Heeb Norbert V, Wyss Simon A, Geueke Birgit, Fleischmann Thomas, Kohler Hans-Peter E, Bernd Schweizer W, Moor Heidi, Lienemann Peter
Empa, Swiss Federal Laboratories for Materials Testing and Research, Laboratory for Analytical Chemistry, Überlandstrasse 129, CH-8600 Dübendorf, Switzerland.
Empa, Swiss Federal Laboratories for Materials Testing and Research, Laboratory for Analytical Chemistry, Überlandstrasse 129, CH-8600 Dübendorf, Switzerland; ZHAW, Zurich University of Applied Sciences, Institute of Chemistry and Biological Chemistry, Reidbach, CH-8820 Wädenswil, Switzerland.
Chemosphere. 2015 Mar;122:70-78. doi: 10.1016/j.chemosphere.2014.11.008. Epub 2014 Nov 27.
LinA2, a bacterial enzyme expressed in various Sphingomonadaceae, catalyzes the elimination of HCl from hexachlorocyclohexanes (HCHs) and, as discussed here, the release of HBr from certain hexabromocyclododecanes (HBCDs). Both classes of compounds are persistent organic pollutants now regulated under the Stockholm Convention. LinA2 selectively catalyzes the transformation of β-HBCDs; other stereoisomers like α-, γ-, and δ-HBCDs are not converted. The transformation of (-)β-HBCD is considerably faster than that of its enantiomer. Here, we present the XRD crystal structure of 1E,5S,6S,9R,10S-pentabromocyclododecene (PBCDE) and demonstrate that its enantiomer with the 1E,5R,6R,9S,10R-configuration is the only metabolite formed during LinA2-catalyzed dehydrobromination of (-)β-HBCD. Formation of this product can be rationalized by HBr elimination at C5 and C6. A reasonable enzyme-substrate complex with the catalytic dyad His-73 and Asp-25 approaching the hydrogen at C6 and a cationic pocket of Lys-20, Try-42 and Arg-129 binding the leaving bromine at C5 was found from in silico docking experiments. A second PBCDE of yet unknown configuration was obtained from (+)β-HBCD. We predicted its stereochemistry to be 1E,5S,6S,9S,10R-PBCDE from docking experiments. The enzyme-substrate complex obtained from LinA2 and an activated conformation of (+)β-HBCD allows the HBr elimination at C9 and C10 leading to the predicted product. Both modeled enzyme-substrate complexes are in line with 1,2-diaxial HBr eliminations. In conclusion, LinA2, a bacterial enzyme of the HCH-degrading strain Sphingobium indicum B90A was able to stereoselectively convert β-HBCDs. Configurations of both PBCDE metabolites were predicted by molecular docking experiments and confirmed in one case by XRD data.
LinA2是一种在多种鞘脂单胞菌科细菌中表达的细菌酶,它催化六氯环己烷(HCHs)中HCl的消除,以及本文所讨论的某些六溴环十二烷(HBCDs)中HBr的释放。这两类化合物都是持久性有机污染物,现在受《斯德哥尔摩公约》管制。LinA2选择性催化β-HBCDs的转化;其他立体异构体,如α-、γ-和δ-HBCDs则不会发生转化。(-)β-HBCD的转化速度比其对映体快得多。在此,我们展示了1E,5S,6S,9R,10S-五溴环十二烯(PBCDE)的X射线衍射晶体结构,并证明其具有1E,5R,6R,9S,10R-构型的对映体是LinA2催化(-)β-HBCD脱溴化氢反应过程中形成的唯一代谢产物。该产物的形成可通过C5和C6处HBr的消除来解释。通过计算机对接实验发现了一种合理的酶-底物复合物,其中催化二元组His-73和Asp-25接近C6处的氢,而Lys-20、Try-42和Arg-129的阳离子口袋则结合C5处离去的溴。从(+)β-HBCD中获得了另一种构型未知的PBCDE。通过对接实验,我们预测其立体化学结构为1E,5S,6S,9S,10R-PBCDE。从LinA2和(+)β-HBCD的活化构象获得的酶-底物复合物允许在C9和C10处消除HBr,从而生成预测的产物。两种模拟的酶-底物复合物均符合1,2-双轴HBr消除反应。总之,降解HCH的菌株印度鞘脂菌B90A中的细菌酶LinA2能够立体选择性地转化β-HBCDs。通过分子对接实验预测了两种PBCDE代谢产物的构型,并在一个案例中通过XRD数据得到了证实。