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Metal binding and interdomain thermodynamics of mammalian metallothionein-3: enthalpically favoured Cu<sup>+</sup>supplants entropically favoured Zn<sup>2+</sup>to form Cu<sub>4</sub><sup>+</sup>clusters under physiological conditions

24

Citations

92

References

2022

Year

Abstract

Metallothioneins (MTs) are a ubiquitous class of small metal-binding proteins involved in metal homeostasis and detoxification. While known for their high affinity for d<sup>10</sup> metal ions, there is a surprising dearth of thermodynamic data on metals binding to MTs. In this study, Zn<sup>2+</sup> and Cu<sup>+</sup> binding to mammalian metallothionein-3 (MT-3) were quantified at pH 7.4 by isothermal titration calorimetry (ITC). Zn<sup>2+</sup> binding was measured by chelation titrations of Zn<sub>7</sub>MT-3, while Cu<sup>+</sup> binding was measured by Zn<sup>2+</sup> displacement from Zn<sub>7</sub>MT-3 with competition from glutathione (GSH). Titrations in multiple buffers enabled a detailed analysis that yielded condition-independent values for the association constant (<i>K</i>) and the change in enthalpy (Δ<i>H</i>) and entropy (Δ<i>S</i>) for these metal ions binding to MT-3. Zn<sup>2+</sup> was also chelated from the individual α and β domains of MT-3 to quantify the thermodynamics of inter-domain interactions in metal binding. Comparative titrations of Zn<sub>7</sub>MT-2 with Cu<sup>+</sup> revealed that both MT isoforms have similar Cu<sup>+</sup> affinities and binding thermodynamics, indicating that Δ<i>H</i> and Δ<i>S</i> are determined primarily by the conserved Cys residues. Inductively coupled plasma mass spectrometry (ICP-MS) analysis and low temperature luminescence measurements of Cu-replete samples showed that both proteins form two Cu<sub>4</sub> <sup>+</sup>-thiolate clusters when Cu<sup>+</sup> displaces Zn<sup>2+</sup> under physiological conditions. Comparison of the Zn<sup>2+</sup> and Cu<sup>+</sup> binding thermodynamics reveal that enthalpically-favoured Cu<sup>+</sup>, which forms Cu<sub>4</sub> <sup>+</sup>-thiolate clusters, displaces the entropically-favoured Zn<sup>2+</sup>. These results provide a detailed thermodynamic analysis of d<sup>10</sup> metal binding to these thiolate-rich proteins and quantitative support for, as well as molecular insight into, the role that MT-3 plays in the neuronal chemistry of copper.

References

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