Repository logo
  • English
  • Deutsch
  • Español
  • Français
  • Log In
    New user? Click here to register.Have you forgotten your password?

  • English
  • Deutsch
  • Español
  • Français
  • Log In
    New user? Click here to register.Have you forgotten your password?
Repository logo
  • Communities & Collections
  • Research Outputs
  • Fundings & Projects
  • Researchers
  • Statistics
  1. Home
  2. Current Research Information System UV
  3. Publicaciones
  4. Spider Toxin Snx-482 Gating Modifier Spontaneously Partitions In The Membrane Guided By Electrostatic Interactions
 
  • Details
Options

Spider Toxin Snx-482 Gating Modifier Spontaneously Partitions In The Membrane Guided By Electrostatic Interactions

Journal
Membranes
Date Issued
2022-06-06
Author(s)
Guido Mellado
Nicolas Espinoza
Jose Antonio Garate
Neely, Alan  
Facultad de Ciencias  
DOI
10.3390/membranes12060595
WoS ID
WOS:000816544400001
Abstract
Spider toxin SNX-482 is a cysteine-rich peptide that interferes with calcium channel activity by binding to voltage-sensing domains of the CaV2.3 subtype. Two mechanisms dominate the binding process of cysteine-rich peptides: direct binding from the aqueous phase or through lateral diffusion from the membrane, the so-called reduction in dimensionality mechanism. In this work, via coarse-grained and atomistic molecular dynamics simulations, we have systematically studied the spontaneous partitioning of SNX-482 with membranes of different anionic compositions and explored via diffusional analysis both binding mechanisms. Our simulations revealed a conserved protein patch that inserts in the membrane, a preference for binding towards partially negatively charged membranes, and that electrostatics guides membrane binding by incrementing and aligning the molecular dipole. Finally, diffusivity calculations showed that the toxin diffusion along the membrane plane is an order of magnitude slower than the aqueous phase suggesting that the critical factor in determining the SNX-482-CaV2.3 binding mechanism is the affinity between the membrane and SNX-482.
Subjects

Chemistry, Physical

Chemical Engineering

Engineering, Chemical...

Filtration And Separa...

Materials Science, Mu...

Polymer Science

Process Chemistry And...

OCDE Subjects

Natural Sciences::Phy...

Quartile (Date Issued)
Q1
License
acceso abierto
Open Science Path
https://creativecommons.org/licenses/by/4.0/

  • Cookie settings
  • Privacy policy
  • End User Agreement
  • Send Feedback

Hosting & Support by

Built with DSpace-CRIS software - Extension maintained and optimized by 4Science