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Biochemical and biophysical characterisation of haloalkane dehalogenases DmrA and DmrB in Mycobacterium strain JS60 and their role in growth on haloalkanes

机译:分枝杆菌菌株JS60中卤代烷脱卤酶DmrA和DmrB的生化和生物物理特性及其在卤代烷烃上的生长作用

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摘要

Haloalkane dehalogenases (HLDs) catalyse the hydrolysis of haloalkanes to alcohols, offering a biological solution for toxic haloalkane industrial wastes. Hundreds of putative HLD genes have been identified in bacterial genomes, but relatively few enzymes have been characterised. We identified two novel HLDs in the genome of Mycobacterium rhodesiae strain JS60, an isolate from an organochlorine-contaminated site: DmrA and DmrB. Both recombinant enzymes were active against C2-C6 haloalkanes, with a preference for brominated linear substrates. However, DmrA had higher activity against a wider range of substrates. The kinetic parameters of DmrA with 4-bromobutyronitrile as a substrate were Km = 1.9 ± 0.2 mM, kcat = 3.1 ± 0.2 s(-1) . DmrB showed the highest activity against 1-bromohexane. DmrA is monomeric, whereas DmrB is tetrameric. We determined the crystal structure of selenomethionyl DmrA to 1.7 Å resolution. A spacious active site and alternate conformations of a methionine side-chain in the slot access tunnel may contribute to the broad substrate activity of DmrA. We show that M. rhodesiae JS60 can utilise 1-iodopropane, 1-iodobutane and 1-bromobutane as sole carbon and energy sources. This ability appears to be conferred predominantly through DmrA, which shows significantly higher levels of upregulation in response to haloalkanes than DmrB.
机译:卤代烷脱卤酶(HLD)催化卤代烷水解为醇,为有毒卤代烷工业废物提供了生物解决方案。在细菌基因组中已鉴定出数百种假定的HLD基因,但已鉴定出相对较少的酶。我们在分枝杆菌罗氏杆菌菌株JS60的基因组中鉴定了两个新型HLD,这是一种有机氯污染部位的分离株:DmrA和DmrB。两种重组酶均对C2-C6卤代烷具有活性,优选溴化线性底物。但是,DmrA对更大范围的底物具有更高的活性。以4-溴丁腈为底物的DmrA的动力学参数为Km = 1.9±0.2 mM,kcat = 3.1±0.2 s(-1)。 DmrB对1-溴己烷的活性最高。 DmrA是单体,而DmrB是四聚体。我们确定硒代甲磺酰基DmrA的晶体结构为1.7Å分辨率。狭缝进入通道中宽敞的活性位点和蛋氨酸侧链的替代构象可能有助于DmrA的广泛底物活性。我们显示,M。rhodesiae JS60可以利用1-碘丙烷,1-碘丁烷和1-溴丁烷作为唯一的碳和能源。此功能似乎主要是通过DmrA赋予的,它显示出对卤代烷烃的响应比DmrB显着更高的上调水平。

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