Kumar Manish, Rajput Meenakshi, Soni Twinkle, Vivekanand Vivekanand, Pareek Nidhi
Microbial Catalysis and Process Engineering Laboratory, Department of Microbiology, School of Life Sciences, Central University of Rajasthan, Ajmer, India.
Centre for Energy and Environment, Malaviya National Institute of Technology, Jaipur, India.
Front Chem. 2020 Jun 24;8:469. doi: 10.3389/fchem.2020.00469. eCollection 2020.
Chitooligosaccharides (COS) and -acetyl glucosamine (GlcNAc) are currently of enormous relevance to pharmaceutical, nutraceutical, cosmetics, food, and agriculture industries due to their wide range of biological activities, which include antimicrobial, antitumor, antioxidant, anticoagulant, wound healing, immunoregulatory, and hypocholesterolemic effects. A range of methods have been developed for the synthesis of COS with a specific degree of polymerization along with high production titres. In this respect, chemical, enzymatic, and microbial means, along with modern genetic manipulation techniques, have been extensively explored; however no method has been able to competently produce defined COS and GlcNAc in a mono-system approach. Henceforth, the chitin research has turned toward increased exploration of chemoenzymatic processes for COS and GlcNAc generation. Recent developments in the area of green chemicals, mainly ionic liquids, proved vital for the specified COS and GlcNAc synthesis with better yield and purity. Moreover, engineering of COS and GlcNAc to generate novel derivatives viz. carboxylated, sulfated, phenolic acid conjugated, amino derived COS, etc., further improved their biological activities. Consequently, chemoenzymatic synthesis and engineering of COS and GlcNAc emerged as a useful approach to lead the biologically-active compound-based biomedical research to an advanced prospect in the forthcoming era.
壳寡糖(COS)和 N-乙酰葡萄糖胺(GlcNAc)由于其广泛的生物活性,目前在制药、营养保健品、化妆品、食品和农业等行业具有极其重要的意义,这些生物活性包括抗菌、抗肿瘤、抗氧化、抗凝血、伤口愈合、免疫调节和降胆固醇作用。已经开发出一系列方法来合成具有特定聚合度以及高产量的 COS。在这方面,化学、酶法和微生物方法以及现代基因操作技术都得到了广泛探索;然而,尚无方法能够以单一系统方法高效生产特定的 COS 和 GlcNAc。因此,甲壳素研究已转向更多地探索用于生成 COS 和 GlcNAc 的化学酶法过程。绿色化学品领域的最新进展,主要是离子液体,被证明对特定的 COS 和 GlcNAc 合成至关重要,可实现更高的产率和纯度。此外,对 COS 和 GlcNAc 进行工程改造以生成新型衍生物,即羧化、硫酸化、酚酸共轭、氨基衍生的 COS 等,进一步提高了它们的生物活性。因此,COS 和 GlcNAc 的化学酶法合成与工程改造成为一种有用的方法,可引领基于生物活性化合物的生物医学研究在未来时代迈向更高的前景。