Avilés-Moreno Juan Ramón, Gámez Francisco, Berden Giel, Oomens Jos, Martínez-Haya Bruno
Department of Physical, Chemical and Natural Systems, Universidad Pablo de Olavide, E-41013 Seville, Spain.
Phys Chem Chem Phys. 2017 Jun 14;19(23):14984-14991. doi: 10.1039/c7cp02438j.
The antibiotic activity of nonactin is sustained by its ability to transport K across lipophilic phases, e.g., the cell membranes. Such a feature can be traced back to a specific ionophoric behavior and to a balanced hydrophobicity modulated by the formation of a cation complex. In this study, the dominant conformations and coordination arrangements in the alkali cation complexes (Na, K, Cs) of nonactin are characterized by means of action vibrational spectroscopy and quantum chemical computations. The low energy conformers of the complexes comprise compact inclusion structures, in which the cation interacts with a varying number of oxygen atoms of the carbonyl and oxolane ring groups of the nonactin macrocycle. The spectroscopy experiments indicate that the three alkali complexes explored are formed in a S conformation. This is in contrast with previous crystallography studies, which concluded that the symmetry of the most stable conformer of the complex changes qualitatively with the cation size, from C for Na to S for K and Cs. Computations with different hybrid density functionals lead to contradictory predictions that appear to be quite sensitive to the modelling of the long range interactions in the coordination arrangements. The stabilization of the nonactin-Na complex in the C or S forms emerges as a subtle feature that may be tuned with an appropriate control of the environmental conditions, and constitutes a challenging benchmark to confront novel computational methods for supramolecular systems.
缬氨霉素的抗生素活性源于其将钾离子转运穿过亲脂相(如细胞膜)的能力。这一特性可追溯到特定的离子载体行为以及由阳离子络合物形成所调节的平衡疏水性。在本研究中,通过红外振动光谱和量子化学计算对缬氨霉素的碱金属阳离子络合物(钠、钾、铯)中的主要构象和配位排列进行了表征。这些络合物的低能量构象包括紧密的包合结构,其中阳离子与缬氨霉素大环的羰基和氧杂环戊烷环基团中数量不等的氧原子相互作用。光谱实验表明,所研究的三种碱金属络合物均以S构象形成。这与之前的晶体学研究结果相反,之前的研究得出结论,该络合物最稳定构象的对称性会随着阳离子大小而发生定性变化,从钠络合物的C构象变为钾和铯络合物的S构象。使用不同杂化密度泛函进行的计算得出了相互矛盾的预测,这些预测似乎对配位排列中长程相互作用的建模非常敏感。缬氨霉素 - 钠络合物在C或S形式下的稳定性是一个微妙的特征,可能通过对环境条件的适当控制进行调节,并且构成了一个具有挑战性的基准,用于检验超分子系统的新型计算方法。