Tachyplesin

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<StructureSection load='1MA2' size='340' side='right' caption='1MA2' scene='67/671725/First_scene/1'>
<StructureSection load='1MA2' size='340' side='right' caption='1MA2' scene='67/671725/First_scene/1'>
Tachyplesin I (TP-I) is an [http://en.wikipedia.org/wiki/Antimicrobial_peptides antimicrobial polypeptide] originally detected in the leukocytes of Japanese [http://en.wikipedia.org/wiki/Horseshoe_crab Horse Shoe Crab]. It has also been reported to inhibit the growth of [http://en.wikipedia.org/wiki/Gram-positive_bacteria gram positive bacteria], [http://en.wikipedia.org/wiki/Fungus fungui] and [http://en.wikipedia.org/wiki/Virus viruses] suggesting its antimicrobial property.
Tachyplesin I (TP-I) is an [http://en.wikipedia.org/wiki/Antimicrobial_peptides antimicrobial polypeptide] originally detected in the leukocytes of Japanese [http://en.wikipedia.org/wiki/Horseshoe_crab Horse Shoe Crab]. It has also been reported to inhibit the growth of [http://en.wikipedia.org/wiki/Gram-positive_bacteria gram positive bacteria], [http://en.wikipedia.org/wiki/Fungus fungui] and [http://en.wikipedia.org/wiki/Virus viruses] suggesting its antimicrobial property.
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The antimicrobial activity of the peptide is related to the composition of the pathogen membrane and ability of the peptide to permeabilize the cell membranes. Bacteria and fungi have negatively charged membranes, and the interaction of <scene name='67/671725/Cationic_peptide_tpi/1'> TP-I </scene> is mediated in large part by electrostatic interactions<ref name=Laederach>PMID:12369825</ref> (you can see the {{Template:ColorKey_Hydrophobic}} and {{Template:ColorKey_Polar}} amino acids).
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The antimicrobial activity of the peptide is related to the composition of the pathogen membrane and ability of the peptide to permeabilize the cell membranes. Bacteria and fungi have negatively charged membranes, and the interaction of <scene name='67/671725/Cationic_peptide_tpi/1'> TP-I </scene> is mediated in large part by electrostatic interactions<ref name=Laederach>PMID:12369825</ref> (see the {{Template:ColorKey_Hydrophobic}} and {{Template:ColorKey_Polar}} amino acids).
Specifically, TP-I shows high affinity for [http://en.wikipedia.org/wiki/Lipopolysaccharide lipopolysaccharides (LPS)] of [http://en.wikipedia.org/wiki/Gram-negative_bacteria gram-negative bacteria], thus neutralizing its effects.
Specifically, TP-I shows high affinity for [http://en.wikipedia.org/wiki/Lipopolysaccharide lipopolysaccharides (LPS)] of [http://en.wikipedia.org/wiki/Gram-negative_bacteria gram-negative bacteria], thus neutralizing its effects.
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The sequence adapts antiparallel β-sheet (hairpin) conformation in solution stabilized by two cross-strand <scene name='67/671725/Disulfide_bonds/1'> disulfide bonds </scene> between Cys³-Cys¹⁶ and Cys⁷-Cys¹²<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 its [http://en.wikipedia.org/wiki/Protein_primary_structure C-terminus is amidated].<ref name=Laederach>PMID:12369825</ref><ref name=Kushibiki>PMID:24389234</ref>. Besides, there exists H-bond and aromatic ring stacking interactions which helps stabilizing the hairpin loop structure of the peptide.
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The sequence adapts antiparallel β-sheet (hairpin) conformation in solution stabilized by two cross-strand <scene name='67/671725/Disulfide_bonds/1'> disulfide bonds </scene> between Cys³-Cys¹⁶ and Cys⁷-Cys¹²<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 its [http://en.wikipedia.org/wiki/Protein_primary_structure C-terminus is amidated].<ref name=Laederach>PMID:12369825</ref><ref name=Kushibiki>PMID:24389234</ref>. Besides, there exists H-bond and aromatic ring stacking interactions which helps stabilizing the hairpin loop structure of the peptide.
The β-hairpin structure is well characterized by a β-turn for the centrally located residues Tyr-Arg-Gly-Ile.<ref name=Saravanan>PMID:22464970</ref>
The β-hairpin structure is well characterized by a β-turn for the centrally located residues Tyr-Arg-Gly-Ile.<ref name=Saravanan>PMID:22464970</ref>

Revision as of 11:12, 31 December 2014

Introduction

1MA2

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References

  1. 1.0 1.1 1.2 Laederach A, Andreotti AH, Fulton DB. Solution and micelle-bound structures of tachyplesin I and its active aromatic linear derivatives. Biochemistry. 2002 Oct 15;41(41):12359-68. PMID:12369825
  2. 2.0 2.1 Chen, Yixin, et al. "RGD-Tachyplesin inhibits tumor growth." Cancer research 61.6 (2001): 2434-2438.‏
  3. 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
  4. Kushibiki T, Kamiya M, Aizawa T, Kumaki Y, Kikukawa T, Mizuguchi M, Demura M, Kawabata SI, Kawano K. Interaction between tachyplesin I, an antimicrobial peptide derived from horseshoe crab, and lipopolysaccharide. Biochim Biophys Acta. 2014 Jan 2;1844(3):527-534. doi:, 10.1016/j.bbapap.2013.12.017. PMID:24389234 doi:http://dx.doi.org/10.1016/j.bbapap.2013.12.017
  5. 5.0 5.1 Saravanan R, Mohanram H, Joshi M, Domadia PN, Torres J, Ruedl C, Bhattacharjya S. Structure, activity and interactions of the cysteine deleted analog of tachyplesin-1 with lipopolysaccharide micelle: Mechanistic insights into outer-membrane permeabilization and endotoxin neutralization. Biochim Biophys Acta. 2012 Mar 23;1818(7):1613-1624. PMID:22464970 doi:10.1016/j.bbamem.2012.03.015
  6. Yonezawa A, Kuwahara J, Fujii N, Sugiura Y. Binding of tachyplesin I to DNA revealed by footprinting analysis: significant contribution of secondary structure to DNA binding and implication for biological action. Biochemistry. 1992 Mar 24;31(11):2998-3004. PMID:1372516
  7. Lipsky A, Cohen A, Ion A, Yedidia I. Genetic transformation of Ornithogalum via particle bombardment and generation of Pectobacterium carotovorum-resistant plants. Plant Sci. 2014 Nov;228:150-8. doi: 10.1016/j.plantsci.2014.02.002. Epub 2014 Feb, 12. PMID:25438795 doi:http://dx.doi.org/10.1016/j.plantsci.2014.02.002
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