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1.
Biomedicines ; 8(6)2020 Jun 11.
Artigo em Inglês | MEDLINE | ID: mdl-32545167

RESUMO

NaV1.3 is a subtype of the voltage-gated sodium channel family. It has been implicated in the pathogenesis of neuropathic pain, although the contribution of this channel to neuronal excitability is not well understood. Tf2, a ß-scorpion toxin previously identified from the venom of Tityus fasciolatus, has been reported to selectively activate NaV1.3. Here, we describe the activity of synthetic Tf2 and assess its suitability as a pharmacological probe for NaV1.3. As described for the native toxin, synthetic Tf2 (1 µM) caused early channel opening, decreased the peak current, and shifted the voltage dependence of NaV1.3 activation in the hyperpolarizing direction by -11.3 mV, with no activity at NaV1.1, NaV1.2, and NaV1.4-NaV1.8. Additional activity was found at NaV1.9, tested using the hNav1.9_C4 chimera, where Tf2 (1 µM) shifted the voltage dependence of activation by -6.3 mV. In an attempt to convert Tf2 into an NaV1.3 inhibitor, we synthetized the analogue Tf2[S14R], a mutation previously described to remove the excitatory activity of related ß-scorpion toxins. Indeed, Tf2[S14R](10 µM) had reduced excitatory activity at NaV1.3, although it still caused a small -5.8 mV shift in the voltage dependence of activation. Intraplantar injection of Tf2 (1 µM) in mice caused spontaneous flinching and swelling, which was not reduced by the NaV1.1/1.3 inhibitor ICA-121431 nor in NaV1.9-/- mice, suggesting off-target activity. In addition, despite a loss of excitatory activity, intraplantar injection of Tf2[S14R](10 µM) still caused swelling, providing strong evidence that Tf2 has additional off-target activity at one or more non-neuronal targets. Therefore, due to activity at NaV1.9 and other yet to be identified target(s), the use of Tf2 as a selective pharmacological probe may be limited.

2.
Structure ; 27(2): 315-326.e7, 2019 02 05.
Artigo em Inglês | MEDLINE | ID: mdl-30554841

RESUMO

Disulfide-rich peptides (DRPs) play diverse physiological roles and have emerged as attractive sources of pharmacological tools and drug leads. Here we describe the 3D structure of a centipede venom peptide, U-SLPTX15-Sm2a, whose family defines a unique class of one of the most widespread DRP folds known, the cystine-stabilized α/ß fold (CSαß). This class, which we have named the two-disulfide CSαß fold (2ds-CSαß), contains only two internal disulfide bonds as opposed to at least three in all other confirmed CSαß peptides, and constitutes one of the major neurotoxic peptide families in centipede venoms. We show the 2ds-CSαß is widely distributed outside centipedes and is likely an ancient fold predating the split between prokaryotes and eukaryotes. Our results provide insights into the ancient evolutionary history of a widespread DRP fold and highlight the usefulness of 3D structures as evolutionary tools.


Assuntos
Artrópodes/metabolismo , Defensinas/química , Defensinas/metabolismo , Animais , Venenos de Artrópodes/química , Venenos de Artrópodes/metabolismo , Artrópodes/química , Células Cultivadas , Evolução Molecular , Humanos , Masculino , Camundongos , Modelos Moleculares , Família Multigênica , Filogenia , Estabilidade Proteica , Xenopus laevis
3.
Molecules ; 23(10)2018 Oct 22.
Artigo em Inglês | MEDLINE | ID: mdl-30360356

RESUMO

µ-Conotoxins are potent and highly specific peptide blockers of voltage-gated sodium channels. In this study, the solution structure of µ-conotoxin GIIIC was determined using 2D NMR spectroscopy and simulated annealing calculations. Despite high sequence similarity, GIIIC adopts a three-dimensional structure that differs from the previously observed conformation of µ-conotoxins GIIIA and GIIIB due to the presence of a bulky, non-polar leucine residue at position 18. The side chain of L18 is oriented towards the core of the molecule and consequently the N-terminus is re-modeled and located closer to L18. The functional characterization of GIIIC defines it as a canonical µ-conotoxin that displays substantial selectivity towards skeletal muscle sodium channels (NaV), albeit with ~2.5-fold lower potency than GIIIA. GIIIC exhibited a lower potency of inhibition of NaV1.4 channels, but the same NaV selectivity profile when compared to GIIIA. These observations suggest that single amino acid differences that significantly affect the structure of the peptide do in fact alter its functional properties. Our work highlights the importance of structural factors, beyond the disulfide pattern and electrostatic interactions, in the understanding of the functional properties of bioactive peptides. The latter thus needs to be considered when designing analogues for further applications.


Assuntos
Conotoxinas/química , Espectroscopia de Ressonância Magnética , Sequência de Aminoácidos , Conotoxinas/síntese química , Conotoxinas/farmacologia , Dissulfetos/química , Leucina/química , Modelos Moleculares , Peptídeos/síntese química , Peptídeos/química , Conformação Proteica , Domínios e Motivos de Interação entre Proteínas , Bloqueadores dos Canais de Sódio/síntese química , Bloqueadores dos Canais de Sódio/química , Bloqueadores dos Canais de Sódio/farmacologia , Canais de Sódio/química , Canais de Sódio/metabolismo , Relação Estrutura-Atividade
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