Iron-sulfur cluster disassembly in the FNR protein of Escherichia coli by O 2 : [4Fe-4S] to [2Fe-2S] conversion with loss of biological activity

铁硫簇 硫化物 硫黄 化学 星团(航天器) 大肠杆菌 电子顺磁共振 氧气 穆斯堡尔谱学 结晶学 氧化态 硫代谢 立体化学 生物化学 有机化学 核磁共振 基因 程序设计语言 催化作用 物理 计算机科学
作者
Natalia Khoroshilova,Codrina V. Popescu,Eckard Münck,Helmut Beinert,Patricia J. Kiley
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:94 (12): 6087-6092 被引量:339
标识
DOI:10.1073/pnas.94.12.6087
摘要

The transcription factor FNR ( f umarate n itrate r eduction) requires the presence of an iron-sulfur (Fe-S) cluster for its function as a global transcription regulator in Escherichia coli when oxygen becomes scarce. To define the oxidation state and type of Fe-S cluster present in the active form of FNR, we have studied anaerobically purified FNR with Mössbauer spectroscopy. Our data showed that this form of FNR contained a [4Fe-4S] 2+ cluster (δ = 0.45 mm/s; Δ E Q = 1.22 mm/s) and that the [4Fe-4S] 2+ cluster was rapidly destroyed on exposure of FNR to air. Under these conditions, the yellow–green active form of FNR turned deep red; analysis of sulfide indicated that 70% of the labile sulfide was still present, suggesting that the Fe-S cluster had been converted into a different form. Little [3Fe-4S] cluster was, however, detected by EPR. According to Mössbauer spectroscopy, the [4Fe-4S] 2+ cluster was converted in about 60% yield to a [2Fe-2S] 2+ cluster (δ = 0.28 mm/s; Δ E Q = 0.58 mm/s) following 17 min of exposure to air. The [2Fe-2S] 2+ cluster form of FNR was much more stable to oxygen, but was unable to sustain biological activity (e.g., DNA binding). However, DNA binding and the absorption spectrum characteristic of the [4Fe-4S] 2+ cluster could be largely restored from the [2Fe-2S] 2+ form when Cys, Fe, DTT, and the NifS protein were added. It has yet to be determined whether the form of FNR containing the [2Fe-2S] 2+ cluster has any biological significance, e.g., as an in vivo intermediate that is more rapidly converted to the active form than the apoprotein.
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