Department of Microbiology, Groningen Biomolecular Sciences and Biotechnology Institute (GBB), University of Groningen, Haren, Netherlands.
Appl Environ Microbiol. 2011 Jul;77(13):4455-64. doi: 10.1128/AEM.00380-11. Epub 2011 May 20.
The actinobacterial cholesterol catabolic gene cluster contains a subset of genes that encode β-oxidation enzymes with a putative role in sterol side chain degradation. We investigated the physiological roles of several genes, i.e., fadD17, fadD19, fadE26, fadE27, and ro04690DSM43269, by gene inactivation studies in mutant strain RG32 of Rhodococcus rhodochrous DSM43269. Mutant strain RG32 is devoid of 3-ketosteroid 9α-hydroxylase (KSH) activity and was constructed following the identification, cloning, and sequential inactivation of five kshA gene homologs in strain DSM43269. We show that mutant strain RG32 is fully blocked in steroid ring degradation but capable of selective sterol side chain degradation. Except for RG32ΔfadD19, none of the mutants constructed in RG32 revealed an aberrant phenotype on sterol side chain degradation compared to parent strain RG32. Deletion of fadD19 in strain RG32 completely blocked side chain degradation of C-24 branched sterols but interestingly not that of cholesterol. The additional inactivation of fadD17 in mutant RG32ΔfadD19 also did not affect cholesterol side chain degradation. Heterologously expressed FadD19DSM43269 nevertheless was active toward steroid-C26-oic acid substrates. Our data identified FadD19 as a steroid-coenzyme A (CoA) ligase with an essential in vivo role in the degradation of the side chains of C-24 branched-chain sterols. This paper reports the identification and characterization of a CoA ligase with an in vivo role in sterol side chain degradation. The high similarity (67%) between the FadD19(DSM43269) and FadD19H37Rv enzymes further suggests that FadD19H37Rv has an in vivo role in sterol metabolism of Mycobacterium tuberculosis H37Rv.
放线菌胆固醇分解代谢基因簇包含一组编码β-氧化酶的基因,这些酶可能在固醇侧链降解中发挥作用。我们通过基因敲除研究了 Rhodococcus rhodochrous DSM43269 突变株 RG32 中的几个基因(fadD17、fadD19、fadE26、fadE27 和 ro04690DSM43269)的生理作用。突变株 RG32 缺乏 3-酮固醇 9α-羟化酶(KSH)活性,是在鉴定、克隆和连续敲除菌株 DSM43269 中的 5 个 kshA 基因同源物后构建的。我们表明,突变株 RG32 在类固醇环降解中完全受阻,但能够选择性地进行固醇侧链降解。除了 RG32ΔfadD19 之外,构建的突变株中没有一个在固醇侧链降解方面表现出与亲本 RG32 不同的表型。在 RG32 中缺失 fadD19 完全阻断了 C-24 支链固醇的侧链降解,但有趣的是,胆固醇没有被阻断。在突变 RG32ΔfadD19 中进一步缺失 fadD17 也不会影响胆固醇侧链降解。然而,在异源表达的 FadD19DSM43269 对类固醇-C26-酸底物仍然具有活性。我们的数据将 FadD19 鉴定为一种固醇辅酶 A(CoA)连接酶,在 C-24 支链固醇侧链降解中具有重要的体内作用。本文报道了一种 CoA 连接酶的鉴定和特性,该酶在固醇侧链降解中具有体内作用。FadD19DSM43269 与 FadD19H37Rv 酶的高度相似性(67%)进一步表明 FadD19H37Rv 在结核分枝杆菌 H37Rv 的固醇代谢中具有体内作用。