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.

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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