Najarianzadeh Mobina, Tarahhomi Atekeh, Pishgo Samaneh, van der Lee Arie
Department of Chemistry Semnan University Semnan Iran.
IEM Université de Montpellier, CNRS, ENSCM Montpellier France.
Appl Organomet Chem. 2022 May;36(5):e6636. doi: 10.1002/aoc.6636. Epub 2022 Mar 1.
Amino-functionalized P(V) derivatives providing both - and -donor modes have attracted interest owing to their potential to form interesting coordination assemblies with applications such as biological drugs. Novel coordination modes of two- and four-dentate tris (pyridin-2-yl)phosphoric triamide OP[NH-Py] as ([Co{[O][NH-Py]P(O)[Ph]}(DMF)], ) and ([CuCl{[NH-Py]P(O)[N-Py]}].DMF, ) have been synthesized and structurally studied. The metal center environment is distorted octahedral for and distorted square pyramidal for . The crystal structure of a new complex of Cu with a Cu[N][Cl] environment ([CuCl(Pyrazole)], ) is also investigated. An evaluation of the inhibitory effect against the coronavirus (Main Protease [M] of SARS-CoV-2) was carried out by a molecular docking study and illustrates that these compounds have a good interaction tendency with CoV-2, where has the best binding affinity with the biological target comparable with other SARS-CoV-2 drugs. Moreover, theoretical QTAIM and natural bond orbital (NBO) calculations are used to evaluate the metal-oxygen/-nitrogen bonds suggesting that they are mainly electrostatic in nature with a slight covalent contribution. A molecular packing analysis using Hirshfeld surface (HS) analysis shows that N-H … O (in and ) and N-H … Cl (in ) hydrogen bonds are the dominant interactions that contribute to the crystal packing cohesion. The semi-empirical PIXEL method indicates that the electrostatic and repulsion energy components in the structures of and and the dispersion and electrostatic components in that of are the major contributors to the total lattice energy.
具有σ-和π-供体模式的氨基官能化磷(V)衍生物因其有潜力形成有趣的配位组装体并应用于生物药物等领域而备受关注。已合成并对二齿和四齿三(吡啶-2-基)磷三酰胺OP[NH-Py]的新型配位模式(如[Co{[O][NH-Py]P(O)[Ph]}(DMF)]和[CuCl{[NH-Py]P(O)[N-Py]}].DMF)进行了结构研究。对于前者,金属中心环境为畸变八面体,对于后者为畸变四方锥。还研究了具有Cu[N][Cl]环境的铜的一种新配合物([CuCl(吡唑)])的晶体结构。通过分子对接研究对这些化合物针对冠状病毒(SARS-CoV-2的主要蛋白酶[M])的抑制作用进行了评估,结果表明这些化合物与CoV-2有良好的相互作用趋势,其中一种化合物与生物靶点的结合亲和力最佳,可与其他SARS-CoV-2药物相媲美。此外,使用理论QTAIM和自然键轨道(NBO)计算来评估金属-氧/氮键,结果表明它们主要是静电性质,有轻微的共价贡献。使用 Hirshfeld 表面(HS)分析进行的分子堆积分析表明,N-H…O(在两种化合物中)和N-H…Cl(在一种化合物中)氢键是有助于晶体堆积凝聚的主要相互作用。半经验PIXEL方法表明,两种化合物结构中的静电和排斥能成分以及另一种化合物结构中的色散和静电成分是总晶格能的主要贡献者。