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[[Image:ebselen pic.jpg |100 xp|right|thumb|'''Figure 4.''' Ebselen.]]
[[Image:ebselen pic.jpg |100 xp|right|thumb|'''Figure 4.''' Ebselen.]]
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<scene name='69/694218/Ebselen/1'>Ag85C-Ebselen</scene> (Figure 3) is characterized by a covalent bond between [http://en.wikipedia.org/wiki/Ebselen ebselen](figure 4) and Cys209, thus forcing the otherwise kinked helix α-9 to take on a relaxed conformation (Figure 3). This allows movement of the helix and causes disruption of the hydrogen bonds within the catalytic triad, ultimately inactivating Ag85C.<ref name="Favrot"/>
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<scene name='69/694218/Ebselen/1'>Ag85C-Ebselen</scene> (Figure 3) is characterized by a covalent bond between [http://en.wikipedia.org/wiki/Ebselen ebselen](figure 4) and Cys209, thus forcing the otherwise kinked helix α-9 to take on a relaxed conformation (Figure 3). This [http://www.jbc.org/content/289/36/25031/F4.expansion.html alteration of Cys209] allows movement of the helix and causes disruption of the hydrogen bonds within the catalytic triad, ultimately inactivating Ag85C.<ref name="Favrot"/>
These initial findings suggest that ebselen-like mutants characterized by alterations in Cys209 may serve as potential drug targets for ''M. tuberculosis''. Because any modification or mutation of Cys209 in Ag85C leads to either a dramatic decrease or complete loss of enzymatic activity, research suggests there is a low probability of ''M. tuberculosis'' developing resistance to a drug modifying the Cys209. The structures and results of the following mutations and modifications support a strategy for inhibiting the Ag85 complex as a whole with mechanism-based inhibitors that first react with Ser124 to promote the relaxation of helix α-9 and expose Cys209 and then react with Cys209 side chain thiol to <scene name='69/694218/Ebselen/2'>covalently modify this conserved residue</scene>. Such a bifunctional inhibitor would offer specificity while minimizing the probability of selecting for drug resistant mutants.<ref name="Favrot"/>
These initial findings suggest that ebselen-like mutants characterized by alterations in Cys209 may serve as potential drug targets for ''M. tuberculosis''. Because any modification or mutation of Cys209 in Ag85C leads to either a dramatic decrease or complete loss of enzymatic activity, research suggests there is a low probability of ''M. tuberculosis'' developing resistance to a drug modifying the Cys209. The structures and results of the following mutations and modifications support a strategy for inhibiting the Ag85 complex as a whole with mechanism-based inhibitors that first react with Ser124 to promote the relaxation of helix α-9 and expose Cys209 and then react with Cys209 side chain thiol to <scene name='69/694218/Ebselen/2'>covalently modify this conserved residue</scene>. Such a bifunctional inhibitor would offer specificity while minimizing the probability of selecting for drug resistant mutants.<ref name="Favrot"/>

Revision as of 20:53, 26 April 2015

Ag85C of Mycobacterium tuberculosis

Caption for this structure

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References

  1. Online Mendelian Inheritance in Man (OMIM). Mycobacterium tuberculosis, susceptibility to. [Internet]. Baltimore (MD): Johns Hopkins University; 2014 Nov 12 [cited 2015 March 16]. Available from http://www.omim.org/entry/607948
  2. Cite error: Invalid <ref> tag; no text was provided for refs named Favrot
  3. 3.0 3.1 Gobec S, Plantan I, Mravljak J, Wilson RA, Besra GS, Kikelj D. Phosphonate inhibitors of antigen 85C, a crucial enzyme involved in the biosynthesis of the Mycobacterium tuberculosis cell wall. Bioorg Med Chem Lett. 2004 Jul 5;14(13):3559-62. PMID:15177473 doi:http://dx.doi.org/10.1016/j.bmcl.2004.04.052
  4. Belisle JT, Vissa VD, Sievert T, Takayama K, Brennan PJ, Besra GS. Role of the major antigen of Mycobacterium tuberculosis in cell wall biogenesis. Science. 1997 May 30;276(5317):1420-2. PMID:9162010
  5. Research Collaboratory for Structural Bioinformatics Protein Database (RCSB PDB) Diacylglycerol acyltransferase/mycolyltransferase Ag85C - P9WQN9 (A85C_MYCTU). [Internet] San Diego (CA): University of San Diego; 2014 [cited 2015 March 16]. DOI:10.2210/pdbp9wqn9/pdb
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