解锁木质素增值和利用木质素为基础的原料生物制造。

IF 8 2区 生物学 Q1 BIOLOGY
Science China Life Sciences Pub Date : 2025-04-01 Epub Date: 2024-12-18 DOI:10.1007/s11427-024-2792-x
Le Gao, Fangting Jiang, Zhaokun Zhang, Tongtong Bao, Daochen Zhu, Xin Wu
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引用次数: 0

摘要

木质素是一种能量丰富、适应性强的聚合物,由苯丙类单体组成,被植物用于结构加固、输水和防御机制,是地球上第二大最普遍的生物聚合物,仅次于纤维素。尽管木质素普遍存在,但在将生物质转化为燃料和化学品的过程中,木质素经常未得到充分利用。相反,由于其复杂的成分和抗分解性,它通常被焚烧作为工业热,这给目标定价带来了障碍。与化学催化剂相比,生物酶不仅可以选择性地转化木质素成分,而且可以无缝地整合到细胞结构中,从而为木质素增强提供了一种潜在的有效途径。本文综述了木质素降解的最新生物策略、木质素降解酶、代谢途径和木质素降解菌株或菌群,并对木质素降解的潜在机制进行了批判性评价。代谢和基因工程在将木质素及其衍生物转向三羧酸循环等代谢途径方面发挥着至关重要的作用,为其增值开辟了新的途径。木质素增值的最新进展进行了审查,突出了关键的挑战和有前途的解决方案。此外,该审查强调了创新方法的重要性,例如利用数字系统和合成生物学,以释放木质素衍生原料作为可持续原料的商业潜力。人工智能驱动的技术有望克服当前的挑战,推动木质素增值的广泛采用,为未来的生物基制造提供糖基原料的替代方案。利用可利用的木质素渣来合成高价值的化学品或能源,甚至替代食品,解决了食物-能源-水关系中迫在眉睫的各种危机。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unlocking lignin valorization and harnessing lignin-based raw materials for bio-manufacturing.

Lignin, an energy-rich and adaptable polymer comprising phenylpropanoid monomers utilized by plants for structural reinforcement, water conveyance, and defense mechanisms, ranks as the planet's second most prevalent biopolymer, after cellulose. Despite its prevalence, lignin is frequently underused in the process of converting biomass into fuels and chemicals. Instead, it is commonly incinerated for industrial heat due to its intricate composition and resistance to decomposition, presenting obstacles for targeted valorization. In contrast to chemical catalysts, biological enzymes show promise not only in selectively converting lignin components but also in seamlessly integrating into cellular structures, offering biocatalysis as a potentially efficient pathway for lignin enhancement. This review comprehensively summarizes cutting-edge biostrategies, ligninolytic enzymes, metabolic pathways, and lignin-degrading strains or consortia involved in lignin degradation, while critically evaluating the underlying mechanisms. Metabolic and genetic engineering play crucial roles in redirecting lignin and its derivatives towards metabolic pathways like the tricarboxylic acid cycle, opening up novel avenues for its valorization. Recent advancements in lignin valorization are scrutinized, highlighting key challenges and promising solutions. Furthermore, the review underscores the importance of innovative approaches, such as leveraging digital systems and synthetic biology, to unlock the commercial potential of lignin-derived raw materials as sustainable feedstocks. Artificial intelligence-driven technologies offer promise in overcoming current challenges and driving widespread adoption of lignin valorization, presenting an alternative to sugar-based feedstocks for bio-based manufacturing in the future. The utilization of available lignin residue for synthesis of high-value chemicals or energy, even alternative food, addresses various crises looming in the food-energy-water nexus.

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来源期刊
CiteScore
15.10
自引率
8.80%
发文量
2907
审稿时长
3.2 months
期刊介绍: Science China Life Sciences is a scholarly journal co-sponsored by the Chinese Academy of Sciences and the National Natural Science Foundation of China, and it is published by Science China Press. The journal is dedicated to publishing high-quality, original research findings in both basic and applied life science research.
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