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1.
J Proteome Res ; 16(2): 763-772, 2017 02 03.
Artigo em Inglês | MEDLINE | ID: mdl-28152596

RESUMO

The occurrence of contryphans, a class of single-disulfide-bond-containing peptides, is demonstrated by the analysis of the venom of nine species of cone snails. Ten full gene sequences and two partial gene sequences coding for contryphan precursor proteins have been identified by next-generation sequencing and compared with available sequences. The occurrence of mature peptides in isolated venom has been demonstrated by LC-ESI-MS/MS analysis. De novo sequencing of reduced, alkylated contryphans from C. frigidus and C. araneosus provides evidence of sequence variation and post-translational modification, notably gamma carboxylation of glutamic acid. The characterization of Fr965 (C. frigidus) provides a rare example of a sequence lacking Pro at position 5 in the disulfide loop. The widespread occurrence of contryphan genes and mature peptides in the venom of diverse cone snails is suggestive of their potential biological significance.


Assuntos
Conotoxinas/genética , Peptídeos Cíclicos/genética , Transcriptoma/genética , Peçonhas/genética , Sequência de Aminoácidos/genética , Animais , Conotoxinas/química , Caramujo Conus/química , Caramujo Conus/genética , Espectrometria de Massas , Peptídeos/química , Peptídeos/genética , Processamento de Proteína Pós-Traducional , Peçonhas/química
2.
Peptides ; 156: 170845, 2022 10.
Artigo em Inglês | MEDLINE | ID: mdl-35902005

RESUMO

Distinct differences have been observed between L-tryptophan and D-tryptophan containing contryphan-Ar1131 in oxidative folding, trypsin binding, and photostabilization activity on avobenzone. [W5] contryphan-Ar1131 and [w5] contryphan-Ar1131 were chemically synthesized and characterized using RP-HPLC and mass spectrometry. Structural differences due to the change of configuration of tryptophan were evident from the optimized structures of contryphan-Ar1131 using density functional theory (DFT). The comparison of early events of oxidative folding has revealed the role of D-tryptophan in accelerating the formation of a disulfide bond. The optimized structures of the reduced form of peptides revealed the occurrence of aromatic-aromatic and aromatic-proline interactions in [w5] contryphan-Ar1131 which may be critical in aiding the oxidative folding reaction. The presence of the Lys6-Pro7 peptide bond indicates that contryphan-Ar1131 is resistant but may bind to trypsin allowing to assign the binding affinity of peptides to the protein surface. Competitive binding studies and molecular docking along with molecular dynamic (MD) simulations have revealed that [w5] contryphan-Ar1131 has more affinity for the active site of trypsin. Given tryptophan is a photostabilizer of FDA-approved chemical UV-A filter avobenzone, the report has compared the photostabilization activity of [W5]/ [w5] contryphan-Ar1131 on avobenzone under natural sunlight. [w5] contryphan-Ar1131 has better photostabilization activity than that of [W5] contryphan-Ar1131 and also individual D-tryptophan and L-tryptophan amino acids. These biochemical studies have highlighted the significance of D-tryptophan in contryphan-Ar1131 and its photostabilization activity on avobenzone may find applications in cosmetics.


Assuntos
Caramujo Conus , Animais , Caramujo Conus/metabolismo , Dissulfetos , Simulação de Acoplamento Molecular , Venenos de Moluscos/química , Venenos de Moluscos/metabolismo , Estresse Oxidativo , Peptídeos/química , Peptídeos Cíclicos , Prolina , Propiofenonas , Tripsina , Triptofano/química
3.
Protein Pept Lett ; 29(1): 71-79, 2022.
Artigo em Inglês | MEDLINE | ID: mdl-34961439

RESUMO

BACKGROUND & OBJECTIVE: Contryphan-Bt is a D-tryptophan-containing disulfide-constrained decapeptide recently isolated from the venom of Conus betulinus. The molecular targets of contryphans are controversial, and the identification of its interacting proteins may be of great importance. METHODS: His-tag pull-down assays were performed to investigate intracellular binding proteins of contryphan-Bt from rat brain lysate. Bt-Acp-[His]6, a contryphan-Bt derivative containing hexahistidine tag, was synthesized and used as the bait. As a control, Acp-[His]6 was used to exclude nonspecific bindings. RESULTS: Glutamine synthetase was identified as a potential contryphan-Bt binding protein by pull-- down assays and subsequent LC-MS/MS. The binding of contryphan-Bt to glutamine synthetase was confirmed and determined using microscale thermophoresis, with a Kd of 74.02 ± 2.8 µM. The binding did not affect glutamine synthetase activity, suggesting that the interaction site was distinct from the catalytic center. CONCLUSION: Glutamine synthetase was identified as a novel contryphan-Bt binding protein. This is the first report in which the conopeptide binds to an intracellular protein.


Assuntos
Glutamato-Amônia Ligase , Venenos de Moluscos , Sequência de Aminoácidos , Animais , Proteínas de Transporte , Cromatografia Líquida , Glutamina , Venenos de Moluscos/química , Peptídeos Cíclicos , Ratos , Espectrometria de Massas em Tandem
4.
Toxicon ; 135: 17-23, 2017 Sep 01.
Artigo em Inglês | MEDLINE | ID: mdl-28554718

RESUMO

A new member of the contryphans family was isolated from the venom of Conus betilinus, a vermivorous species distributed in the South China Sea. Its sequence, ZSGCO(D-W)KPWC-NH2 (Z, pyroglutamic acid), was established by a combination of de novo MS/MS sequencing and venom-duct transcriptome sequencing. The occurrence of D-Trp6 was confirmed by chemical synthesis and HPLC behavior comparison. Like known contryphans, contryphan-Bt produces the "stiff-tail" syndrome in mice and contains one disulfide bond, a hydroxyproline, a D-tryptophan, and an amidated C-terminus. However, contryphan-Bt differs from previously identified contryphans by a pyroglutamic acid at the N terminus. CD spectrum reveals that contryphan-Bt possess ß-turn in solution.


