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Letter to the editor

Characterization of a putative ArsR transcriptional regulator encoded by Rv2642 from Mycobacterium tuberculosis

, , , , &
Pages 2031-2039 | Received 23 Mar 2016, Accepted 17 Jun 2016, Published online: 05 Aug 2016

References

  • Andreini, C., Bertini, I., Cavallaro, G., Holliday, G. L., & Thornton, J. M. (2008). Metal ions in biological catalysis: From enzyme databases to general principles. JBIC Journal of Biological Inorganic Chemistry, 13, 1205–1218. doi:10.1007/s00775-008-0404-5
  • Bailey, T. L., & Gribskov, M. (1998). Combining evidence using p-values: Application to sequence homology searches. Bioinformatics, 14, 48–54. doi:10.1093/bioinformatics/14.1.48
  • Campbell, D. R., Chapman, K. E., Waldron, K. J., Tottey, S., Kendall, S., Cavallaro, G., & Robinson, N. J. (2007). Mycobacterial cells have dual nickel-cobalt sensors sequence relationships and metal sites of metal-responsive repressors are not congruent. Journal of Biological Chemistry, 282, 32298–32310. doi:10.1074/jbc.M703451200
  • Canneva, F., Branzoni, M., Riccardi, G., Provvedi, R., & Milano, A. (2005). Rv2358 and FurB: Two transcriptional regulators from Mycobacterium tuberculosis which respond to zinc. Journal of Bacteriology, 187, 5837–5840. doi:10.1128/JB.187.16.5837-5840.200
  • Cavet, J. S., Graham, A. I., Meng, W., & Robinson, N. J. (2003). A cadmium-lead-sensing arsr-smtb repressor with novel sensory sites complementary metal discrimination by NMTR and CMTR in a common cytosol. Journal of Biological Chemistry, 278, 44560–44566. doi:10.1074/jbc.M307877200
  • Cavet, J. S., Meng, W., Pennella, M. A., Appelhoff, R. J., Giedroc, D. P., & Robinson, N. J. (2002). A nickel-cobalt-sensing ArsR-SmtB family repressor contributions of cytosol and effector binding sites to metal selectivity. Journal of Biological Chemistry, 277, 38441–38448. doi:10.1074/jbc.M207677200
  • Chauhan, S., Kumar, A., Singhal, A., Tyagi, J. S., & Krishna Prasad, H. (2009). CmtR, a cadmium-sensing ArsR–SmtB repressor, cooperatively interacts with multiple operator sites to autorepress its transcription in Mycobacterium tuberculosis. FEBS Journal, 276, 3428–3439. doi:10.1111/j.1742-4658.2009.07066.x
  • Cole, S., Brosch, R., Parkhill, J., Garnier, T., Churcher, C., Harris, D., & Barry, C. R. (1998). Deciphering the biology of Mycobacterium tuberculosis from the complete genome sequence. Nature, 393, 537–544. doi:10.1038/31159
  • Crooks, G. E., Hon, G., Chandonia, J.-M., & Brenner, S. E. (2004). WebLogo: A sequence logo generator. Genome Research, 14, 1188–1190. doi:10.1101/gr.849004
  • Ebrahimi, M., Khayamian, T., & Hadadzadeh, H. (2015). Spectroscopic, biological and molecular modeling studies on the interactions of [Fe(III)-meloxicam] with G-quadruplex DNA and investigation of its release from bovine serum albumin (BSA) nanoparticles. Journal of Biomolecular Structure & Dynamics, 33, 1–52. doi:10.1080/07391102.2014.1003195
  • Gao, C.-H., Yang, M., & He, Z.-G. (2012). Characterization of a novel ArsR-like regulator encoded by Rv2034 in Mycobacterium tuberculosis. PLoS ONE, 7, e36255. doi:10.1371/journal.pone.0036255
  • Halliwell, B., & Gutteridge, J. (1984). Oxygen toxicity, oxygen radicals, transition metals and disease. Biochemical journal, 219, 1–14. doi:10.1042/bj2190001
  • Hodgkinson, V., & Petris, M. J. (2012). Copper homeostasis at the host-pathogen interface. Journal of Biological Chemistry, 287, 13549–13555. doi:10.1074/jbc.R111.316406
  • Hotter, G. S., Wilson, T., & Collins, D. M. (2001). Identification of a cadmium-induced gene in Mycobacterium bovis and Mycobacterium tuberculosis. FEMS Microbiology Letters, 200, 151–155. doi:10.1111/j.1574-6968.2001.tb10707.x
  • Kühlbrandt, W. (2004). Biology, structure and mechanism of P-type ATPases. Nature Reviews Molecular Cell Biology, 5, 282–295. doi:10.1038/nrm1354
  • Lin, Y., Li, Q., Xie, L., & Xie, J. (2016). Mycobacterium tuberculosis rv1400c encodes functional lipase/esterase. Protein Expression and Purification, 124, 1–7. doi:10.1016/j.pep.2016.04.013
