首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Revisiting the Nucleotide and Aminoglycoside Substrate Specificity of the Bifunctional Aminoglycoside Acetyltransferase(6′)-Ie/Aminoglycoside Phosphotransferase(2″)-Ia Enzyme
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Revisiting the Nucleotide and Aminoglycoside Substrate Specificity of the Bifunctional Aminoglycoside Acetyltransferase(6′)-Ie/Aminoglycoside Phosphotransferase(2″)-Ia Enzyme

机译:考察双功能氨基糖苷乙酰基转移酶(6)-Ie /氨基糖苷磷酸转移酶(2″)-Ia酶的核苷酸和氨基糖苷底物特异性

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摘要

The bifunctional aminoglycoside-modifying enzyme aminoglycoside acetyltransferase(6′)-Ie/aminoglycoside phosphotransferase(2″)-Ia, or AAC(6′)-Ie/APH(2″)-Ia, is the major source of aminoglycoside resistance in Gram-positive bacterial pathogens. In previous studies, using ATP as the cosubstrate, it was reported that the APH(2″)-Ia domain of this enzyme is unique among aminoglycoside phosphotransferases, having the ability to inactivate an unusually broad spectrum of aminoglycosides, including 4,6- and 4,5-disubstituted and atypical. We recently demonstrated that GTP, and not ATP, is the preferred cosubstrate of this enzyme. We now show, using competition assays between ATP and GTP, that GTP is the exclusive phosphate donor at intracellular nucleotide levels. In light of these findings, we reevaluated the substrate profile of the phosphotransferase domain of this clinically important enzyme. Steady-state kinetic characterization using the phosphate donor GTP demonstrates that AAC(6′)-Ie/APH(2″)-Ia phosphorylates 4,6-disubstituted aminoglycosides with high efficiency (kcat/Km = 105-107 m−1 s−1). Despite this proficiency, no resistance is conferred to some of these antibiotics by the enzyme in vivo. We now show that phosphorylation of 4,5-disubstituted and atypical aminoglycosides are negligible and thus these antibiotics are not substrates. Instead, these aminoglycosides tend to stimulate an intrinsic GTPase activity of the enzyme. Taken together, our data show that the bifunctional enzyme efficiently phosphorylates only 4,6-disubstituted antibiotics; however, phosphorylation does not necessarily result in bacterial resistance. Hence, the APH(2″)-Ia domain of the bifunctional AAC(6′)-Ie/APH(2″)-Ia enzyme is a bona fide GTP-dependent kinase with a narrow substrate profile, including only 4,6-disubstituted aminoglycosides.
机译:双功能氨基糖苷修饰酶氨基糖苷乙酰转移酶(6')-Ie /氨基糖苷磷酸转移酶(2″)-Ia或AAC(6′)-Ie / APH(2″)-Ia是革兰氏氨基糖苷抗性的主要来源阳性细菌病原体。在以前的研究中,使用ATP作为共底物,据报道该酶的APH(2″)-Ia结构域在氨基糖苷磷酸转移酶中是独特的,具有使异常广泛的氨基糖苷谱失活的能力,包括4,6-和- 4,5-二取代和非典型。我们最近证明,GTP,而不是ATP,是该酶的首选共底物。现在,我们使用ATP与GTP之间的竞争分析表明,GTP在细胞内核苷酸水平上是唯一的磷酸盐供体。根据这些发现,我们重新评估了这种临床上重要酶的磷酸转移酶结构域的底物谱。使用磷酸盐供体GTP的稳态动力学表征表明,AAC(6')-Ie / APH(2″)-Ia可以高效地磷酸化4,6-二取代的氨基糖苷(kcat / Km = 10 5 -10 7 m -1 s -1 )。尽管具有这种熟练度,但体内酶对这些抗生素中的一些没有抵抗力。现在我们显示4,5-二取代和非典型氨基糖苷的磷酸化作用可以忽略不计,因此这些抗生素不是底物。相反,这些氨基糖苷倾向于刺激该酶的固有GTP酶活性。综上所述,我们的数据表明,双功能酶仅使4,6-二取代抗生素有效地磷酸化。然而,磷酸化不一定导致细菌抗性。因此,双功能AAC(6')-Ie / APH(2″)-Ia酶的APH(2″)-Ia结构域是真正的GTP依赖性激酶,具有狭窄的底物谱,仅包括4,6-双取代的氨基糖苷。

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