Laboratory of Food Chemistry, Wageningen University & Research, Bornse Weilanden 9, 6708 WG Wageningen, the Netherlands; Wageningen Food & Biobased Research, Wageningen University & Research, Bornse Weilanden 9, 6708 WG Wageningen, the Netherlands; Faculty of Biotechnology, University of Surabaya (UBAYA), Surabaya 60293, Indonesia.
Laboratory of Food Chemistry, Wageningen University & Research, Bornse Weilanden 9, 6708 WG Wageningen, the Netherlands.
Biotechnol Adv. 2022 Dec;61:108046. doi: 10.1016/j.biotechadv.2022.108046. Epub 2022 Oct 4.
Lipoxygenases (LOXs) are enzymes that catalyze dioxygenation of polyunsaturated fatty acids into fatty acid hydroperoxides. The formed fatty acid hydroperoxides are of interest as they can readily be transformed to a number of value-added compounds. LOXs are widely distributed in both eukaryotic and prokaryotic organisms, including humans, animals, plants, fungi and bacteria. Compared to eukaryotic enzymes, bacterial enzymes are typically easier to produce at industrial scale in a heterologous host. However, many bacterial LOXs were only identified relatively recently and their structure and biochemical characteristics have not been extensively studied. A better understanding of bacterial LOXs' structure and characteristics will lead to the wider application of these enzymes in industrial processes. This review focuses on recent findings on the biochemical characteristics of bacterial LOXs in relation to their molecular structure. The basis of LOX catalysis as well as emerging determinants explaining the regio- and enantioselectivity of different LOXs are also summarized and critically reviewed. Clustering and phylogenetic analyses of bacterial LOX sequences were performed. Finally, the improvement of bacterial LOXs by mutagenesis approaches and their application in chemical synthesis are discussed.
脂氧合酶(LOXs)是一种能够催化多不饱和脂肪酸双加氧生成脂肪酸氢过氧化物的酶。形成的脂肪酸氢过氧化物很有研究价值,因为它们可以很容易地转化为许多有价值的化合物。LOXs 广泛存在于真核生物和原核生物中,包括人类、动物、植物、真菌和细菌。与真核酶相比,细菌酶通常更容易在异源宿主中大规模生产。然而,许多细菌 LOXs 直到最近才被鉴定出来,它们的结构和生化特性尚未得到广泛研究。更好地了解细菌 LOXs 的结构和特性将导致这些酶在工业过程中的更广泛应用。本文综述了细菌 LOXs 的生化特性及其与分子结构的关系的最新发现。还总结和批判性地回顾了 LOX 催化的基础以及解释不同 LOXs 区域和对映选择性的新兴决定因素。对细菌 LOX 序列进行了聚类和系统发育分析。最后,讨论了通过诱变方法改进细菌 LOXs 及其在化学合成中的应用。