Metal toxicity and opportunistic binding of Pb(2+) in proteins
Michael Kirberger1, Hing C Wong, Jie Jiang
1Department of Chemistry, Center for Diagnostics and Therapeutics and Drug Design and Biotechnology, Georgia State University, Atlanta, GA, 30303, United States.
Abstract:
Lead toxicity is associated with various human diseases. While Ca(2+) binding proteins such as calmodulin (CaM) are often reported to be molecular targets for Pb(2+)-binding and lead toxicity, the effect of Pb(2+) on the Ca(2+)/CaM regulated biological activities cannot be described by the primary mechanism of ionic displacement (e.g., ionic mimicry). The focus of this study was to investigate the mechanism of lead toxicity through binding differences between Ca(2+) and Pb(2+) for CaM, an essential intracellular trigger protein with two EF-Hand Ca(2+)-binding sites in each of its two domains that regulates many molecular targets via Ca(2+)-induced conformational change. Fluorescence changes in phenylalanine indicated that Pb(2+) binds with 8-fold higher affinity than Ca(2+) in the N-terminal domain. Additionally, NMR chemical shift changes and an unusual biphasic response observed in tyrosine fluorescence associated with C-terminal domain sites EF-III and EF-IV suggest a single higher affinity Pb(2+)-binding site with a 3-fold higher affinity than Ca(2+), coupled with a second site exhibiting affinity nearly equivalent to that of the N-terminal domain sites. Our results further indicate that Pb(2+) displaces Ca(2+) only in the N-terminal domain, with minimal perturbation of the C-terminal domain, however significant structural/dynamic changes are observed in the trans-domain linker region which appear to be due to Pb(2+)-binding outside of the known calcium-binding sites. These data suggest that opportunistic Pb(2+)-binding in Ca(2+)/CaM has a profound impact on the conformation and dynamics of the essential molecular recognition sites of the central helix, and provides insight into the molecular toxicity of non-essential metal ions.
Insights
Lead (Pb(2+)) binds calmodulin (CaM) with higher affinity than calcium (Ca(2+)), impacting protein structure and function. This study reveals Pb(2+) binding mechanisms beyond simple ionic mimicry, offering insights into lead toxicity.
Area of Science:
- Biochemistry
- Toxicology
- Molecular Biology
Background:
- Lead toxicity is a significant health concern linked to various diseases.
- Calmodulin (CaM) is a key calcium (Ca(2+)) binding protein regulating numerous cellular activities.
- The precise molecular mechanisms of lead (Pb(2+)) interaction with CaM are not fully understood, extending beyond simple ionic mimicry.
Purpose of the Study:
- To investigate the binding differences between Ca(2+) and Pb(2+) to CaM.
- To elucidate the impact of Pb(2+) binding on CaM's structure and dynamics.
- To understand the molecular basis of lead toxicity mediated by CaM.
Main Methods:
- Utilized fluorescence spectroscopy to measure Ca(2+) and Pb(2+) binding affinities to CaM.
- Employed Nuclear Magnetic Resonance (NMR) spectroscopy to detect chemical shift changes.
- Analyzed conformational and dynamic changes in CaM upon metal ion binding.
Main Results:
- Pb(2+) exhibits significantly higher binding affinity (8-fold) than Ca(2+) in CaM's N-terminal domain.
- Pb(2+) binding to the C-terminal domain shows complex behavior, with one high-affinity site and another site of nearly equivalent affinity.
- Pb(2+) displaces Ca(2+) primarily in the N-terminal domain, inducing structural and dynamic changes in the trans-domain linker region, independent of canonical Ca(2+)-binding sites.
Conclusions:
- Opportunistic Pb(2+) binding to CaM profoundly alters its conformation and dynamics.
- Pb(2+) binding affects critical molecular recognition sites, providing a molecular explanation for lead toxicity.
- These findings offer new insights into the non-essential metal ion toxicity mechanisms involving CaM.
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