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现代甘露聚糖:一种半纤维素的历程。

Modern mannan: a hemicellulose's journey.

作者信息

Voiniciuc Cătălin

机构信息

Independent Junior Research Group-Designer Glycans, Leibniz Institute of Plant Biochemistry, Halle (Saale), 06120, Germany.

Horticultural Sciences Department, University of Florida, Gainesville, FL, 32611, USA.

出版信息

New Phytol. 2022 May;234(4):1175-1184. doi: 10.1111/nph.18091. Epub 2022 Mar 29.

DOI:10.1111/nph.18091
PMID:35285041
Abstract

Hemicellulosic polysaccharides built of β-1,4-linked mannose units have been found throughout the plant kingdom and have numerous industrial applications. Here, I review recent advances in the biosynthesis and modification of plant β-mannans. These matrix polymers can associate with cellulose bundles to impact the mechanical properties of plant fibers or biocomposites. In certain algae, mannan microfibrils even replace cellulose as the dominant structural component of the cell wall. Conversely, patterned galactoglucomannan found in Arabidopsis thaliana seed mucilage significantly modulates cell wall architecture and abiotic stress tolerance despite its relatively low content. I also discuss the subcellular requirements for β-mannan biosynthesis, the increasing number of carbohydrate-active enzymes involved in this process, and the players that continue to be puzzling. I discuss how cellulose synthase-like enzymes elongate (gluco)mannans in orthogonal hosts and highlight the discoveries of plant enzymes that add specific galactosyl or acetyl decorations. Hydrolytic enzymes such as endo-β-1,4-mannanases have recently been involved in a wide range of biological contexts including seed germination, wood formation, heavy metal tolerance, and defense responses. Synthetic biology tools now provide faster tracks to modulate the increasingly-relevant mannan structures for improved plant traits and bioproducts.

摘要

由β-1,4-连接的甘露糖单元构成的半纤维素多糖在整个植物界都有发现,并具有众多工业应用。在此,我综述了植物β-甘露聚糖生物合成与修饰的最新进展。这些基质聚合物可与纤维素束结合,影响植物纤维或生物复合材料的机械性能。在某些藻类中,甘露聚糖微纤丝甚至取代纤维素成为细胞壁的主要结构成分。相反,拟南芥种子黏液中发现的规则化半乳葡甘露聚糖尽管含量相对较低,但能显著调节细胞壁结构和非生物胁迫耐受性。我还讨论了β-甘露聚糖生物合成的亚细胞需求、参与该过程的碳水化合物活性酶数量的增加以及仍令人困惑的因素。我探讨了纤维素合酶样酶如何在正交宿主中延长(葡)甘露聚糖,并强调了添加特定半乳糖基或乙酰基修饰的植物酶的发现。诸如内切β-1,4-甘露聚糖酶等水解酶最近参与了包括种子萌发、木材形成、重金属耐受性和防御反应在内的广泛生物学过程。合成生物学工具现在为调节日益相关的甘露聚糖结构以改善植物性状和生物产品提供了更快的途径。

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