Tokumoto Umechiyo, Kitamura Seiichi, Fukuyama Keiichi, Takahashi Yasuhiro
Department of Biology, Graduate School of Science, Osaka University, Toyonaka, Osaka 560-0043.
J Biochem. 2004 Aug;136(2):199-209. doi: 10.1093/jb/mvh104.
The assembly of iron-sulfur (Fe-S) clusters, a key step in the post-translational maturation of Fe-S proteins, is mediated by a complex apparatus. In E. coli, this process involves two independent systems called ISC and SUF encoded by the iscSUA-hscBA-fdx gene cluster and sufABCDSE operon, respectively. Another system, termed NIF (nifSU), is required for the maturation of nitrogenase in nitrogen-fixing bacteria. We have developed a novel genetic system to gain further insight into these multi-component systems, and to determine how ISC, SUF and NIF might differ in their roles in Fe-S assembly. We have constructed an E. coli mutant lacking both the isc and suf operons, and this strain can only survive in the presence of a complementing plasmid. Using the plasmid replacement technique, we examined the isc and suf operons, and identified the genes essential for the function. Additionally, we have found that nifSU-like genes cloned from Helicobacter pylori are functionally exchangeable with the isc and suf operons. Thus, the NIF-like system participates in the maturation of a wide variety of Fe-S proteins. An increased ability of NIF to complement isc and suf loss was seen under anaerobic conditions. This may explain why the NIF system is only found in a limited number of bacterial species, and most other organisms prefer the ISC and/or SUF systems. While the differences between ISC and SUF were small with respect to the complementing activity, the SUF system appears to be more advantageous for bacterial growth in the presence of hydrogen peroxide.
铁硫(Fe-S)簇的组装是Fe-S蛋白翻译后成熟过程中的关键步骤,由一个复杂的装置介导。在大肠杆菌中,这个过程涉及两个独立的系统,分别由iscSUA-hscBA-fdx基因簇和sufABCDSE操纵子编码,称为ISC和SUF。另一个系统,称为NIF(nifSU),是固氮细菌中固氮酶成熟所必需的。我们开发了一种新的遗传系统,以进一步深入了解这些多组分系统,并确定ISC、SUF和NIF在Fe-S组装中的作用可能有何不同。我们构建了一个同时缺失isc和suf操纵子的大肠杆菌突变体,该菌株只有在存在互补质粒的情况下才能存活。使用质粒替换技术,我们研究了isc和suf操纵子,并确定了功能所必需的基因。此外,我们发现从幽门螺杆菌克隆的nifSU样基因在功能上可与isc和suf操纵子互换。因此,NIF样系统参与了多种Fe-S蛋白的成熟。在厌氧条件下,NIF互补isc和suf缺失的能力增强。这可能解释了为什么NIF系统只在有限数量的细菌物种中发现,而大多数其他生物体更喜欢ISC和/或SUF系统。虽然ISC和SUF在互补活性方面的差异很小,但在过氧化氢存在的情况下,SUF系统似乎对细菌生长更有利。