Literature DB >> 22454083

Greater binding affinity of trivalent antimony to a CCCH zinc finger domain compared to a CCHC domain of kinetoplastid proteins.

Frédéric Frézard1, Heveline Silva, Adriano Monteiro de Castro Pimenta, Nicholas Farrell, Cynthia Demicheli.   

Abstract

It has been reported recently that Sb(III) competes with Zn(II) for its binding to the CCHC zinc finger domain of the HIV-1 NCp7 protein, suggesting that zinc finger proteins may be molecular targets for antimony-based drugs. Here, the interaction of Sb(III) with a CCCH zinc finger domain, which is considered to play a crucial role in the biology of kinetoplastid protozoa, has been characterized for the first time. The binding characteristics of Sb(III) were compared between a CCCH-type peptide derived from a kinetoplastid protein and two different CCHC-type zinc finger peptides. The formation of 1 : 1 Zn-peptide and Sb-peptide complexes from the different peptides was demonstrated using circular dichroism, UV absorption, fluorescence spectroscopies and ESI-MS. Titration of the Zn-peptide complexes with SbCl(3) was performed at pH 6 and 7, exploiting the intrinsic fluorescence of the peptides. The differential spectral characteristics of the peptides allowed for competition experiments between the different peptides for binding of Zn(II). The present study establishes that Sb(III) more effectively displaces Zn(II) from the CCCH peptide than CCHC ones, as a result of both the greater stability of the Sb-CCCH complex (compared to Sb-CCHC complexes) and the lower stability of the Zn-CCCH complex (compared to Zn-CCHC complexes). Comparison of the binding characteristics of Sb(III) or Zn(II) between the CCHC-type peptides with different amino acid sequences supports the model that not only the conserved zinc finger motif, but also the sequence of non-conserved amino acids determines the binding affinity of Sb(III) and Zn(II). These data suggest that the interaction of Sb(III) with CCCH-type zinc finger proteins may modulate, or even mediate, the pharmacological action of antimonial drugs.

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Year:  2012        PMID: 22454083     DOI: 10.1039/c2mt00176d

Source DB:  PubMed          Journal:  Metallomics        ISSN: 1756-5901            Impact factor:   4.526


  9 in total

Review 1.  Antimony transport mechanisms in resistant leishmania parasites.

Authors:  Frédéric Frézard; Rubens Monte-Neto; Priscila G Reis
Journal:  Biophys Rev       Date:  2014-01-25

2.  Cu(I) Disrupts the Structure and Function of the Nonclassical Zinc Finger Protein Tristetraprolin (TTP).

Authors:  Geoffrey D Shimberg; Kiwon Ok; Heather M Neu; Kathryn E Splan; Sarah L J Michel
Journal:  Inorg Chem       Date:  2017-05-30       Impact factor: 5.165

3.  Complex Mechanisms of Antimony Genotoxicity in Budding Yeast Involves Replication and Topoisomerase I-Associated DNA Lesions, Telomere Dysfunction and Inhibition of DNA Repair.

Authors:  Ireneusz Litwin; Seweryn Mucha; Ewa Pilarczyk; Robert Wysocki; Ewa Maciaszczyk-Dziubinska
Journal:  Int J Mol Sci       Date:  2021-04-26       Impact factor: 5.923

4.  Perspectives From Systems Biology to Improve Knowledge of Leishmania Drug Resistance.

Authors:  Elvira Cynthia Alves Horácio; Jéssica Hickson; Silvane Maria Fonseca Murta; Jeronimo Conceição Ruiz; Laila Alves Nahum
Journal:  Front Cell Infect Microbiol       Date:  2021-04-30       Impact factor: 5.293

Review 5.  Current and potential applications of bismuth-based drugs.

Authors:  Donal M Keogan; Darren M Griffith
Journal:  Molecules       Date:  2014-09-23       Impact factor: 4.411

6.  Comparative transcriptomic analysis of antimony resistant and susceptible Leishmania infantum lines.

Authors:  Juvana Moreira Andrade; Leilane Oliveira Gonçalves; Daniel Barbosa Liarte; Davi Alvarenga Lima; Frederico Gonçalves Guimarães; Daniela de Melo Resende; Ana Maria Murta Santi; Luciana Marcia de Oliveira; João Paulo Linhares Velloso; Renato Guimarães Delfino; Pascale Pescher; Gerald F Späth; Jeronimo Conceição Ruiz; Silvane Maria Fonseca Murta
Journal:  Parasit Vectors       Date:  2020-11-30       Impact factor: 3.876

7.  Drug-Induced Lipid Remodeling in Leishmania Parasites.

Authors:  Sneider Alexander Gutierrez Guarnizo; Elena B Tikhonova; Masoud Zabet-Moghaddam; Kai Zhang; Carlos Muskus; Andrey L Karamyshev; Zemfira N Karamysheva
Journal:  Microorganisms       Date:  2021-04-09

8.  Metabolite Biomarkers of Leishmania Antimony Resistance.

Authors:  Sneider Alexander Gutierrez Guarnizo; Zemfira N Karamysheva; Elkin Galeano; Carlos E Muskus
Journal:  Cells       Date:  2021-04-30       Impact factor: 6.600

9.  Exploring direct and indirect targets of current antileishmanial drugs using a novel thermal proteomics profiling approach.

Authors:  Ana Victoria Ibarra-Meneses; Audrey Corbeil; Victoria Wagner; Francis Beaudry; Rubens L do Monte-Neto; Christopher Fernandez-Prada
Journal:  Front Cell Infect Microbiol       Date:  2022-08-03       Impact factor: 6.073

  9 in total

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