  • Mac Aogain, M., Mooij, M. J., McCarthy, R. R., Plower, E., Wang, Y.-P., Tian, Z.-X., & O’Gara, F. (2012). The non-classical ArsR-family repressor PyeR (PA4354) modulates biofilm formation in Pseudomonas aeruginosa. Microbiology, 158, 2598–2609. doi:10.1099/mic.0.058636-0
  • McGillivray, A., Golden, N. A., Gautam, U. S., Mehra, S., & Kaushal, D. (2014). The Mycobacterium tuberculosis Rv2745c plays an important role in responding to redox stress. PLoS ONE, 9, e93604. doi:10.1371/journal.pone.0093604
  • Osman, D., & Cavet, J. S. (2010). Bacterial metal-sensing proteins exemplified by ArsR–SmtB family repressors. Natural product reports, 27, 668–680. doi:10.1039/b906682a
  • Padilla-Benavides, T., Long, J. E., Raimunda, D., Sassetti, C. M., & Argüello, J. M. (2013). A novel P1B-type Mn2+- transporting ATPase is required for secreted protein metallation in mycobacteria. Journal of Biological Chemistry, 288, 11334–11347. doi:10.1074/jbc.M112.448175
  • Qian, M., Ma, Y., Gao, X., Ran, L., Liu, P., Yi, M., & Gao, Q. (2015). 2-Deoxyglucose conjugated platinum (II) complexes for targeted therapy: Design, synthesis, and antitumor activity. Journal of Biomolecular Structure & Dynamics, 1–21, doi:10.1080/07391102.2015.1114972
  • Raimunda, D., Long, J. E., Sassetti, C. M., & Argüello, J. M. (2012). Role in metal homeostasis of CtpD, a Co2+ transporting P1B4-ATPase of Mycobacterium smegmatis. Molecular Microbiology, 84, 1139–1149. doi:10.1111/j.1365-2958.2012.08082.x
  • Reddy, T., Riley, R., Wymore, F., Montgomery, P., DeCaprio, D., Engels, R., & Jin, H. (2009). TB database: An integrated platform for tuberculosis research. Nucleic Acids Research, 37, D499–D508. doi:10.1093/nar/gkn652
  • Saffar, B., Mehri, G. A., Mahnam, K., & Mobini-Dehkordi, M. (2015). Improvement of Cd(2+) uptake ability of SmtA protein by Lys/Cys mutation; experimental and theoretical studies. Journal of Biomolecular Structure & Dynamics, 33, 1–40. doi:10.1080/07391102.2015.1054431
  • Si, Y. X., Lee, J., Zhao, F., Yin, S. J., Park, Y. D., Qian, G. Y., & Jiang, X. M. (2015). Effects of cadmium on the cuttlefish Sepia pharaonis’ arginine kinase: Unfolding kinetics integrated with computational simulations. Journal of Biomolecular Structure & Dynamics, 1–50. doi:10.1080/07391102.2015.1091747
  • Thompson, J. D., Higgins, D. G., & Gibson, T. J. (1994). CLUSTAL W: Improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gap penalties and weight matrix choice. Nucleic Acids Research, 22, 4673–4680. doi:10.1093/nar/22.22.4673
  • Valko, M., Morris, H., & Cronin, M. (2005). Metals, toxicity and oxidative stress. Current Medicinal Chemistry, 12, 1161–1208. doi:10.2174/0929867053764635
  • Wang, Y., Cen, X.-F., Zhao, G.-P., & Wang, J. (2012). Characterization of a new GlnR binding box in the promoter of amtB in Streptomyces coelicolor inferred a PhoP/GlnR competitive binding mechanism for transcriptional regulation of amtB. Journal of Bacteriology, 194, 5237–5244. doi:10.1128/JB.00989-12
  • Ward, S. K., Abomoelak, B., Hoye, E. A., Steinberg, H., & Talaat, A. M. (2010). CtpV: A putative copper exporter required for full virulence of Mycobacterium tuberculosis. Molecular Microbiology, 77, 1096–1110. doi:10.1111/j.1365-2958
  • Ward, S. K., Hoye, E. A., & Talaat, A. M. (2008). The global responses of Mycobacterium tuberculosis to physiological levels of copper. Journal of Bacteriology, 190, 2939–2946. doi:10.1128/JB.01847-07
  • Wolschendorf, F., Ackart, D., Shrestha, T. B., Hascall-Dove, L., Nolan, S., Lamichhane, G., & Niederweis, M. (2011). Copper resistance is essential for virulence of Mycobacterium tuberculosis. Proceedings of the National Academy of Sciences, 108, 1621–1626. doi:10.1073/pnas.1009261108
  • Wu, B., Song, J., & Beitz, E. (2010). Novel channel enzyme fusion proteins confer arsenate resistance. Journal of Biological Chemistry, 285, 40081–40087. doi:10.1074/jbc.M110.184457
  • Zeng, J., Cui, T., & He, Z.-G. (2012). A genome-wide regulator–DNA interaction network in the human pathogen Mycobacterium tuberculosis H37Rv. Journal of Proteome Research, 11, 4682–4692. doi:10.1021/pr3006233

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