The biological inorganic chemistry of zinc ions
Биологическая неорганическая химия ионов цинка
2016-04-30
SCID: 54.1/x53q3rkg
Discuss with AI
Zn(II) coordination chemistrybiological inorganic chemistrymobile zinc ionszinc ion ligand exchangezinc ion speciation
Figures from the paper
Abstract (AI)
The solution and complexation chemistry of zinc ions is the basis for zinc biology. In living organisms, zinc is redox-inert and has only one valence state: Zn(II). Its coordination environment in proteins is limited by oxygen, nitrogen, and sulfur donors from the side chains of a few amino acids. In an estimated 10% of all human proteins, zinc has a catalytic or structural function and remains bound during the lifetime of the protein. However, in other proteins zinc ions bind reversibly with dissociation and association rates commensurate with the requirements in regulation, transport, transfer, sensing, signalling, and storage. In contrast to the extensive knowledge about zinc proteins, the coordination chemistry of the “mobile” zinc ions in these processes, i.e. when not bound to proteins, is virtually unexplored and the mechanisms of ligand exchange are poorly understood. Knowledge of the biological inorganic chemistry of zinc ions is essential for understanding its cellular biology and for designing complexes that deliver zinc to proteins and chelating agents that remove zinc from proteins, for detecting zinc ion species by qualitative and quantitative analysis, and for proper planning and execution of experiments involving zinc ions and nanoparticles such as zinc oxide (ZnO). In most investigations, reference is made to zinc or Zn2+ without full appreciation of how biological zinc ions are buffered and how the d-block cation Zn2+ differs from s-block cations such as Ca2+ with regard to significantly higher affinity for ligands, preference for the donor atoms of ligands, and coordination dynamics. Zinc needs to be tightly controlled. The interaction with low molecular weight ligands such as water and inorganic and organic anions is highly relevant to its biology but in contrast to its coordination in proteins has not been discussed in the biochemical literature. From the discussion in this article, it is becoming evident that zinc ion speciation is important in zinc biochemistry and for biological recognition as a variety of low molecular weight zinc complexes have already been implicated in biological processes, e.g. with ATP, glutathione, citrate, ethylenediaminedisuccinic acid, nicotianamine, or bacillithiol.
Key Findings
1
Approximately 10% of human proteins use zinc for catalytic or structural functions, with zinc remaining bound throughout the protein’s lifetime.
2
Biological zinc speciation and buffering must be considered because Zn(II) binds ligands more strongly, exhibits donor-atom preferences, and has different coordination dynamics than Ca(II).
3
Interactions between zinc ions and low-molecular-weight ligands, including water and inorganic or organic anions, are highly relevant to zinc biology but have been insufficiently addressed.
4
Other proteins bind zinc reversibly, enabling regulation, transport, transfer, sensing, signalling, and storage through association and dissociation kinetics.
5
The coordination chemistry and ligand-exchange mechanisms of mobile, protein-unbound zinc ions remain largely unexplored.
6
Zinc is redox-inert in organisms and exists exclusively in the Zn(II) oxidation state.
Research Object
biological zinc ions, including mobile Zn(II) species in aqueous and cellular environments
Research Subject
the solution, coordination, complexation, speciation, buffering, and ligand-exchange chemistry of zinc ions relevant to their biological functions
Publication Details
Publication Date
2016-04-30
Journal
Publisher
ISSN
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest