首页> 美国卫生研究院文献>Springer Open Choice >Why is monoalkylation versus bis-alkylation of the Ni(II) complex of the Schiff base of (S)-N-(2-benzoylphenyl)-1-benzylpyrrolidine-2-carboxamide and glycine so selective? MP2 modelling and topological QTAIM analysis of chiral metallocomplex synthons of α-amino acids used for the preparation of radiopharmaceuticals for positron emission tomography
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Why is monoalkylation versus bis-alkylation of the Ni(II) complex of the Schiff base of (S)-N-(2-benzoylphenyl)-1-benzylpyrrolidine-2-carboxamide and glycine so selective? MP2 modelling and topological QTAIM analysis of chiral metallocomplex synthons of α-amino acids used for the preparation of radiopharmaceuticals for positron emission tomography

机译:为什么(S)-N-(2-苯甲酰基苯基)-1-苄基吡咯烷-2-羧酰胺和甘氨酸的席夫碱Ni(II)配合物的Ni(II)配合物的单烷基化和双烷基化如此选择性?用于制备正电子发射断层照相术放射性药物的α-氨基酸手性金属配合物的MP2建模和拓扑QTAIM分析

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摘要

Chiral Ni(II) complexes are used for the preparation of carbon-11 or fluorine-18 enantiomerically pure α-amino acids for positron emission tomography (PET). They enable the selective monoalkylation of a glycine synthon with high stereoselectivity and the preparation of enantiomerically pure α-amino acids with quarternary α-carbon. Molecular modelling of non-, mono- and di-substituted complexes using quantum theory of atoms-in-molecule (QTAIM) topological analysis of electron density allowed us to formulate a new theory explaining the reasons for highly selective monomethylation of the complexes. In the non-substituted complex (GK), the α-carbon atom exhibits a higher atomic volume and a more positive charge in comparison with mono- and di-substituted complexes. This unusual behaviour is accompanied by increasing the bond critical point (BCP) ellipticity of the iminic bond in GK explained by the higher mechanical strain. Both phenomena indicate the increased reactivity and probably originate in more compact core of GK where shorter distances in the internal coordination sphere result in the higher strain of its bonds.
机译:手性Ni(II)配合物用于制备碳11或氟18对映体纯的α-氨基酸,用于正电子发射断层扫描(PET)。它们使甘氨酸合成子具有高的立体选择性进行选择性单烷基化,并可以制备具有季碳原子的α-碳的对映体纯的α-氨基酸。使用分子中原子的量子理论(QTAIM)对电子密度进行拓扑分析,对非取代,单取代和双取代的配合物进行分子建模,使我们能够建立新的理论来解释配合物高度选择性地单甲基化的原因。在非取代络合物(GK)中,与单取代和二取代络合物相比,α-碳原子具有更高的原子体积和更多的正电荷。这种不寻常的行为伴随着GK亚胺键的键临界点(BCP)椭圆度的增加,这是由较高的机械应变引起的。两种现象都表明反应性增加,并且可能起源于GK的更紧密核,其中内部配位球的距离越短,其键的应变就越高。

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