Título : DD04107-Derived neuronal exocytosis inhibitor peptides: Evidences for
synaptotagmin-1 as a putative target |
Autor : Butron, Daniel Zamora-Carreras, Héctor Devesa Giner, Isabel Treviño, Miguel A. Abian, Olga |
Editor : Elsevier |
Departamento: Departamentos de la UMH::Bioquímica y Biología Molecular |
Fecha de publicación: 2021-07 |
URI : https://hdl.handle.net/11000/35276 |
Resumen :
The analgesic peptide DD04107 (Pal-EEMQRR-NH2) and its acetylated analogue inhibit α-calcitonin gene-related
peptide (α-CGRP) exocytotic release from primary sensory neurons. Examining the crystal structure of the
SNARE-Synaptotagmin-1(Syt1) complex, we hypothesized that these peptides could inhibit neuronal exocytosis
by binding to Syt1, hampering at least partially its interaction with the SNARE complex. To address this hy
pothesis, we first interrogate the role of individual side-chains on the inhibition of α-CGRP release, finding that
E1, M3, Q4 and R6 residues were crucial for activity. CD and NMR conformational analysis showed that linear
peptides have tendency to adopt α-helical conformations, but the results with cyclic analogues indicated that this
secondary structure is not needed for activity. Isothermal titration calorimetry (ITC) measurements demonstrate
a direct interaction of some of these peptides with Syt1-C2B domain, but not with Syt7-C2B region, indicating
selectivity. As expected for a compound able to inhibit α-CGRP release, cyclic peptide derivative Pal-E-cyclo
[EMQK]R-NH2 showed potent in vivo analgesic activity, in a model of inflammatory pain. Molecular dynamics
simulations provided a model consistent with KD values for the interaction of peptides with Syt1-C2B domain,
and with their biological activity. Altogether, these results identify Syt1 as a potential new analgesic target
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Palabras clave/Materias: DD04107 Ala-scan Exocytosis Synaptotagmin-1 CGRP NMR Isothermal titration calorimetry Molecular modeling Analgesia |
Área de conocimiento : CDU: Ciencias puras y naturales: Biología: Bioquímica. Biología molecular. Biofísica |
Tipo de documento : info:eu-repo/semantics/article |
Derechos de acceso: info:eu-repo/semantics/openAccess Attribution-NonCommercial-NoDerivatives 4.0 Internacional |
DOI : https://doi.org/10.1016/j.bioorg.2021.105231 |
Aparece en las colecciones: Artículos Bioquímica y Biología Molecular
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