The distal His in peroxidases forms a hydrogen bond with the adjacent Asn, which is highly conserved among many plant and fungal peroxidases. Our previous work [Nagano, S., Tanaka, M., Ishimori, K., Watanabe, Y., & Morishima, I. (1996) Biochemistry 35, 14251-14258] has revealed that the replacement of Asn70 in horseradish peroxidase C (HRP) by Val (N70V) and Asp (N70D) discourages the oxidation activity for guaiacol, and the elementary reaction rate constants for the mutants was decreased by 10-15-fold. In order to delineate the structure-function relationship of the His-Asn couple in peroxidase activity, heme environmental structures of the HRP mutant, N70D, were investigated by CD, 1H NMR, and IR spectroscopies as well as Fe2+/Fe3+ redox potential measurements. While N70D mutant exhibited quite similar CD spectra and redox potential to those of native enzyme, the paramagnetic NMR spectrum clearly showed that the hydrogen bond between the distal His and Asp70 is not formed in the mutant. The disappearance of the splitting in the 1H NMR signal of heme peripheral 8-methyl group observed in 50% H2O/50% D2O solution of N70D-CN suggests that the hydrogen bond between the distal His and heme-bound cyanide is also disrupted by the mutation, which was supported by the low C-N vibration frequency and large dissociation constant of the heme-bound cyanide in the mutant. Together with the results from various spectroscopies and redox potentials, we can conclude that the improper positioning of the distal His induced the cleavages of the hydrogen bonds around the distal His, resulting in the substantial decrease of the catalytic activity without large structural alterations of the enzyme. The His-Asn hydrogen bond in the distal site of peroxidases, therefore, is essential for the catalytic activity by controlling the precise location of the distal His.

译文

过氧化物酶的远端His与相邻的Asn形成氢键,在许多植物和真菌的过氧化物酶中高度保守。我们以前的工作[Nagano,S.,Tanaka,M.,Ishimori,K.,Watanabe,Y.&Morishima,I.(1996)Biochemistry 35,14251-14258]揭示了辣根过氧化物酶C中Asn70的替代。 Val(N70V)和Asp(N70D)(HRP)抑制了愈创木酚的氧化活性,并且突变体的基本反应速率常数降低了10-15倍。为了描述过氧化物酶活性中His-Asn对的结构-功能关系,通过CD,1H NMR和IR光谱以及Fe2 / Fe3氧化还原电势测量研究了HRP突变体N70D的血红素环境结构。尽管N70D突变体显示出与天然酶非常相似的CD光谱和氧化还原电位,但顺磁NMR光谱清楚地表明,在该突变体中未形成远端His和Asp70之间的氢键。在N70D-CN的50%H2O / 50%D2O溶液中观察到的血红素外围8-甲基的1H NMR信号分裂的消失表明,His末端和与血红素结合的氰化物之间的氢键也被氢键破坏。较低的CN振动频率和突变体中血红素结合氰化物的较大解离常数为突变提供了支持。结合各种光谱学和氧化还原电势的结果,我们可以得出结论,His末端的不正确定位导致了His末端周围氢键的裂解,导致催化活性显着下降,而酶的结构没有很大变化。 。因此,过氧化物酶远端的His-Asn氢键通过控制远端His的精确位置,对于催化活性至关重要。

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