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IIIa型氨基糖苷3'-磷酸转移酶的作用机制:组氨酸188不是磷酸接受残基。

Mechanism of aminoglycoside 3'-phosphotransferase type IIIa: His188 is not a phosphate-accepting residue.

作者信息

Thompson P R, Hughes D W, Wright G D

机构信息

Department of Biochemistry, McMaster University, Hamilton, ON, Canada L8N3Z5.

出版信息

Chem Biol. 1996 Sep;3(9):747-55. doi: 10.1016/s1074-5521(96)90251-3.

Abstract

BACKGROUND

The enzyme aminoglycoside 3'-phosphotransferase Type IIIa (APH(3')-IIIa), confers resistance to many aminoglycoside antibiotics by regiospecific phosphorylation of their hydroxyl groups. The chemical mechanism of phosphoryl transfer is unknown. Based on sequence homology, it has been suggested that a conserved His residue, His188, could be phosphorylated by ATP, and this phospho-His would transfer the phosphate to the incoming aminoglycoside. We have used chemical modification, site-directed mutagenesis and positional isotope exchange methods to probe the mechanism of phosphoryl transfer by APH(3')-IIIa.

RESULTS

Chemical modification by diethylpyrocarbonate implicated His in aminoglycoside phosphorylation by APH(3')-IIIa. We prepared His --> Ala mutants of all four His residues in APH(3')-IIIa and found minimal effects of the mutations on the steady-state phosphorylation of several aminoglycosides. One of these mutants, His188Ala, was largely insoluble when compared to the wild-type enzyme. Positional isotope exchange experiments using gamma-[18O]-ATP did not support a double-displacement mechanism.

CONCLUSIONS

His residues are not required for aminoglycoside phosphorylation by APH(3')-IIIa. The conserved His 188 is thus not a phosphate accepting residue but does seem to be important for proper enzyme folding. Positional isotope exchange experiments are consistent with direct attack of the aminoglycoside hydroxyl group on the gamma-phosphate of ATP.

摘要

背景

IIIa型氨基糖苷3'-磷酸转移酶(APH(3')-IIIa)通过对许多氨基糖苷类抗生素的羟基进行区域特异性磷酸化,赋予对这些抗生素的抗性。磷酰基转移的化学机制尚不清楚。基于序列同源性,有人提出保守的组氨酸残基His188可被ATP磷酸化,且该磷酸化组氨酸会将磷酸基团转移至进入的氨基糖苷上。我们使用化学修饰、定点诱变和位置同位素交换方法来探究APH(3')-IIIa的磷酰基转移机制。

结果

焦碳酸二乙酯的化学修饰表明His参与了APH(3')-IIIa对氨基糖苷的磷酸化作用。我们制备了APH(3')-IIIa中所有四个His残基的His→Ala突变体,发现这些突变对几种氨基糖苷的稳态磷酸化影响极小。与野生型酶相比,其中一个突变体His188Ala在很大程度上不溶。使用γ-[18O]-ATP进行的位置同位素交换实验不支持双置换机制。

结论

His残基并非APH(3')-IIIa对氨基糖苷进行磷酸化所必需。因此,保守的His 188不是磷酸接受残基,但似乎对酶的正确折叠很重要。位置同位素交换实验与氨基糖苷羟基直接进攻ATP的γ-磷酸基团的情况一致。

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