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Supramolecular Self-Assembled Chaos: Polyphenolic Lignin’s Barrier to Cost-Effective Lignocellulosic Biofuels

机译:超分子自组装混沌:多酚木质素对成本效益高的木质纤维素生物燃料的壁垒

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摘要

Phenylpropanoid metabolism yields a mixture of monolignols that undergo chaotic, non-enzymatic reactions such as free radical polymerization and spontaneous self-assembly in order to form the polyphenolic lignin which is a barrier to cost-effective lignocellulosic biofuels. Post-synthesis lignin integration into the plant cell wall is unclear, including how the hydrophobic lignin incorporates into the wall in an initially hydrophilic milieu. Self-assembly, self-organization and aggregation give rise to a complex, 3D network of lignin that displays randomly branched topology and fractal properties. Attempts at isolating lignin, analogous to archaeology, are instantly destructive and non-representative of in planta. Lack of plant ligninases or enzymes that hydrolyze specific bonds in lignin-carbohydrate complexes (LCCs) also frustrate a better grasp of lignin. Supramolecular self-assembly, nano-mechanical properties of lignin-lignin, lignin-polysaccharide interactions and association-dissociation kinetics affect biomass deconstruction and thereby cost-effective biofuels production.
机译:苯丙烷代谢产生单酚混合物,该单酚混合物进行混沌的,非酶促的反应,例如自由基聚合和自发自组装,从而形成多酚木质素,这是成本效益高的木质纤维素生物燃料的障碍。合成后木质素是否整合到植物细胞壁尚不清楚,包括疏水性木质素如何在最初的亲水环境中整合到壁中。自组装,自组织和聚集产生了一个复杂的木质素3D网络,该网络显示出随机分支的拓扑和分形特性。类似于考古学,尝试分离木质素会立即破坏植物,并不能代表植物。缺乏植物木质素酶或水解木质素-碳水化合物复合物(LCCs)中特定键的酶也使木质素的更好掌握变得令人沮丧。超分子自组装,木质素-木质素的纳米机械性能,木质素-多糖相互作用和缔合-解离动力学影响生物质的解构,从而影响成本效益的生物燃料生产。

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