processes. Current areas of applications for seaweed polysaccharides mainly take advantage of the physicochemical properties of certain polysaccharides, such as gelling, thickening and emulsifying. However, many of the numerous bioactivities reported are still only at research level and lack clinical evidence for commercialization. It has been suggested the construction of smaller units may generate better defined molecules that are more suitable for biomedical applications. Enzymatic modification is a promising tool for the generation of more defined, targeted biomolecules. This review covers; structural differences between the most predominant marine algal polysaccharides, extraction processes, modification alternatives, as well as a summary of current and potential next-generation application areas.
海洋大型藻类(海藻)多糖在多个行业的下一代应用中具有广阔的前景。然而,尽管这些多糖的综合潜力已被广泛报道,但市场上商业产品却很少。由于全球对海藻利用的兴趣日益增加,海藻养殖的数量和产量都在增加。从海藻中提取多糖通常产量较低,但目前正在开发新的方法来促进和改进提取过程。目前海藻多糖的应用主要利用某些多糖的物理化学性质,如胶凝、增稠和乳化。然而,许多报道的众多生物活性仍仅处于研究水平,缺乏商业化的临床证据。有人建议构建更小的单位可能会产生更明确的分子,更适合生物医学应用。酶修饰是生成更明确、更有针对性的生物分子的有前途的工具。本文综述了最主要的海洋藻类多糖之间的结构差异、提取过程、修饰方法,以及当前和潜在的下一代应用领域的总结。