Guangdong Key Laboratory of Chiral Molecule and Drug Discovery, School of Pharmaceutical Sciences, Sun Yat-sen University, Guangzhou 510006, China.
Institute of Clinical Pharmacology, Guangzhou University of Chinese Medicine, Guangzhou 510405, China.
Int J Biol Macromol. 2019 Aug 15;135:725-733. doi: 10.1016/j.ijbiomac.2019.05.169. Epub 2019 May 23.
Staphylopine is a newly identified broad-spectrum metallophore for metal acquisition, and it plays important roles in the survival and virulence of Staphylococcus aureus and other pathogens in the metal-scarce environment in hosts. CntK catalyzes the first step of staphylopine synthesis by converting L-histidine to D-histidine to provide an essential building block of staphylopine. Herein, the crystal structures of S. aureus CntK (SaCntK) and its C72S variant are determined at 1.82 and 1.58 Å resolution, respectively. SaCntK forms a homodimer and each subunit contains a two-domain α/β structure. Its overall structure resembles diaminopimelate epimerase, although their sequence identities are lower than 22%. SaCntK is specific for histidine, whereas other proteinogenic amino acids, with the exception of arginine, do not show any binding with SaCntK. Structural modeling suggested that residues Asn16, Glu46, Gln47 and Glu208 are responsible for specific substrate binding, and their substitutions significantly reduced the binding of histidine to SaCntK. Structural modeling suggested SaCntK uses a two-base catalytic mechanism, which has been observed in many cofactor-independent racemases. Our study provides critical insights into the structure and functions of CntK in staphylopine synthesis, which makes it helpful for developing potential antibiotics targeting the staphylopine-mediated metal acquisition process in bacteria.
葡萄球菌素是一种新鉴定的广谱金属载体,可用于获取金属,它在金黄色葡萄球菌和其他病原体在宿主金属稀缺环境中的生存和毒力中发挥重要作用。CntK 通过将 L-组氨酸转化为 D-组氨酸来催化葡萄球菌素合成的第一步,为葡萄球菌素提供必需的构建块。本文分别以 1.82 和 1.58Å的分辨率确定了金黄色葡萄球菌 CntK(SaCntK)及其 C72S 变体的晶体结构。SaCntK 形成同源二聚体,每个亚基包含一个两结构域的 α/β 结构。其整体结构类似于二氨基庚二酸差向异构酶,尽管它们的序列同一性低于 22%。SaCntK 特异性识别组氨酸,而其他蛋白质氨基酸,除精氨酸外,与 SaCntK 没有任何结合。结构建模表明,残基 Asn16、Glu46、Gln47 和 Glu208 负责特定的底物结合,它们的取代显著降低了 SaCntK 对组氨酸的结合。结构建模表明 SaCntK 使用双碱基催化机制,这种机制在许多辅酶非依赖性消旋酶中都有观察到。本研究为葡萄球菌素合成中 CntK 的结构和功能提供了重要的见解,这有助于开发针对细菌中葡萄球菌素介导的金属获取过程的潜在抗生素。