Mori Takahiro, Sakurada Kosuke, Awakawa Takayoshi, He Haibin, Ushimaru Richiro, Abe Ikuro
Graduate School of Pharmaceutical Sciences, The University of Tokyo, Tokyo, Japan.
Collaborative Research Institute for Innovative Microbiology, The University of Tokyo, Tokyo, Japan.
J Antibiot (Tokyo). 2025 Feb;78(3):149-158. doi: 10.1038/s41429-024-00798-0. Epub 2024 Dec 13.
Altemicidin and its analogs are valuable sulfonamide antibiotics with valuable antitumor and antibacterial activities. Structures of altemicidin and congeners feature an unusual sulfonamide side chain. In the biosynthesis of altemicidin, the aldehyde dehydrogenase SbzJ catalyzes the conversion of 2-sulfamoylacetic aldehyde into 2-sulfamoylacetic acid, a key step in producing the sulfonamide side chain. Here, we conducted the biochemical characterization and structure-function analysis of SbzJ. In vitro assays revealed that SbzJ exhibits substrate promiscuity, accepting various aldehyde substrates and cofactors. The crystal structure of SbzJ in complex with NAD, along with subsequent mutagenesis studies, provided insights into how SbzJ recognizes the sulfonamide group of the substrate. Notably, His431 and Glu240 were identified as key residues serving as catalytic bases to activate the catalytic Cys273 and a water molecule. These findings provide structural and mechanistic understanding of SbzJ, offering potential for enzyme engineering to generate novel bioactive compounds.
杀蚊菌素及其类似物是具有重要抗肿瘤和抗菌活性的有价值的磺胺类抗生素。杀蚊菌素及其同系物的结构具有不寻常的磺胺侧链。在杀蚊菌素的生物合成中,醛脱氢酶SbzJ催化2-氨磺酰乙醛转化为2-氨磺酰乙酸,这是产生磺胺侧链的关键步骤。在此,我们对SbzJ进行了生化特性分析和结构-功能分析。体外试验表明,SbzJ表现出底物选择性,可接受各种醛底物和辅因子。SbzJ与NAD复合物的晶体结构以及随后的诱变研究,为了解SbzJ如何识别底物的磺胺基团提供了线索。值得注意的是,His431和Glu 240被确定为关键残基,作为催化碱基激活催化性Cys273和一个水分子。这些发现提供了对SbzJ的结构和机制的理解,为酶工程产生新型生物活性化合物提供了潜力。