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深入了解果胶在消除有毒 Cd 和与乙醇生产耦合的染料方面的作用,同时在理想的木质纤维素中进行。

Insights into pectin dominated enhancements for elimination of toxic Cd and dye coupled with ethanol production in desirable lignocelluloses.

机构信息

Biomass & Bioenergy Research Center, College of Plant Science & Technology, Huazhong Agricultural University, Wuhan 430070, China; Laboratory of Biomass Engineering & Nanomaterial Application in Automobiles, College of Food Science & Chemical Engineering, Hubei University of Arts & Science, Xiangyang, China.

Biomass & Bioenergy Research Center, College of Plant Science & Technology, Huazhong Agricultural University, Wuhan 430070, China.

出版信息

Carbohydr Polym. 2022 Jun 15;286:119298. doi: 10.1016/j.carbpol.2022.119298. Epub 2022 Mar 2.

DOI:10.1016/j.carbpol.2022.119298
PMID:35337510
Abstract

Pectin is a minor wall polysaccharide with potential applications for bioproducts. Despite the application of specific plants and biomass-based sorbents for environmental remediation, little has been reported about characteristic roles of pectin. Using the natural rice mutant (Osfc16) treated with Cd, this study explored that pectin could predominately enhance Cd accumulation with lignocellulose, mainly due to remarkably raised uronic acids deposition. The Cd-treatment further reduced lignocellulose recalcitrance for significantly enhanced biomass saccharification and bioethanol production along with almost complete Cd release. Using all remaining fermentation rice residues that are of typical ribbon-structure and large surface, this study generated novel biosorbents by optimal chemical oxidation with the pectin extraction from citrus peels, and examined consistently raised Cd and methylene blue (MB) adsorption capacities. Therefore, this work has proposed a mechanism model about multiple pectin enrichment roles for Cd and MB removals in agricultural and industry locations with full lignocellulose utilization towards bioethanol production.

摘要

果胶是一种含量较少的细胞壁多糖,具有生物制品应用的潜力。尽管已经应用了特定的植物和基于生物质的吸附剂来进行环境修复,但关于果胶的特征作用却鲜有报道。本研究利用经过 Cd 处理的天然水稻突变体(Osfc16),发现果胶可以主要通过木质纤维素增强 Cd 的积累,这主要归因于显著增加的糖醛酸沉积。Cd 处理进一步降低了木质纤维素的抗降解性,从而显著提高了生物质糖化和生物乙醇的产量,同时几乎完全释放了 Cd。本研究利用剩余的发酵水稻残渣(具有典型的带状结构和较大的表面积),通过从柑橘皮中提取果胶进行最佳化学氧化,生成了新型的生物吸附剂,并对 Cd 和亚甲基蓝(MB)吸附能力进行了持续的提高。因此,本工作提出了一个关于在农业和工业领域中,利用果胶的多重富集作用去除 Cd 和 MB 的机制模型,同时充分利用木质纤维素生产生物乙醇。

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