Sato Sakiko, Matsushima Yumeka, Kanazawa Miaki, Tanaka Naoyuki, Fujishiro Takashi, Kunichika Kouhei, Nakamura Ryosuke, Tomioka Hiroaki, Wada Kei, Takahashi Yasuhiro
Department of Biochemistry and Molecular Biology, Graduate School of Science and Engineering, Saitama University, Saitama, Japan.
Department of Science Education, Graduate School of Education, Saitama University, Saitama, Japan.
Mol Microbiol. 2021 Apr;115(4):807-818. doi: 10.1111/mmi.14646. Epub 2020 Dec 5.
IscU is a central component of the ISC machinery and serves as a scaffold for de novo assembly of Fe-S clusters. The dedicated chaperone system composed of the Hsp70-chaperone HscA and the J-protein cochaperone HscB synergistically interacts with IscU and facilitates cluster transfer from IscU to recipient apo-proteins. Here, we report that the otherwise essential roles of HscA and HscB can be bypassed in vivo by a number of single amino acid substitutions in IscU. CD spectroscopic studies of the variant IscU proteins capable of this bypass activity revealed dynamic interconversion between two conformations: the denatured (D) and the structured (S) state in the absence and presence of Zn , respectively, which was far more prominent than interconversion observed in wild-type IscU. Furthermore, we found that neither the S-shifted (more structured) variants of IscU nor the perpetually denatured variants could perform their in vivo role regardless of whether the chaperone system was present or not. The present study thus provides for the first time evidence that an in vivo D-state of IscU exists and implies that conformational interconversion between the S- and D-states of the scaffolding protein is a fundamental requirement for the assembly and transfer of the Fe-S cluster.
IscU是铁硫簇生物合成机制的核心组成部分,作为铁硫簇从头组装的支架。由Hsp70伴侣蛋白HscA和J蛋白共伴侣蛋白HscB组成的专用伴侣系统与IscU协同相互作用,并促进簇从IscU转移到受体脱辅基蛋白。在此,我们报道IscU中的一些单氨基酸取代可以在体内绕过HscA和HscB的必要作用。对具有这种旁路活性的变异IscU蛋白进行的圆二色光谱研究揭示了两种构象之间的动态相互转换:分别在不存在和存在锌的情况下的变性(D)状态和结构化(S)状态,这比在野生型IscU中观察到的相互转换更为显著。此外,我们发现,无论伴侣系统是否存在,IscU的S型转变(更结构化)变体和永久变性变体都不能发挥其体内作用。因此,本研究首次提供了IscU在体内存在D状态的证据,并暗示支架蛋白的S态和D态之间的构象相互转换是铁硫簇组装和转移的基本要求。