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四种钼依赖的甾体 C-25 羟化酶:异源过表达、在甾体降解中的作用以及用于 25-羟基维生素 D 合成。

Four Molybdenum-Dependent Steroid C-25 Hydroxylases: Heterologous Overproduction, Role in Steroid Degradation, and Application for 25-Hydroxyvitamin D Synthesis.

机构信息

Faculty of Biology-Microbiology, Albert-Ludwigs-Universität Freiburg, Freiburg, Germany.

Department of Analytical Chemistry, Helmholtz Centre for Environmental Research UFZ, Leipzig, Germany.

出版信息

mBio. 2018 Jun 19;9(3):e00694-18. doi: 10.1128/mBio.00694-18.

Abstract

Side chain-containing steroids are ubiquitous constituents of biological membranes that are persistent to biodegradation. Aerobic, steroid-degrading bacteria employ oxygenases for isoprenoid side chain and tetracyclic steran ring cleavage. In contrast, a Mo-containing steroid C-25 dehydrogenase (S25DH) of the dimethyl sulfoxide (DMSO) reductase family catalyzes the oxygen-independent hydroxylation of tertiary C-25 in the anaerobic, cholesterol-degrading bacterium Its genome contains eight paralogous genes encoding active site α-subunits of putative S25DH-like proteins. The difficult enrichment of labile, oxygen-sensitive S25DH from the wild-type bacteria and the inability of its active heterologous production have largely hampered the study of S25DH-like gene products. Here we established a heterologous expression platform for the three structural genes of S25DH subunits together with an essential chaperone in the denitrifying betaproteobacterium K172. Using this system, S25DH and three isoenzymes (S25DH, S25DH, and S25DH) were overproduced in a soluble, active form allowing a straightforward purification of nontagged αβγ complexes. All S25DHs contained molybdenum, four [4Fe-4S] clusters, one [3Fe-4S] cluster, and heme B and catalyzed the specific, water-dependent C-25 hydroxylations of various 4-en-3-one forms of phytosterols and zoosterols. Crude extracts from expressing genes encoding S25DH catalyzed the hydroxylation of vitamin D (VD) to the clinically relevant 25-OH-VD with >95% yield at a rate 6.5-fold higher than that of wild-type bacterial extracts; the specific activity of recombinant S25DH was twofold higher than that of wild-type enzyme. These results demonstrate the potential application of the established expression platform for 25-OH-VD synthesis and pave the way for the characterization of previously genetically inaccessible S25DH-like Mo enzymes of the DMSO reductase family. Steroids are ubiquitous bioactive compounds, some of which are considered an emerging class of micropollutants. Their degradation by microorganisms is the major process of steroid elimination from the environment. While oxygenase-dependent steroid degradation in aerobes has been studied for more than 40 years, initial insights into the anoxic steroid degradation have only recently been obtained. Molybdenum-dependent steroid C dehydrogenases (S25DHs) have been proposed to catalyze oxygen-independent side chain hydroxylations of globally abundant zoo-, phyto-, and mycosterols; however, so far, their lability has allowed only the initial characterization of a single S25DH. Here we report on a heterologous gene expression platform that allowed for easy isolation and characterization of four highly active S25DH isoenzymes. The results obtained demonstrate the key role of S25DHs during anoxic degradation of various steroids. Moreover, the platform is valuable for the efficient enzymatic hydroxylation of vitamin D to its clinically relevant C-25-OH form.

摘要

侧链含甾体是生物膜中普遍存在的成分,对生物降解具有很强的抗性。好氧、甾体降解细菌利用加氧酶对异戊烯侧链和四环甾烷环进行切割。相比之下,一种含钼的甾体 C-25 脱氢酶(S25DH)属于二甲基亚砜(DMSO)还原酶家族,能够在无氧、胆固醇降解菌中催化 C-25 位的仲碳原子的非氧依赖性羟化反应。其基因组包含 8 个功能相似的基因,编码具有潜在 S25DH 样活性的α亚基。从野生型细菌中难以富集不稳定、对氧敏感的 S25DH,以及其异源活性生产的能力有限,这在很大程度上阻碍了 S25DH 样基因产物的研究。在这里,我们建立了一个在反硝化β变形菌 K172 中表达 S25DH 亚基的三个结构基因和一个必需伴侣蛋白的异源表达平台。利用该系统,在可溶性、活性形式下过量表达了 S25DH 和三种同工酶(S25DH、S25DH 和 S25DH),便于直接纯化非标记的αβγ 复合物。所有的 S25DH 都含有钼、四个 [4Fe-4S] 簇、一个 [3Fe-4S] 簇和血红素 B,并能特异性地催化各种 4-烯-3-酮形式的植物甾醇和动物甾醇的 C-25 羟化反应。表达编码 S25DH 的基因的 粗提物能够以高于野生型细菌提取物 6.5 倍的速率将维生素 D(VD)羟化为具有临床意义的 25-OH-VD,产率超过 95%;重组 S25DH 的比活性比野生型酶高两倍。这些结果表明,所建立的表达平台在 25-OH-VD 合成方面具有潜在的应用前景,并为以前遗传上无法获得的 DMSO 还原酶家族的 S25DH 样钼酶的特性研究铺平了道路。甾体是普遍存在的生物活性化合物,其中一些被认为是新兴的一类微污染物。微生物对甾体的降解是甾体从环境中消除的主要过程。虽然好氧微生物中依赖加氧酶的甾体降解已经研究了 40 多年,但直到最近才初步了解了缺氧条件下的甾体降解。钼依赖性甾体 C 脱氢酶(S25DHs)被认为能够催化广泛存在的动物甾醇、植物甾醇和菌甾醇的非氧依赖性侧链羟化反应;然而,到目前为止,它们的不稳定性只允许对单个 S25DH 进行初步表征。在这里,我们报告了一个异源基因表达平台,该平台允许轻松分离和表征四种高活性的 S25DH 同工酶。所得结果表明,S25DH 在各种甾体的缺氧降解过程中起关键作用。此外,该平台对于维生素 D 向其具有临床意义的 C-25-OH 形式的高效酶促羟化反应具有重要价值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b83/6016249/86461b493b51/mbo0031839350001.jpg

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