<div class="csl-bib-body">
<div class="csl-entry">Adegoke, V., Dongol, Y., Gonzalez, T., Song, A., Clark, R. J., Lewis, R. J., Conibear, A. C., & Rosengren, K. J. (2025). Proline hydroxylation and C-terminal amidation in µ-conotoxins increase structural stability and potency at sodium channels. <i>Australian Journal of Chemistry</i>, <i>78</i>(9), Article CH25071. https://doi.org/10.1071/CH25071</div>
</div>
-
dc.identifier.issn
0004-9425
-
dc.identifier.uri
http://hdl.handle.net/20.500.12708/223703
-
dc.description
Collection: 70th Birthday tribute to Professor David Craik
-
dc.description.abstract
Conotoxins are disulfide-rich peptides isolated from the venoms of marine cone snails. These natural products have inspired the development of several drug candidates and novel therapeutic leads. In addition to disulfide bonds, many conotoxins are highly modified with posttranslational modifications (PTMs) such as proline hydroxylation, C-terminal amidation and glycosylation, among others. These modifications can alter the charge, size and hydrophobicity of the conotoxin, influencing its interaction with target receptors and modulating its potency and selectivity. PTMs can also affect the folding kinetics and conformational stability of the peptide, which further affects its biological activity. Although conotoxins undergo a variety of PTMs, the functions of many of these modifications remain unclear. Here, we explored the structural and functional implications of PTMs in two representative conotoxins, PIIIA and TIIIA of the µ-pharmacological family. We synthesised a series of PIIIA and TIIIA peptides bearing native hydroxyproline and C-terminal amidation PTMs, along with their unmodified counterparts. Solid phase peptide synthesis and non-selective disulfide bond formation provided access to pure forms of the eight possible variants for in vitro comparison of their oxidative folding. Structural studies using nuclear magnetic resonance (NMR) spectroscopy, alongside electrophysiological and serum stability assays, were conducted to characterise the functional roles of the PTMs in these conotoxins. Our results suggest that, whereas C-terminal amidation has a crucial role in folding and structural integrity, proline hydroxylation significantly influences the in vitro oxidative folding, stability and biological activity of these conotoxin peptides.
en
dc.description.sponsorship
FWF - Österr. Wissenschaftsfonds
-
dc.language.iso
en
-
dc.publisher
CSIRO PUBLISHING
-
dc.relation.ispartof
Australian Journal of Chemistry
-
dc.rights.uri
https://creativecommons.org/licenses/by-nc/4.0/
-
dc.subject
C-terminal amidation
en
dc.subject
nuclear magnetic resonance spectroscopy
en
dc.subject
oxidative folding
en
dc.subject
posttranslational modification
en
dc.subject
proline hydroxylation
en
dc.subject
sodium channels
en
dc.subject
solid phase peptide synthesis
en
dc.subject
structure–function relationship
en
dc.subject
µ-conotoxins
en
dc.title
Proline hydroxylation and C-terminal amidation in µ-conotoxins increase structural stability and potency at sodium channels
en
dc.type
Article
en
dc.type
Artikel
de
dc.rights.license
Creative Commons Namensnennung - Nicht kommerziell 4.0 International
de
dc.rights.license
Creative Commons Attribution-NonCommercial 4.0 International