Kato Shin-ichiro, Mihara Hisaaki, Kurihara Tatsuo, Takahashi Yasuhiro, Tokumoto Umechiyo, Yoshimura Tohru, Esaki Nobuyoshi
Institute for Chemical Research, Kyoto University, Uji, Kyoto 611-0011, Japan.
Proc Natl Acad Sci U S A. 2002 Apr 30;99(9):5948-52. doi: 10.1073/pnas.082123599. Epub 2002 Apr 23.
IscS and IscU from Escherichia coli cooperate with each other in the biosynthesis of iron-sulfur clusters. IscS catalyzes the desulfurization of L-cysteine to produce L-alanine and sulfur. Cys-328 of IscS attacks the sulfur atom of L-cysteine, and the sulfane sulfur derived from L-cysteine binds to the Sgamma atom of Cys-328. In the course of the cluster assembly, IscS and IscU form a covalent complex, and a sulfur atom derived from L-cysteine is transferred from IscS to IscU. The covalent complex is thought to be essential for the cluster biogenesis, but neither the nature of the bond connecting IscS and IscU nor the residues involved in the complex formation have been determined, which have thus far precluded the mechanistic analyses of the cluster assembly. We here report that a covalent bond is formed between Cys-328 of IscS and Cys-63 of IscU. The bond is a disulfide bond, not a polysulfide bond containing sulfane sulfur between the two cysteine residues. We also found that Cys-63 of IscU is essential for the IscU-mediated activation of IscS: IscU induced a six-fold increase in the cysteine desulfurase activity of IscS, whereas the IscU mutant with a serine substitution for Cys-63 had no effect on the activity. Based on these findings, we propose a mechanism for an early stage of iron-sulfur cluster assembly: the sulfur transfer from IscS to IscU is initiated by the attack of Cys-63 of IscU on the Sgamma atom of Cys-328 of IscS that is bound to sulfane sulfur derived from L-cysteine.
来自大肠杆菌的IscS和IscU在铁硫簇的生物合成过程中相互协作。IscS催化L-半胱氨酸脱硫生成L-丙氨酸和硫。IscS的Cys-328攻击L-半胱氨酸的硫原子,L-半胱氨酸衍生的次磺酸硫与Cys-328的Sγ原子结合。在簇组装过程中,IscS和IscU形成共价复合物,L-半胱氨酸衍生的一个硫原子从IscS转移到IscU。这种共价复合物被认为对簇生物合成至关重要,但连接IscS和IscU的键的性质以及参与复合物形成的残基均未确定,这迄今为止妨碍了对簇组装的机制分析。我们在此报告,IscS的Cys-328和IscU的Cys-63之间形成了共价键。该键是二硫键,而非两个半胱氨酸残基之间含次磺酸硫的多硫键。我们还发现,IscU的Cys-63对IscU介导的IscS激活至关重要:IscU使IscS的半胱氨酸脱硫酶活性提高了六倍,而用丝氨酸取代Cys-63的IscU突变体对该活性没有影响。基于这些发现,我们提出了铁硫簇组装早期阶段的一种机制:IscU的Cys-63攻击与L-半胱氨酸衍生的次磺酸硫结合的IscS的Cys-328的Sγ原子,从而启动硫从IscS向IscU的转移。