首页> 美国卫生研究院文献>The Journal of Biological Chemistry >IscS Functions as a Primary Sulfur-donating Enzyme by Interacting Specifically with MoeB and MoaD in the Biosynthesis of Molybdopterin in Escherichia coli
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IscS Functions as a Primary Sulfur-donating Enzyme by Interacting Specifically with MoeB and MoaD in the Biosynthesis of Molybdopterin in Escherichia coli

机译:IscS通过与MoeB和MoaD特异性相互作用在大肠杆菌中的钼蝶呤的生物合成中充当主要的供硫酶。

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摘要

The persulfide sulfur formed on an active site cysteine residue of pyridoxal 5′-phosphate-dependent cysteine desulfurases is subsequently incorporated into the biosynthetic pathways of a variety of sulfur-containing cofactors and thionucleosides. In molybdenum cofactor biosynthesis, MoeB activates the C terminus of the MoaD subunit of molybdopterin (MPT) synthase to form MoaD-adenylate, which is subsequently converted to a thiocarboxylate for the generation of the dithiolene group of MPT. It has been shown that three cysteine desulfurases (CsdA, SufS, and IscS) of Escherichia coli can transfer sulfur from l-cysteine to the thiocarboxylate of MoaD in vitro. Here, we demonstrate by surface plasmon resonance analyses that IscS, but not CsdA or SufS, interacts with MoeB and MoaD. MoeB and MoaD can stimulate the IscS activity up to 1.6-fold. Analysis of the sulfuration level of MoaD isolated from strains defective in cysteine desulfurases shows a largely decreased sulfuration level of the protein in an iscS deletion strain but not in a csdA/sufS deletion strain. We also show that another iscS deletion strain of E. coli accumulates compound Z, a direct oxidation product of the immediate precursor of MPT, to the same extent as an MPT synthase-deficient strain. In contrast, analysis of the content of compound Z in ΔcsdA and ΔsufS strains revealed no such accumulation. These findings indicate that IscS is the primary physiological sulfur-donating enzyme for the generation of the thiocarboxylate of MPT synthase in MPT biosynthesis.
机译:随后在吡x醛5'-磷酸依赖性半胱氨酸脱硫酶的活性位点半胱氨酸残基上形成的过硫化物硫被掺入到各种含硫辅因子和硫代核苷的生物合成途径中。在钼辅助因子的生物合成中,MoeB激活钼蝶呤(MPT)合酶的MoaD亚基的C末端以形成MoaD-腺苷酸,随后将其转化为硫代羧酸酯,以生成MPT的二硫代烯基。已经表明,在体外,大肠杆菌的三种半胱氨酸脱硫酶(CsdA,SufS和IscS)可以将硫从1-半胱氨酸转移到MoaD的硫代羧酸盐。在这里,我们通过表面等离振子共振分析证明IscS而不是CsdA或SufS与MoeB和MoaD相互作用。 MoeB和MoaD最多可以刺激IscS活性1.6倍。从半胱氨酸脱硫酶缺陷菌株中分离的MoaD的硫酸化水平分析表明,在iscS缺失菌株中,该蛋白的硫酸化水平大大降低,而在csdA / sufS缺失菌株中则没有。我们还显示,另一种大肠杆菌的iscS缺失菌株与MPT合酶缺陷型菌株积累的化合物Z(MPT直接前体的直接氧化产物)相同。相反,对ΔcsdA和ΔsufS菌株中化合物Z含量的分析表明没有这种积累。这些发现表明,IscS是用于MPT生物合成中MPT合酶硫代羧酸盐生成的主要生理供硫酶。

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