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首页> 外文期刊>Biochemistry >VERSATILITY OF HEME COORDINATION DEMONSTRATED IN A FUNGAL PEROXIDASE - ABSORPTION AND RESONANCE RAMAN STUDIES OF COPRINUS CINEREUS PEROXIDASE AND THE ASP245-]ASN MUTANT AT VARIOUS PH VALUES
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VERSATILITY OF HEME COORDINATION DEMONSTRATED IN A FUNGAL PEROXIDASE - ABSORPTION AND RESONANCE RAMAN STUDIES OF COPRINUS CINEREUS PEROXIDASE AND THE ASP245-]ASN MUTANT AT VARIOUS PH VALUES

机译:在不同pH值下灰葡萄球菌过氧化物酶和ASP245-] ASN突变体在真菌过氧化物酶吸收和共振拉曼研究中的血红素配合的多样性。

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摘要

The pH dependence of the electronic absorption and resonance Raman (RR) spectra of Fe-III and Fe-II forms of Coprinus cinereus peroxidase (CIP) and its Asp245-->Asn (D245N) mutant has been examined in detail. The spectral data were obtained in the pH range 3.5-12.0. These spectra were used to assess the spin and ligation states of the heme via the porphyrin marker band frequencies and the wavelengths of the absorption maxima, especially that of the band (CT1) due to the charge transfer from the porphyrin to the heme iron via the a'(2u)(pi)-->e(g)(d(pi)) electronic transition. The RR speclra were obtained by using different excitation wavelengths and polarized light. The data obtained for ferric CIP show that two pH-induced structural transitions exist. At acid pH the Soret and the CT1 absorption maxima occur at 394 and 652 nm, respectively, compared with the values of 403 and 649 nm observed at neutral pH. The electronic data indicate that at acid pH the proximal Fe-Im bond might be weakened or ruptured. and the RR spectra show a new species (5-c HS*) different from the normal neutral 5-coordinate high-spin (5-c HS) heme, At pH 12.0, the protein converts to a 6-coordinate low-spin (6-c LS) heme with a hydroxyl ligand coordinated in the sixth position of the heme iron and strongly hydrogen-bonded with the positively charged guanidinium group of the distal Arg51 residue, Replacement of the aspartate carboxylate group of Asp245, which acts as hydrogen-bond acceptor to the proximal His183 ligand of the heme Fe, with a carboxamide group of an asparagine residue has a profound influence on the heme coordination. The RR spectra of the Fe-II form of this mutant at both neutral and alkaline pH values show a band at 204 cm(-1) assigned to the Fe-His stretch associated with a fairly weak or non-hydrogen-bonded imidazole. The ferric form of the mutant shows a great variability in coordination and spin states upon pi titration. Between pH 8.8 and 3.8 the spectra are mainly characteristic of a 6-coordinate high-spin heme, presumably with a water molecule bound on the distal side of the Fe atom. The pK(a), of the alkaline transition of the mutant is much lower than that of the wild-type protein. At pH 10.0 the D245N mutant is in its final alkaline form, which markedly differs from that of the parent enzyme. The spectral data indicate that the majority of the protein has 5-coordinate high-spin heme (5-c HS**), with the Fe-His 183 bond broken and the distal axial coordination site of the heme iron occupied by a hydroxyl group, which is strongly hydrogen-bonded with distal Arg51. Therefore, the Asp245-->Asn mutation on the proximal side results in the breakage of the Fe-His bond al alkaline pH.
机译:已经详细检查了灰粉鬼伞过氧化物酶(CIP)的Fe-III和Fe-II形式的电子吸收和共振拉曼(RR)光谱的pH依赖性,及其Asp245-> Asn(D245N)突变体。在3.5-12.0的pH范围内获得光谱数据。这些光谱用于通过卟啉标记带的频率和最大吸收波长,特别是该带(CT1)的吸收,通过电荷从卟啉到血红素铁的转移,来评估血红素的自旋和连接状态。 a'(2u)(pi)-> e(g)(d(pi))电子转换。 RR谱是通过使用不同的激发波长和偏振光获得的。对于铁的CIP获得的数据表明存在两个pH诱导的结构转变。在酸性pH下,Soret和CT1的最大吸收分别出现在394和652 nm处,而在中性pH下观察到的是403和649 nm。电子数据表明,在酸性pH值下,近端的Fe-Im键可能会弱化或断裂。 RR谱图显示了一个新物种(5-c HS *),与正常的中性5坐标高旋转(5-c HS)血红素不同,在pH 12.0时,该蛋白质转化为6坐标低旋转( 6-c LS)血红素,其羟基配体在血红素铁的第六位置进行配位,并与远端Arg51残基的带正电荷的胍基牢固氢键合,取代了Asp245的天冬氨酸羧酸酯基团,起氢的作用-血红素Fe的近端His183配体的键受体与天冬酰胺残基的羧酰胺基对血红素的配位有深远的影响。此突变体的Fe-II形式的RR光谱在中性和碱性pH值下均显示在204 cm(-1)的谱带,该谱带分配给Fe-His拉伸,与相当弱或无氢键的咪唑相关。 pi滴定后,突变体的铁形式在配位和自旋状态下显示出很大的可变性。在pH 8.8和3.8之间,光谱的主要特征是6坐标高自旋血红素的特征,大概是在Fe原子的远端结合了水分子。突变体的碱性转变的pK(a)远低于野生型蛋白质的pK(a)。在pH 10.0时,D245N突变体处于最终的碱性形式,这与亲本酶明显不同。光谱数据表明,大多数蛋白质具有5配位的高自旋血红素(5-c HS **),Fe-His 183键断裂,血红素铁的远端轴向配位部位被羟基占据,它与远端Arg51牢固地氢键结合。因此,近端Asp245-> Asn突变导致碱性pH下的Fe-His键断裂。

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