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Complete Thermodynamic Characterization of the Multiple Protonation Equilibria of the Aminoglycoside Antibiotic Paromomycin: A Calorimetric and Natural Abundance 15N NMR Study

机译:氨基糖苷类抗生素巴龙霉素的多个质子平衡的完整热力学表征:量热和自然丰度15N NMR研究

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摘要

The binding of aminoglycoside antibiotics to a broad range of macromolecular targets is coupled to protonation of one or more of the amino groups that typify this class of drugs. Determining how and to what extent this linkage influences the energetics of the aminoglycoside-macromolecule binding reaction requires a detailed understanding of the thermodynamics associated with the protonation equilibria of the aminoglycoside amino groups. In recognition of this need, a calorimetric- and NMR-based approach for obtaining the requisite thermodynamic information is presented using paromomycin as the model aminoglycoside. Temperature- and pH-dependent 15N NMR studies provide pKa values for the five paromomycin amino groups, as well as the temperature dependence of these pKa values. These studies also indicate that the observed pKa values associated with the free base form of paromomycin are lower in magnitude than the corresponding values associated with the sulfate salt form of the drug. This difference in pKa is due to drug interactions with the sulfate counterions at the high drug concentrations (≥812 mM) used in the 15N NMR studies. Isothermal titration calorimetry studies conducted at drug concentrations ≤45 μM reveal that the extent of paromomycin protonation linked to the binding of the drug to its pharmacologically relevant target, the 16 S rRNA A-site, is consistent with the pKa values of the free base and not the sulfate salt form of the drug. Temperature- and pH-dependent isothermal titration calorimetry studies yield exothermic enthalpy changes (ΔH) for protonation of the five paromomycin amino groups, as well as positive heat capacity changes (ΔCp) for three of the five amino groups. Regarded as a whole, the results presented here represent an important first step toward establishing a thermodynamic database that can be used to predict how aminoglycoside-macromolecule binding energetics will be influenced by conditions such as temperature, pH, and ionic strength. Such a predictive capability is a critical component of any drug design strategy.
机译:氨基糖苷类抗生素与多种大分子靶标的结合与代表此类药物的一个或多个氨基的质子化作用相关。确定这种连接如何以及在何种程度上影响氨基糖苷-大分子结合反应的能量,需要对与氨基糖苷氨基的质子化平衡有关的热力学有详细的了解。认识到这种需求,提出了一种使用巴龙霉素作为模型氨基糖苷的基于量热和NMR的方法来获得必要的热力学信息。温度和pH依赖性的 15 N NMR研究提供了五个巴龙霉素氨基的pKa值,以及这些pKa值的温度依赖性。这些研究还表明,观察到的与巴龙霉素的游离碱形式有关的pKa值在幅度上低于与该药物的硫酸盐形式有关的相应值。 pKa的这种差异是由于 15 N NMR研究中使用的高药物浓度(≥812mM)下药物与硫酸盐抗衡离子的相互作用。在≤45μM的药物浓度下进行的等温滴定量热法研究表明,巴龙霉素的质子化程度与该药物与其药理学相关靶标16 S rRNA A位点的结合有关,与游离碱和不是药物的硫酸盐形式。依赖温度和pH的等温滴定量热法研究得出五个巴龙霉素氨基的质子化的放热焓变化(ΔH),以及五个氨基中三个的正热容变化(ΔCp)。总体而言,此处给出的结果代表着建立热力学数据库的重要第一步,该数据库可用于预测温度,pH和离子强度等条件对氨基糖苷-大分子结合能的影响。这种预测能力是任何药物设计策略的关键组成部分。

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