Departamento de Química Inorgánica, Analítica y Química Física, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Pabellón 2, Ciudad Universitaria, C1428EHA, Ciudad Autónoma de Buenos Aires, Argentina.
Dalton Trans. 2021 Feb 7;50(5):1641-1650. doi: 10.1039/d0dt03552a. Epub 2021 Jan 15.
The acid-base speciation of coordinated azanone (HNO) remains a highly relevant topic in bioinorganic chemistry. Ruthenium nitroxyl complexes with sufficient robustness towards ligand loss have gained significance as operating platforms to delve into such studies. In this work, we revisit an octahedral {RuNO} complex containing the cyclam-based pentadentate ligand L = 1-(pyridine-2-ylmethyl)-1,4,8,11-tetraazacyclotetradecane and explore the thermodynamic and spectroscopic aspects of its reduced states in aqueous media. Upon in situ electro-generation of the bound HNO moiety, we have undertaken different strategies to determine both its acidity and electrochemical properties. This robust HNO complex does not undergo deprotonation in a wide pH range. We have found pK ([Ru(L)(HNO)]) = 13.0 ± 0.1 and . There are indications that pK (HNO) values in several ruthenium-based species correlate with the redox potential associated with the {RuNO} and {RuNO} couples. The present pK extends the range of acidity of bound HNO to more than five pH units, confirming a remarkable sensitivity to the nature of the coordination sphere. This result lays new foundations to continue rational ligand design that may contribute to a better understanding of the different biological roles of both HNO and NO by investigating key chemical aspects of model complexes.
配合氮酮(HNO)的酸碱形态在生物无机化学中仍然是一个高度相关的课题。具有足够稳定性以防止配体损失的钌亚硝酰配合物作为操作平台,已被广泛用于此类研究。在这项工作中,我们重新研究了一种含有基于环戊二烯的五齿配体 L = 1-(吡啶-2-基甲基)-1,4,8,11-四氮杂环十四烷的八面体{RuNO}配合物,并探讨了其在水介质中还原态的热力学和光谱学方面的性质。在原位电生成结合的 HNO 部分后,我们采用了不同的策略来确定其酸度和电化学性质。这个稳定的 HNO 配合物在很宽的 pH 范围内不会发生去质子化。我们发现 pK([Ru(L)(HNO)])=13.0±0.1 和 。有迹象表明,几种基于钌的物种的 pK(HNO)值与{RuNO}和{RuNO}偶联相关的氧化还原电位相关。目前的 pK 值将结合 HNO 的酸度范围扩展到超过五个 pH 单位,证实了对配位球性质的显著敏感性。这一结果为继续进行合理的配体设计奠定了新的基础,这可能有助于通过研究模型配合物的关键化学方面,更好地理解 HNO 和 NO 的不同生物学作用。