[(H2O)Zn(Imidazole)n]2+: the vital roles of coordination number and geometry in Zn-OH2 acidity and catalytic hydrolysis
- PMID: 30239541
- DOI: 10.1039/c8cp03121e
[(H2O)Zn(Imidazole)n]2+: the vital roles of coordination number and geometry in Zn-OH2 acidity and catalytic hydrolysis
Abstract
The Zn(ii)-(Imidazole(ate))n coordination motif occurs in numerous biochemical systems, including carbonic anhydrase and the matrix metalloproteinases (MMPs). Additionally, it has been used in synthetic materials, such as the zinc-based zeolitic imidazolate framework (ZIF) structures. Zinc centers in these systems typically act as Lewis acids that form complexes with small molecules, such as H2O, which is activated catalytically toward a number of important and useful hydrolysis reactions. The results reported herein from density functional theory (M05-2X) and ab initio (MP2 and CCSD(T)) calculations demonstrate that both the coordination number and the molecular geometry have a sizable impact on the binding strength, deprotonation energy, and acidity of the Zn(ii) coordinated water. Through a series of quantum mechanical calculations on [(ImH)nZn-OH2]2+ complexes (n = 1-5), both the solution-phase pKa and the gas-phase proton dissociation energy significantly increase as n increases. While this should not be too surprising, the Zn-OH2 bond dissociation energies and bond lengths don't necessarily undergo a concurrent decrease, and therefore would be of limited use as a prediction tool regarding Zn-OH2 acidity. In an effort to dissect the impacts of coordination number and molecular geometry on these thermodynamic parameters, we performed constrained geometry optimizations on the three- (n = 2) and four-coordinate (n = 3) complexes. These calculations surprisingly reveal a marked impact on the pKa and proton dissociation energy of the coordinated water, upon exclusive changes in the Zn(ii) coordination geometry, whether in the gas-phase or in aqueous solution. We discuss the relevance of these results to the catalytic peptide hydrolysis mechanism of the MMPs and possible implications for catalytic activity within or on the surfaces of ZIFs.
Similar articles
-
Methanethiol Binding Strengths and Deprotonation Energies in Zn(II)-Imidazole Complexes from M05-2X and MP2 Theories: Coordination Number and Geometry Influences Relevant to Zinc Enzymes.J Phys Chem B. 2015 Sep 17;119(37):12182-92. doi: 10.1021/acs.jpcb.5b07115. Epub 2015 Sep 4. J Phys Chem B. 2015. PMID: 26317178 Free PMC article.
-
Quantifying the relative contribution of hydrogen bonding and hydrophobic environments, and coordinating groups, in the zinc(II)-water acidity by synthetic modelling chemistry.Dalton Trans. 2004 May 21;(10):1648-55. doi: 10.1039/b402084g. Epub 2004 Apr 14. Dalton Trans. 2004. PMID: 15252616
-
Energies, Geometries, and Charge Distributions of Zn Molecules, Clusters, and Biocenters from Coupled Cluster, Density Functional, and Neglect of Diatomic Differential Overlap Models.J Chem Theory Comput. 2009 May 12;5(5):1254-65. doi: 10.1021/ct900038m. Epub 2009 Apr 2. J Chem Theory Comput. 2009. PMID: 26609716
-
Bio-inspired nanozyme: a hydratase mimic in a zeolitic imidazolate framework.Nanoscale. 2019 Mar 28;11(13):5960-5966. doi: 10.1039/c9nr01093a. Nanoscale. 2019. PMID: 30888366
-
Theoretical insights into the functioning of metallopeptidases and their synthetic analogues.Acc Chem Res. 2015 Feb 17;48(2):192-200. doi: 10.1021/ar500301y. Epub 2015 Jan 21. Acc Chem Res. 2015. PMID: 25607542 Review.
Cited by
-
Coordination acid-engineered Prussian Blue affects glycometabolic reprogramming in microglia for epileptic treatment.J Nanobiotechnology. 2025 Jun 11;23(1):436. doi: 10.1186/s12951-025-03408-9. J Nanobiotechnology. 2025. PMID: 40500710 Free PMC article.
LinkOut - more resources
Full Text Sources
Other Literature Sources
Research Materials