Assuntos
Caramujo Conus/química , Peptídeos Cíclicos/química , Peptídeos Cíclicos/isolamento & purificação , Animais , Camundongos , Venenos de Moluscos/química , Peptídeos Cíclicos/toxicidade , Estrutura Secundária de Proteína , Ácido Pirrolidonocarboxílico/química , Transcriptoma
5.
Toxicon ; 129: 113-122, 2017 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-28216409

RESUMO

In natural proteins and peptides, amino acids exist almost invariably as l-isomers. There are, however, several examples of naturally-occurring peptides containing d-amino acids. In this study we investigated the role of a naturally-occurring d-amino acid in a small peptide identified in the transcriptome of a marine cone snail. This peptide belongs to a family of peptides known as contryphans, all of which contain a single d-amino acid residue. The solution structure of this peptide was solved by NMR, but further investigations with molecular dynamics simulations suggest that its solution behaviour may be more dynamic than suggested by the NMR ensemble. Functional tests in mice uncovered a novel bioactivity, a depressive phenotype that contrasts with the hyperactive phenotypes typically induced by contryphans. Trp3 is important for bioactivity, but this role is independent of the chirality at this position. The d-chirality of Trp3 in this peptide was found to be protective against enzymatic degradation. Analysis by NMR and molecular dynamics simulations indicated an interaction of Trp3 with lipid membranes, suggesting the possibility of a membrane-mediated mechanism of action for this peptide.


Assuntos
Aminoácidos/análise , Venenos de Moluscos/química , Peptídeos Cíclicos/química , Animais , Espectroscopia de Ressonância Magnética , Camundongos , Simulação de Dinâmica Molecular , Caramujos/química , Canais de Cátion TRPC/metabolismo , Transcriptoma
6.
Artigo em Inglês | MEDLINE | ID: mdl-27826319

RESUMO

During evolution, nature has embraced different strategies for species to survive. One strategy, applied by predators as diverse as snakes, scorpions, sea anemones and cone snails, is using venom to immobilize or kill a prey. This venom offers a unique and extensive source of chemical diversity as it is driven by the evolutionary pressure to improve prey capture and/or to protect their species. Cone snail venom is an example of the remarkable diversity in pharmacologically active small peptides that venoms can consist of. These venom peptides, called conopeptides, are classified into two main groups based on the number of cysteine residues, namely disulfide-rich and disulfide-poor conopeptides. Since disulfide-poor conotoxins are minor components of this venom cocktail, the number of identified peptides and the characterization of these peptides is far outclassed by its cysteine-rich equivalents. This review provides an overview of 12 families of disulfide-poor peptides identified to date as well as the state of affairs.

7.
J. venom. anim. toxins incl. trop. dis ; 22: 30, 2016. tab, graf, ilus
Artigo em Inglês | LILACS, VETINDEX | ID: biblio-954780

RESUMO

During evolution, nature has embraced different strategies for species to survive. One strategy, applied by predators as diverse as snakes, scorpions, sea anemones and cone snails, is using venom to immobilize or kill a prey. This venom offers a unique and extensive source of chemical diversity as it is driven by the evolutionary pressure to improve prey capture and/or to protect their species. Cone snail venom is an example of the remarkable diversity in pharmacologically active small peptides that venoms can consist of. These venom peptides, called conopeptides, are classified into two main groups based on the number of cysteine residues, namely disulfide-rich and disulfide-poor conopeptides. Since disulfide-poor conotoxins are minor components of this venom cocktail, the number of identified peptides and the characterization of these peptides is far outclassed by its cysteine-rich equivalents. This review provides an overview of 12 families of disulfide-poor peptides identified to date as well as the state of affairs.(AU)


Assuntos
Peptídeos , Caramujos , Conotoxinas , Venenos de Moluscos
8.
J. venom. anim. toxins incl. trop. dis ; 22: [1-15], 2016. ilus, tab
Artigo em Inglês | LILACS, VETINDEX | ID: biblio-1484662

RESUMO

During evolution, nature has embraced different strategies for species to survive. One strategy, applied by predators as diverse as snakes, scorpions, sea anemones and cone snails, is using venom to immobilize or kill a prey. This venom offers a unique and extensive source of chemical diversity as it is driven by the evolutionary pressure to improve prey capture and/or to protect their species. Cone snail venom is an example of the remarkable diversity in pharmacologically active small peptides that venoms can consist of. These venom peptides, called conopeptides, are classified into two main groups based on the number of cysteine residues, namely disulfide-rich and disulfide-poor conopeptides. Since disulfide-poor conotoxins are minor components of this venom cocktail, the number of identified peptides and the characterization of these peptides is far outclassed by its cysteine-rich equivalents. This review provides an overview of 12 families of disulfide-poor peptides identified to date as well as the state of affairs.


Assuntos
Animais , Dissulfetos/análise , Dissulfetos/classificação , Oligopeptídeos/análise , Oligopeptídeos/classificação , Oligopeptídeos/síntese química , Farmacologia/tendências
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