Crack Jason C, Svistunenko Dimitri A, Munnoch John, Thomson Andrew J, Hutchings Matthew I, Le Brun Nick E
From the Centre for Molecular and Structural Biochemistry, School of Chemistry, and.
the School of Biological Sciences, University of Essex, Wivenhoe Park, Colchester CO4 3SQ, United Kingdom.
J Biol Chem. 2016 Apr 15;291(16):8663-72. doi: 10.1074/jbc.M115.693192. Epub 2016 Feb 17.
NsrR is an iron-sulfur cluster protein that regulates the nitric oxide (NO) stress response of many bacteria. NsrR from Streptomyces coelicolor regulates its own expression and that of only two other genes, hmpA1 and hmpA2, which encode HmpA enzymes predicted to detoxify NO. NsrR binds promoter DNA with high affinity only when coordinating a [4Fe-4S] cluster. Here we show that reaction of [4Fe-4S] NsrR with NO affects DNA binding differently depending on the gene promoter. Binding to the hmpA2 promoter was abolished at ∼2 NO per cluster, although for the hmpA1 and nsrR promoters, ∼4 and ∼8 NO molecules, respectively, were required to abolish DNA binding. Spectroscopic and kinetic studies of the NO reaction revealed a rapid, multi-phase, non-concerted process involving up to 8-10 NO molecules per cluster, leading to the formation of several iron-nitrosyl species. A distinct intermediate was observed at ∼2 NO per cluster, along with two further intermediates at ∼4 and ∼6 NO. The NsrR nitrosylation reaction was not significantly affected by DNA binding. These results show that NsrR regulates different promoters in response to different concentrations of NO. Spectroscopic evidence indicates that this is achieved by different NO-FeS complexes.
NsrR是一种铁硫簇蛋白,可调节多种细菌的一氧化氮(NO)应激反应。天蓝色链霉菌的NsrR调节其自身的表达以及另外两个基因hmpA1和hmpA2的表达,这两个基因编码预测可解毒NO的HmpA酶。只有在配位[4Fe-4S]簇时,NsrR才会以高亲和力结合启动子DNA。在这里,我们表明[4Fe-4S] NsrR与NO的反应根据基因启动子的不同而对DNA结合产生不同的影响。与hmpA2启动子的结合在每个簇约2个NO时被消除,尽管对于hmpA1和nsrR启动子,分别需要约4个和约8个NO分子才能消除DNA结合。NO反应的光谱和动力学研究揭示了一个快速、多相、非协同的过程,每个簇最多涉及8-10个NO分子,导致形成几种铁亚硝酰基物种。在每个簇约2个NO时观察到一个独特的中间体,在约4个和6个NO时还观察到另外两个中间体。NsrR的亚硝化反应不受DNA结合的显著影响。这些结果表明,NsrR响应不同浓度的NO调节不同的启动子。光谱证据表明,这是通过不同的NO-FeS复合物实现的。