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Japonicin-1

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Japonicin-1 is an antibacterial peptide isolated from Rana japonica (Japanese brown frog). It has activity against Gram-negative bacteria Escherichia coli and Gram-positive bacteria Staphylococcus aureus.

Category
Functional Peptides
Catalog number
BAT-012499
Molecular Formula
C82H118N16O16S2
Molecular Weight
1648
IUPAC Name
(2R)-2-[[(2S,3R)-2-[[(2S)-6-amino-2-[[(2S)-2-[[(2S,3S)-2-[[(2S)-6-amino-2-[[(2R)-2-[[(2S)-2-[[(2S)-2-[[2-[[(2S,3S)-2-[[(2S)-1-[(2S)-2-[[(2S)-2-amino-3-phenylpropanoyl]amino]-3-phenylpropanoyl]pyrrolidine-2-carbonyl]amino]-3-methylpentanoyl]amino]acetyl]amino]-3-methylbutanoyl]amino]-3-phenylpropanoyl]amino]-3-sulfanylpropanoyl]amino]hexanoyl]amino]-3-methylpentanoyl]amino]-3-phenylpropanoyl]amino]hexanoyl]amino]-3-hydroxybutanoyl]amino]-3-sulfanylpropanoic acid
Synonyms
Phe-Phe-Pro-Ile-Gly-Val-Phe-Cys-Lys-Ile-Phe-Lys-Thr-Cys
Purity
95.4%
Sequence
FFPIGVFC(1)KIFKTC(1)
Storage
Store at -20°C
InChI
InChI=1S/C82H120N16O16S2/c1-8-49(5)67(96-76(107)64-37-26-40-98(64)81(112)61(44-55-33-20-13-21-34-55)91-70(101)56(85)41-52-27-14-10-15-28-52)77(108)86-45-65(100)94-66(48(3)4)78(109)89-60(43-54-31-18-12-19-32-54)74(105)92-62(46-115)75(106)88-57(35-22-24-38-83)71(102)95-68(50(6)9-2)79(110)90-59(42-53-29-16-11-17-30-53)73(104)87-58(36-23-25-39-84)72(103)97-69(51(7)99)80(111)93-63(47-116)82(113)114/h10-21,27-34,48-51,56-64,66-69,99,115-116H,8-9,22-26,35-47,83-85H2,1-7H3,(H,86,108)(H,87,104)(H,88,106)(H,89,109)(H,90,110)(H,91,101)(H,92,105)(H,93,111)(H,94,100)(H,95,102)(H,96,107)(H,97,103)(H,113,114)/t49-,50-,51+,56-,57-,58-,59-,60-,61-,62-,63-,64-,66-,67-,68-,69-/m0/s1
InChI Key
VUDYVLHLGOPDIH-ZTNZPEIASA-N
Canonical SMILES
CCC(C)C(C(=O)NCC(=O)NC(C(C)C)C(=O)NC(CC1=CC=CC=C1)C(=O)NC(CS)C(=O)NC(CCCCN)C(=O)NC(C(C)CC)C(=O)NC(CC2=CC=CC=C2)C(=O)NC(CCCCN)C(=O)NC(C(C)O)C(=O)NC(CS)C(=O)O)NC(=O)C3CCCN3C(=O)C(CC4=CC=CC=C4)NC(=O)C(CC5=CC=CC=C5)N
1. Reflections on a systematic nomenclature for antimicrobial peptides from the skins of frogs of the family Ranidae
J Michael Conlon Peptides. 2008 Oct;29(10):1815-9. doi: 10.1016/j.peptides.2008.05.029. Epub 2008 Jun 8.
