Tachyplesin: Difference between revisions

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[http://en.wikipedia.org/wiki/Nuclear_magnetic_resonance NMR] studies have shown that TP-I undergoes a conformational change in <scene name='67/671725/Tp_i_in_the_presence_of_lps/1'>presence of LPS, </scene><scene name='67/671725/Conformation_change/8'>making it more rigid and twisted than in the presence of water</scene><ref name=Kushibiki>PMID:24389234</ref>. Moreover docking model suggests the stabilized structure of TP-I in presence of LPS, which is gained by binding between N and C termini of TP-I to LPS. The conformational change of TP-I seems to be crucial for its antimicrobial activity, since rearrangement of TP-I structure makes it more amphiphilic to negatively charged membrane of bacteria and fungus.
[http://en.wikipedia.org/wiki/Nuclear_magnetic_resonance NMR] studies have shown that TP-I undergoes a conformational change in <scene name='67/671725/Tp_i_in_the_presence_of_lps/1'>presence of LPS, </scene><scene name='67/671725/Conformation_change/8'>making it more rigid and twisted than in the presence of water</scene><ref name=Kushibiki>PMID:24389234</ref>. Moreover docking model suggests the stabilized structure of TP-I in presence of LPS, which is gained by binding between N and C termini of TP-I to LPS. The conformational change of TP-I seems to be crucial for its antimicrobial activity, since rearrangement of TP-I structure makes it more amphiphilic to negatively charged membrane of bacteria and fungus.
   
   




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Of those 3 linear derivatives of TP-I, NMR structural investigation had shown TPA4 to be unstructured in solution. Also, TPA4 was inactive in terms of antimicrobial activity. In contrast, TPY4 and TPF4 adapts hairpin loop and also had antimicrobial properties, typical to TP-I. Therefore, the hairpin properties of the peptide seems to be important for recognition of lipopolysaccharides and its biological activities.
Of those 3 linear derivatives of TP-I, NMR structural investigation had shown TPA4 to be unstructured in solution. Also, TPA4 was inactive in terms of antimicrobial activity. In contrast, TPY4 and TPF4 adapts hairpin loop and also had antimicrobial properties, typical to TP-I. Therefore, the hairpin properties of the peptide seems to be important for recognition of lipopolysaccharides and its biological activities.


Besides replacement of cysteines, deletions was performed in TP-I which yielded <scene name='67/671725/Cdt/1'>Cysteine Deleted Tachyplesin</scene> (CDT).  
Besides replacement of cysteines, deletions was also performed in TP-I which yielded <scene name='67/671725/Cdt/1'>Cysteine Deleted Tachyplesin</scene> (CDT). Thus, CTD (NH₂-Lys-Trp-Phe-Arg-Val-Tyr-Arg-Gly-Ile-Tyr-Arg-Arg-Arg-CONH₂) did not have disulphide linkage. But it was found to have broad spectrum of bactericidal activity.Specifically, CDT has been demonstrated to markedly inhibit the growth of Gram negative and Gram positive bacterial strains akin to TP-I, even with lower minimum inhibitory concentration (MIC) values against [http://en.wikipedia.org/wiki/Escherichia_coli <i>Escherichia coli</i>] and [http://en.wikipedia.org/wiki/Listeria_monocytogenes <i>Listeria monocytogenes</i>].
CTD is a linear mutant lacking the cysteines and therefore lacking the disulfide bonds (NH₂-Lys-Trp-Phe-Arg-Val-Tyr-Arg-Gly-Ile-Tyr-Arg-Arg-Arg-CONH₂). It contains a broad spectrum of bactericidal activity with a reduced hemolytic property that stems from selective interactions with the negatively charged lipids including LPS.
 
CDT has been demonstrated to markedly inhibit the growth of Gram negative and Gram positive bacterial strains akin to TP-I. But, minimum inhibitory concentration (MIC) values for CDT were found to be lower against [http://en.wikipedia.org/wiki/Escherichia_coli <i>Escherichia coli</i>] and [http://en.wikipedia.org/wiki/Listeria_monocytogenes <i>Listeria monocytogenes</i>] in comparison to the wild type TP-I peptide.


<b><u> CDT Structure </u></b>
<b><u> CDT Structure </u></b>

Revision as of 10:08, 24 January 2015

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References