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植物王国中最坚韧的物质:孢粉素研究进展

The Toughest Material in the Plant Kingdom: An Update on Sporopollenin.

作者信息

Grienenberger Etienne, Quilichini Teagen D

机构信息

Institut de biologie moléculaire des plantes, CNRS, Université de Strasbourg, Strasbourg, France.

Aquatic and Crop Resource Development Research Centre, National Research Council Canada, Saskatoon, SK, Canada.

出版信息

Front Plant Sci. 2021 Sep 3;12:703864. doi: 10.3389/fpls.2021.703864. eCollection 2021.

Abstract

The extreme chemical and physical recalcitrance of sporopollenin deems this biopolymer among the most resilient organic materials on Earth. As the primary material fortifying spore and pollen cell walls, sporopollenin is touted as a critical innovation in the progression of plant life to a terrestrial setting. Although crucial for its protective role in plant reproduction, the inert nature of sporopollenin has challenged efforts to determine its composition for decades. Revised structural, chemical, and genetic experimentation efforts have produced dramatic advances in elucidating the molecular structure of this biopolymer and the mechanisms of its synthesis. Bypassing many of the challenges with material fragmentation and solubilization, insights from functional characterizations of sporopollenin biogenesis , and , through a gene-targeted approach suggest a backbone of polyhydroxylated polyketide-based subunits and remarkable conservation of biochemical pathways for sporopollenin biosynthesis across the plant kingdom. Recent optimization of solid-state NMR and targeted degradation methods for sporopollenin analysis confirms polyhydroxylated α-pyrone subunits, as well as hydroxylated aliphatic units, and unique cross-linkage heterogeneity. We examine the cross-disciplinary efforts to solve the sporopollenin composition puzzle and illustrate a working model of sporopollenin's molecular structure and biosynthesis. Emerging controversies and remaining knowledge gaps are discussed, including the degree of aromaticity, cross-linkage profiles, and extent of chemical conservation of sporopollenin among land plants. The recent developments in sporopollenin research present diverse opportunities for harnessing the extraordinary properties of this abundant and stable biomaterial for sustainable microcapsule applications and synthetic material designs.

摘要

孢粉素具有极强的化学和物理稳定性,这使这种生物聚合物成为地球上最具韧性的有机材料之一。作为强化孢子和花粉细胞壁的主要物质,孢粉素被视为植物生命向陆地环境演化过程中的一项关键创新。尽管孢粉素在植物繁殖中的保护作用至关重要,但其惰性本质数十年来一直给确定其组成的工作带来挑战。经过修订的结构、化学和基因实验工作在阐明这种生物聚合物的分子结构及其合成机制方面取得了显著进展。通过绕过材料破碎和溶解方面的许多挑战,对孢粉素生物合成功能表征的见解以及通过基因靶向方法表明,孢粉素的骨架是基于多羟基化聚酮的亚基,并且在整个植物界,孢粉素生物合成的生化途径具有显著的保守性。最近对用于孢粉素分析的固态核磁共振和靶向降解方法的优化证实了多羟基化α-吡喃酮亚基以及羟基化脂肪族单元和独特的交联异质性。我们研究了解决孢粉素组成难题的跨学科努力,并阐述了孢粉素分子结构和生物合成的工作模型。讨论了新出现的争议和尚存的知识空白,包括孢粉素的芳香性程度、交联图谱以及陆地植物中孢粉素的化学保守程度。孢粉素研究的最新进展为利用这种丰富且稳定的生物材料的非凡特性实现可持续微胶囊应用和合成材料设计提供了多样的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9a83/8446667/71486dc744d4/fpls-12-703864-g001.jpg

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