Holbrook Selina Y L, Gentry Matthew S, Tsodikov Oleg V, Garneau-Tsodikova Sylvie
Department of Pharmaceutical Sciences , College of Pharmacy , University of Kentucky , Lexington , KY 40536-0596 , USA . Email:
Department of Molecular and Cellular Biochemistry , College of Medicine , University of Kentucky , Lexington , KY 40536 , USA.
Medchemcomm. 2018 Jul 16;9(8):1332-1339. doi: 10.1039/c8md00234g. eCollection 2018 Aug 1.
Aminoglycosides (AGs) are broad-spectrum antibiotics that play an important role in the control and treatment of bacterial infections. Despite the great antibacterial potency of AGs, resistance to these antibiotics has limited their clinical applications. The AG 3'--phosphotransferase of type IIa (APH(3')-IIa) encoded by the gene is a common bacterial AG resistance enzyme that inactivates AG antibiotics. This enzyme is used as a selection marker in molecular biology research. APH(3')-IIa catalyzes the transfer of the γ-phosphoryl group of ATP to an AG at its 3'-OH group. Although APH(3')-IIa has been reported to utilize exclusively ATP as a cosubstrate, we demonstrate that this enzyme can utilize a broad array of NTPs. By substrate profiling, TLC, and enzyme kinetics experiments, we probe AG phosphorylation by APH(3')-IIa with an extensive panel of substrates and cosubstrates (13 AGs and 10 NTPs) for the purpose of gaining a thorough understanding of this resistance enzyme. We find, for the first time, that the identity of the NTP cosubstrate dictates the set of AGs modified by APH(3')-IIa and the phosphorylation efficiency for different AGs.
氨基糖苷类抗生素(AGs)是一类广谱抗生素,在细菌感染的控制和治疗中发挥着重要作用。尽管AGs具有强大的抗菌效力,但对这些抗生素的耐药性限制了它们的临床应用。由该基因编码的IIa型AG 3'-磷酸转移酶(APH(3')-IIa)是一种常见的细菌AG耐药酶,可使AG抗生素失活。这种酶在分子生物学研究中用作选择标记。APH(3')-IIa催化ATP的γ-磷酸基团转移至AG的3'-OH基团上。尽管已有报道称APH(3')-IIa仅将ATP用作共底物,但我们证明该酶可以利用多种NTPs。通过底物分析、薄层层析和酶动力学实验,我们使用大量底物和共底物(13种AGs和10种NTPs)对APH(3')-IIa介导的AG磷酸化进行了探究,以便全面了解这种耐药酶。我们首次发现,NTP共底物的种类决定了APH(3')-IIa修饰的AGs种类以及不同AGs的磷酸化效率。