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Study of the chelating properties of Ge(OH)_2 functionality as metal binding group for Zn~(2+) cation in simplified protease-like environments: a DFT analysis

机译:简化的类蛋白酶环境中Ge(OH)_2官能团作为Zn〜(2+)阳离子金属结合基的螯合性能的研究:DFT分析

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The development of protease's inhibitors is an active field of research in the pharmaceutical industry. As concerns the design of new inhibitors, the theoretical study of the binding patterns and energies of known metal binding groups (MBGs) toward Zn~(2+) using quantum-chemical calculations may offer a better understanding of their interaction models and may be useful for the improvement and design of novel ZBGs. Here the properties of gem-Ge(OH)_2-based compounds as ZBG were assessed theoretically using DFT calculations. [Zn(Imdz)_2R?OH_2]~(2+) complexes (Imdz =imidazole rings; R = imidazole ring, acetic acid molecule or acetate anion) were used to partially reproduce the coordination sphere in metalloproteases (ACE, amgiotensin converting enzyme, and TLN, thermolysine) being inhibited by related compounds (i.e., silanediols). TheMBG- Zn~(2+) interaction was analyzed through the energy of the reaction: [Zn(Imdz)_2- R?OH_2]~(2+)+L→[Zn(Imdz)_2R?L]~(2+)+H_2O using DFT (M06L/cc-pVDZ) in gas-phase and in solution (IEF-PCM). Although the functional used (M06L) has proven its efficiency to study systems containing transition metal governed by non-covalent interactions, dispersion effects were implemented by the correction of the computed energies using the DFTD3 program. Accounting for dispersion effects produced a systematic increase of c.a. 13 kJ mol~(?1) on the energies, whereas the effect of solvent goes in the opposite direction (i.e., BE under the IEF-PCM model are on average 125 kJ mol~(?1) lower). The Ge(OH)_(2~-) Zn~(2+) interaction seems to be similar (or even stronger) than the Si(OH)_2 -Zn~(2+). Their better performance as ZBG is explained by the combinedNBO-AIM analysis. The results of this work may encourage the preparation, isolation, and experimental assay of the chelating properties of these compounds, which may propose a new family of protease's inhibitors.
机译:蛋白酶抑制剂的开发是制药工业中一个活跃的研究领域。关于新抑制剂的设计,使用量子化学计算理论研究已知金属结合基团(MBGs)对Zn〜(2+)的结合模式和能量可能会更好地理解它们的相互作用模型,可能是有用的用于新型ZBG的改进和设计。在这里,使用DFT计算从理论上评估了基于GeM-Ge(OH)_2的ZBG化合物的性能。 [Zn(Imdz)_2R?OH_2]〜(2+)配合物(Imdz =咪唑环; R =咪唑环,乙酸分子或乙酸根阴离子)用于部分还原金属蛋白酶(ACE,血管紧张素转化酶,和TLN,热赖氨酸)被相关化合物(即,硅烷二醇)抑制。通过反应的能量分析了MBG-Zn〜(2+)的相互作用:[Zn(Imdz)_2- R?OH_2]〜(2 +)+ L→[Zn(Imdz)_2R?L]〜(2+ )+ H_2O,使用DFT(M06L / cc-pVDZ)在气相和溶液中(IEF-PCM)。尽管所使用的功能(M06L)已证明能有效地研究包含受非共价相互作用控制的过渡金属的系统,但使用DFTD3程序通过校正计算出的能量来实现色散效应。考虑到分散效应会导致c.a的系统增加。能量上的能量为13 kJ mol〜(?1),而能量的影响为13 kJ mol〜(?1)(相反)(即,在IEF-PCM模型下的BE平均要低125 kJ mol〜(?1))。 Ge(OH)_(2〜-)Zn〜(2+)的相互作用似乎与Si(OH)_2 -Zn〜(2+)相似(甚至更强)。 NBO-AIM组合分析说明了它们作为ZBG更好的性能。这项工作的结果可能会鼓励这些化合物的螯合性能的制备,分离和实验测定,这可能会提出一个新的蛋白酶抑制剂家族。

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