Swiss Federal Institute for Materials Science and Technology (Empa), Laboratory of Analytical Chemistry, Überlandstrasse 129, CH-8600 Dübendorf, Switzerland.
Chemosphere. 2013 Feb;90(6):1911-9. doi: 10.1016/j.chemosphere.2012.10.019. Epub 2012 Nov 21.
The haloalkane dehalogenase LinB from Sphingobium indicum B90A converts β-hexachlorocyclohexane (β-HCH), the most persistent HCH stereoisomer, to mono- and dihydroxylated metabolites. Recently, we reported that LinB also transforms α-, β- and γ-hexabromocyclododecanes (HBCDs), which are structurally related to HCHs. Here, we show that LinB catalyzes the hydroxylation of δ-HBCD to two pentabromocyclododecanols (PBCDOHs) and two tetrabromocyclododecadiols (TBCDDOHs). The stereochemistry of this enzymatic transformation was deduced from XRD crystal structure data of the substrate δ-HBCD and α(2)-PBCDOH, one of the biotransformation products. Five stereocenters of δ-HBCD are unchanged but the one at C6 is converted to an alcohol with inversion from S- to R-configuration in a nucleophilic, S(N)2-like substitution reaction. Only α(2)-PBCDOH with the 1R,2R,5S,6R,9R,10S-configuration is obtained but not its enantiomer. With only two of the 64 PBCDOHs formed, these transformations indeed are regio- and stereoselective. A conformational analysis revealed that the triple-turn motive, which is predominant in δ-HBCD and in several other HBCD stereoisomers, is also found in the product. This shows that LinB preferentially converted reactive bromine atoms but not those in the conserved triple-turn motive. The widespread contamination with HCHs triggered the bacterial evolution of dehalogenases which acquired the ability to convert these pollutants and their metabolites. We here demonstrate that LinB of S. indicum also transforms HBCDs regio- and stereoselectively following a similar mechanism.
来自印度鞘氨醇单胞菌 B90A 的卤代烷脱卤酶 LinB 将β-六氯环己烷(β-HCH),最持久的 HCH 立体异构体,转化为单和双羟基化代谢物。最近,我们报道 LinB 还转化了结构上与 HCH 相关的α-,β-和γ-六溴环十二烷(HBCDs)。在这里,我们表明 LinB 催化 δ-HBCD 的羟化作用,生成两种五溴环十二烷醇(PBCDOHs)和两种四溴环十二烷二醇(TBCDDOHs)。这种酶促转化的立体化学从底物 δ-HBCD 和生物转化产物之一的α(2)-PBCDOH 的 XRD 晶体结构数据中推断出来。δ-HBCD 的五个手性中心保持不变,但 C6 上的手性中心在亲核 S(N)2 样取代反应中由 S-构型转化为 R-构型的醇。仅获得具有 1R,2R,5S,6R,9R,10S-构型的α(2)-PBCDOH,而不是其对映异构体。在所形成的 64 种 PBCDOH 中只有两种,这些转化确实是区域和立体选择性的。构象分析表明,三重转折动机,在 δ-HBCD 和其他几种 HBCD 立体异构体中占主导地位,也存在于产物中。这表明 LinB 优先转化反应性的溴原子,而不是那些在保守的三重转折动机中的溴原子。HCH 的广泛污染引发了细菌脱卤酶的进化,这些酶获得了转化这些污染物及其代谢物的能力。我们在这里证明,来自印度鞘氨醇单胞菌的 LinB 也按照类似的机制,区域和立体选择性地转化 HBCDs。