Frogs belonging to the extensive family Ranidae represent a valuable source of antimicrobial peptides with therapeutic potential but there is currently no consistent system of nomenclature to describe these peptides. Terminology based solely on species name does not reflect the evolutionary relationships existing between peptides encoded by orthologous and paralogous genes. On the basis of limited structural similarity, at least 14 well-established peptide families have been identified (brevinin-1, brevinin-2, esculentin-1, esculentin-2, japonicin-1, japonicin-2, nigrocin-2, palustrin-1, palustrin-2, ranacyclin, ranalexin, ranatuerin-1, ranatuerin-2, temporin). It is proposed that terms that are synonymous with these names should no longer be used. Orthologous peptides from different species may be characterized by the initial letter of that species, set in upper case, with paralogs belonging to the same peptide family being assigned letters set in lower case, e.g. brevinin-1Pa, brevinin-1Pb, etc. When two species begin with the same initial letter, two letters may be used, e.g. P for pipiens and PL for palustris. Species names and assignments to genera may be obtained from Amphibian Species of the World Electronic Database, accessible at http://research.amnh.org/herpetology/amphibia/index.php. American Museum of Natural History, New York, USA.
2. Antimicrobial peptides with atypical structural features from the skin of the Japanese brown frog Rana japonica
Todd Isaacson, AnaMaria Soto, Shawichi Iwamuro, Floyd C Knoop, J Michael Conlon Peptides. 2002 Mar;23(3):419-25. doi: 10.1016/s0196-9781(01)00634-9.
Japonicin-1 (FFPIGVFCKIFKTC) and japonicin-2 (FGLPMLSILPKALCILLKRKC), two peptides with differential growth-inhibitory activity against the Gram-negative bacterium, Escherichia coli and the Gram-positive bacterium Staphylococcus aureus, were isolated from an extract of the skin of the Japanese brown frog Rana japonica. Both peptides show little amino acid sequence similarity to previously characterized antimicrobial peptides isolated from the skins of Ranid frogs. Circular dichroism studies, however, demonstrate that japonicin-2 adopts an alpha-helical conformation in 50% trifluoroethanol in common with many other cationic antimicrobial peptides synthesized in amphibian skin. Peptides belonging to the brevinin-1, brevinin-2, and tigerinin families, previously identified in the skins of Asian Ranid frogs, were not detected but a temporin-related peptide (ILPLVGNLLNDLL.NH(2); temporin-1Ja), that atypically bears no net positive charge, was isolated from the extract. The minimum inhibitory concentrations (MICs) of the peptides against E. coli were japonicin-1, 30 microM; japonicin-2, 12 microM; and temporin-1Ja > 100 microM. The MICs against S. aureus were japonicin-1, > 100 microM; japonicin-2, 20 microM; and temporin-1Ja, > 100 microM.
3. Novel families of antimicrobial peptides with multiple functions from skin of Xizang plateau frog, Nanorana parkeri
Zekuan Lu, Lei Zhai, Hui Wang, Qiaolin Che, Duo Wang, Feifei Feng, Zongmao Zhao, Haining Yu Biochimie. 2010 May;92(5):475-81. doi: 10.1016/j.biochi.2010.01.025. Epub 2010 Feb 12.
Xizang plateau frog (Nanorana parkeri) captured in Lhasa, Tibet, China, solely lives in the subtropical plateau, where there is strong ultraviolet radiation and long duration of sunshine. Considering its harsh living environment, the frog's innate defense against microbes and environmental stress was investigated. In current study, three antimicrobial peptides (AMPs) were purified and characterized from the skin secretion of N. parkeri. The coding cDNA sequences were also cloned from the skin cDNA library of N. parkeri. By structural characterization, two peptides were identified belonging to Japonicin-1 family, and named as Japonicin-1Npa (FLLFPLMCKIQGKC) and Japonicin-1Npb (FVLPLVMCKILRKC). The third peptide isolated named Parkerin with a unique sequence of GWANTLKNVAGGLCKITGAA did not show similarity to any known amphibian AMPs. Multi-functions of three AMPs were examined (antioxidant, MCD, hemolytic etc). Their solution structures determined by CD and antimicrobial mechanisms investigated by SEM are very well consistent with their functional characters. Current result suggests that these novel multi-functional AMPs could play an important role in defending N. parkeri against environmental oxidative stress and pathogenic microorganisms, which may partially reveal the ecological adaptation of these plateau-living amphibians.
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