Literature DB >> 12047197

Factors governing the protonation state of cysteines in proteins: an Ab initio/CDM study.

Todor Dudev1, Carmay Lim.   

Abstract

The detailed mechanism of metal-cysteine binding is still poorly understood. It is not clear if every metal cation can induce cysteine deprotonation, how the dielectric medium affects this process, and the extent to which other ligands from the metal's first and second coordination shell influence cysteine ionization. It is also not clear if the zinc cation, with its positive charge reduced by charge transfer from the first two bound cysteinates, could still assist deprotonation of the next one or two cysteines in Cys3His and Cys4 zinc-finger cores. Here, we elucidate the factors governing the cysteine protonation state in metal-binding sites, in particular in Zn.Cys4 complexes, using a combined ab initio and continuum dielectric approach. Transition metal dications such as Zn2+ and Cu2+ and trivalent cations such as Al3+ with pronounced ability to accept charge from negatively charged Cys- are predicted to induce cysteine deprotonation, but not "hard" divalent cations such as Mg2+. A high dielectric medium was found to favor cysteine deprotonation, while a low one favored the protonated state. Polarizable ligands in the metal's first shell that can competitively donate charge to the metal cation were found to lower the efficiency of the metal-assisted cysteine deprotonation. The calculations predict that the zinc cation could assist deprotonation of all the cysteines during the folding of Cys4 zinc-finger cores and the [Zn.(Cys-)4]2- state is likely to be preserved in the final folded conformation of the protein provided the binding site is tightly encapsulated by backbone peptide groups or lysine/arginine side chains, which stabilize the ionized cysteine core.

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Year:  2002        PMID: 12047197     DOI: 10.1021/ja012620l

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  13 in total

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2.  Identification of two pentatricopeptide repeat genes required for RNA editing and zinc binding by C-terminal cytidine deaminase-like domains.

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3.  Solution structure of RING finger-like domain of retinoblastoma-binding protein-6 (RBBP6) suggests it functions as a U-box.

Authors:  Mautin A Kappo; Eiso Ab; Faqeer Hassem; R Andrew Atkinson; Andrew Faro; Victor Muleya; Takalani Mulaudzi; John O Poole; Jean M McKenzie; Moredreck Chibi; Joanna C Moolman-Smook; D Jasper G Rees; David J R Pugh
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Review 4.  Protein S-glutathiolation: redox-sensitive regulation of protein function.

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Journal:  J Biol Chem       Date:  2012-06-29       Impact factor: 5.157

6.  DNA recognition by the DNA primase of bacteriophage T7: a structure-function study of the zinc-binding domain.

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7.  Binding of histidine in the (Cys)3(His)1-coordinated [2Fe-2S] cluster of human mitoNEET.

Authors:  Michelle M Dicus; Andrea Conlan; Rachel Nechushtai; Patricia A Jennings; Mark L Paddock; R David Britt; Stefan Stoll
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8.  Reactive cysteine in the structural Zn(2+) site of the C1B domain from PKCα.

Authors:  Mikaela D Stewart; Tatyana I Igumenova
Journal:  Biochemistry       Date:  2012-09-05       Impact factor: 3.162

9.  Phosphorylation of PPARγ Affects the Collective Motions of the PPARγ-RXRα-DNA Complex.

Authors:  Justin A Lemkul; Stephanie N Lewis; Josep Bassaganya-Riera; David R Bevan
Journal:  PLoS One       Date:  2015-05-08       Impact factor: 3.240

10.  Metal-coupled folding as the driving force for the extreme stability of Rad50 zinc hook dimer assembly.

Authors:  Tomasz Kochańczyk; Michał Nowakowski; Dominika Wojewska; Anna Kocyła; Andrzej Ejchart; Wiktor Koźmiński; Artur Krężel
Journal:  Sci Rep       Date:  2016-11-03       Impact factor: 4.379

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