Tachyplesin: Difference between revisions
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The sequence adapts an antiparallel β-sheet (hairpin) conformation in solution, with a <scene name='67/671725/Beta_turn_tp-1/2'>β-turn</scene> for the centrally located residues <scene name='67/671725/Tyrargglyile/3'>Tyr-Arg-Gly-Ile</scene>, stabilized by two cross-strand <scene name='67/671725/Disulfide_bonds/4'> disulfide bonds </scene> between Cys³-Cys¹⁶ and Cys⁷-Cys¹²<ref name=Saravanan>PMID:22464970</ref><ref name=Nakamura>Nakamura, Takanori, et al. "Tachyplesin, a class of antimicrobial peptide from the hemocytes of the horseshoe crab (''Tachypleus tridentatus''). Isolation and chemical structure." Journal of Biological Chemistry 263.32 (1988): 16709-16713</ref>, and [http://en.wikipedia.org/wiki/Protein_primary_structure C-terminus amidation]. In addition there are H-bonds and aromatic rings stacking interactions which helps stabilize the hairpin loop structure of the peptide. | The sequence adapts an antiparallel β-sheet (hairpin) conformation in solution, with a <scene name='67/671725/Beta_turn_tp-1/2'>β-turn</scene> for the centrally located residues <scene name='67/671725/Tyrargglyile/3'>Tyr-Arg-Gly-Ile</scene>, stabilized by two cross-strand <scene name='67/671725/Disulfide_bonds/4'> disulfide bonds </scene> between Cys³-Cys¹⁶ and Cys⁷-Cys¹²<ref name=Saravanan>PMID:22464970</ref><ref name=Nakamura>Nakamura, Takanori, et al. "Tachyplesin, a class of antimicrobial peptide from the hemocytes of the horseshoe crab (''Tachypleus tridentatus''). Isolation and chemical structure." Journal of Biological Chemistry 263.32 (1988): 16709-16713</ref>, and [http://en.wikipedia.org/wiki/Protein_primary_structure C-terminus amidation]. In addition there are H-bonds and aromatic rings stacking interactions which helps stabilize the hairpin loop structure of the peptide. | ||
[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>. | [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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== Mode of action == | == Mode of action == | ||
TP-I has high affinity to negatively charged cell membrane containing LPS and also has ability to permeabilize the cell membrane of pathogens. Docking model suggests strong interaction between cationic residues of TP-I with phosphate group and saccharides of LPS. Also, interaction between hydrophobic residues of TP-I with acyl chains of LPS was observed which strengthens the TP-I/LPS interaction<ref name=Hong>Hong, Jun, et al. "Mechanism of Tachyplesin I injury to bacterial membranes and intracellular enzymes, determined by laser confocal scanning microscopy and flow cytometry." Microbiological research (2014)</ref>. Ultimately, binding of TP-I/LPS neutralizes LPS, which is widely considered as endotoxin, and disrupts membrane function. | TP-I has high affinity to negatively charged cell membrane containing LPS and also has ability to permeabilize the cell membrane of pathogens. Docking model suggests strong interaction between cationic residues of TP-I with phosphate group and saccharides of LPS, where <scene name='67/671725/Conformation_change/9'> Arg 5 and Arg 14</scene>, acts as hinges <ref name=Laederach>PMID:12369825</ref>. Also, interaction between hydrophobic residues of TP-I with acyl chains of LPS was observed which strengthens the TP-I/LPS interaction<ref name=Hong>Hong, Jun, et al. "Mechanism of Tachyplesin I injury to bacterial membranes and intracellular enzymes, determined by laser confocal scanning microscopy and flow cytometry." Microbiological research (2014)</ref>. Ultimately, binding of TP-I/LPS neutralizes LPS, which is widely considered as endotoxin, and disrupts membrane function. | ||
In addition to LPS binding, footpriting analysis has revealed the binding of TP-I to DNA by interacting specifically in minor groove of DNA duplex. The interaction between TP-I and DNA is contributed by secondary structure of the peptide which contains an antiparallel beta-sheet constrained by two disulfide bridges and connected by β-turn <ref name=Yonezawa>PMID:1372516</ref>. TP-I on binding to DNA and RNA, inhibits the synthesis of macromolecules. | In addition to LPS binding, footpriting analysis has revealed the binding of TP-I to DNA by interacting specifically in minor groove of DNA duplex. The interaction between TP-I and DNA is contributed by secondary structure of the peptide which contains an antiparallel beta-sheet constrained by two disulfide bridges and connected by β-turn <ref name=Yonezawa>PMID:1372516</ref>. TP-I on binding to DNA and RNA, inhibits the synthesis of macromolecules. | ||
Revision as of 09:55, 24 January 2015
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References
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Shulamit Idzikowski, Janak Raj Joshi, Michal Harel, Angel Herraez, Alexander Berchansky, Jaime Prilusky, Joel L. Sussman
