Li Anbang, Li Kecheng, Xing Ronge, Liu Song
CAS and Shandong Key Laboratory of Experimental Marine Biology, Institute of Oceanology, Chinese Academy of Sciences, Qingdao 266071, China; Laboratory for Marine Drugs and Bioproducts, Qingdao Marine Science and Technology Center, Qingdao 266237, China; University of Chinese Academy of Sciences, Beijing 100049, China.
CAS and Shandong Key Laboratory of Experimental Marine Biology, Institute of Oceanology, Chinese Academy of Sciences, Qingdao 266071, China; Laboratory for Marine Drugs and Bioproducts, Qingdao Marine Science and Technology Center, Qingdao 266237, China.
Bioresour Technol. 2025 Nov;436:133022. doi: 10.1016/j.biortech.2025.133022. Epub 2025 Jul 23.
Chitin, the second most abundant biopolymer in nature, exhibits diverse biological activities and substantial application prospects. Nevertheless, the inherent recalcitrance of its polysaccharides poses significant challenges to effective utilization. Conventional techniques for chitin utilization have raised concerns regarding environmental protection and resource efficiency, necessitating the exploration of novel approaches. Biological enzymatic degradation of chitin, particularly through the action of lytic polysaccharide monooxygenases (LPMOs), has emerged as a promising strategy for its efficient and environmentally sustainable utilization. LPMOs facilitate the oxidative degradation of biopolymers, thereby enabling the efficient and eco-friendly conversion of biomass resources. Herein, we comprehensively reviewed the research progress in the origin, classification, reaction mechanism, influencing factors, product characteristics of chitin-active LPMOs discovered so far, and its synergistic effects with chitinases were further introduced. This review provides thorough understanding of the role of chitin-active LPMOs in chitin degradation, and lays a solid theoretical foundation for the future development of more potent chitin-converting enzymes or enzyme cocktails in biotechnology applications.
几丁质是自然界中第二丰富的生物聚合物,具有多种生物活性和广阔的应用前景。然而,其多糖固有的顽固性给有效利用带来了重大挑战。传统的几丁质利用技术引发了对环境保护和资源效率的担忧,因此需要探索新方法。几丁质的生物酶促降解,特别是通过裂解多糖单加氧酶(LPMOs)的作用,已成为其高效和环境可持续利用的一种有前景的策略。LPMOs促进生物聚合物的氧化降解,从而实现生物质资源的高效和环保转化。在此,我们全面综述了迄今为止发现的几丁质活性LPMOs的起源、分类、反应机制、影响因素、产物特性等方面的研究进展,并进一步介绍了其与几丁质酶的协同作用。本综述深入了解了几丁质活性LPMOs在几丁质降解中的作用,为未来在生物技术应用中开发更有效的几丁质转化酶或酶混合物奠定了坚实的理论基础。