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Recognition of lysine-rich peptide ligands by murine cortactin SH3 domain: CD, ITC, and NMR studies.

Publication ,  Journal Article
Rubini, C; Ruzza, P; Spaller, MR; Siligardi, G; Hussain, R; Udugamasooriya, DG; Bellanda, M; Mammi, S; Borgogno, A; Calderan, A; Cesaro, L ...
Published in: Biopolymers
January 2010

Cortactin is a ubiquitous actin-binding protein that regulates various aspects of cell dynamics and is implicated in the pathogenesis of human neoplasia. The sequence of cortactin contains a number of signaling motifs and an SH3 domain at the C-terminus, which mediates the interaction of the protein with several partners, including Shank2. A recombinant protein, comprising the murine cortactin SH3 domain fused to GST (GST-SH3(m-cort)), was prepared and used to assess the domain-binding affinity of potential peptide-ligands reproducing the proline-rich regions of human HPK1 and Shank2 proteins. The key residues involved in the SH3(m-cort) domain recognition were identified by three different approaches: non-immobilized ligand interaction assay by circular dichroism, isothermal titration calorimetry, and nuclear magnetic resonance. Our results show that the classical PxxPxK class II binding motif is not sufficient to mediate the interaction with GST-SH3(m-cort), an event that depends on the presence of additional basic residues located at either the N- or the C-terminus of the PxxPxK motif. Especially effective in promoting the peptide binding is a Lys residue at the -5 position, a determinant present in both P2 (HPK1 394-403) and S1 (Shank2 1168-1189) peptides. GST-SH3(m-cort) exhibits the highest affinity toward peptide S1, which contains additional Lys residues at the -3, -5, and -7 positions, indicating that the optimal consensus motif may be KPPxPxKxKxK. These results are supported by the in silico models of SH3(m-cort) complexed with P2 or S1, which highlight the domain residues that interact with the recognition determinants of the peptide-ligand and cooperate in binding stabilization.

Duke Scholars

Published In

Biopolymers

DOI

EISSN

1097-0282

ISSN

0006-3525

Publication Date

January 2010

Volume

94

Issue

3

Start / End Page

298 / 306

Related Subject Headings

  • src Homology Domains
  • Sequence Alignment
  • Protein Binding
  • Peptides
  • Nuclear Magnetic Resonance, Biomolecular
  • Molecular Sequence Data
  • Models, Molecular
  • Mice
  • Lysine
  • Ligands
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Rubini, C., Ruzza, P., Spaller, M. R., Siligardi, G., Hussain, R., Udugamasooriya, D. G., … Donella-Deana, A. (2010). Recognition of lysine-rich peptide ligands by murine cortactin SH3 domain: CD, ITC, and NMR studies. Biopolymers, 94(3), 298–306. https://doi.org/10.1002/bip.21350
Rubini, Chiara, Paolo Ruzza, Mark R. Spaller, Giuliano Siligardi, Rohanah Hussain, D Gomika Udugamasooriya, Massimo Bellanda, et al. “Recognition of lysine-rich peptide ligands by murine cortactin SH3 domain: CD, ITC, and NMR studies.Biopolymers 94, no. 3 (January 2010): 298–306. https://doi.org/10.1002/bip.21350.
Rubini C, Ruzza P, Spaller MR, Siligardi G, Hussain R, Udugamasooriya DG, et al. Recognition of lysine-rich peptide ligands by murine cortactin SH3 domain: CD, ITC, and NMR studies. Biopolymers. 2010 Jan;94(3):298–306.
Rubini, Chiara, et al. “Recognition of lysine-rich peptide ligands by murine cortactin SH3 domain: CD, ITC, and NMR studies.Biopolymers, vol. 94, no. 3, Jan. 2010, pp. 298–306. Epmc, doi:10.1002/bip.21350.
Rubini C, Ruzza P, Spaller MR, Siligardi G, Hussain R, Udugamasooriya DG, Bellanda M, Mammi S, Borgogno A, Calderan A, Cesaro L, Brunati AM, Donella-Deana A. Recognition of lysine-rich peptide ligands by murine cortactin SH3 domain: CD, ITC, and NMR studies. Biopolymers. 2010 Jan;94(3):298–306.
Journal cover image

Published In

Biopolymers

DOI

EISSN

1097-0282

ISSN

0006-3525

Publication Date

January 2010

Volume

94

Issue

3

Start / End Page

298 / 306

Related Subject Headings

  • src Homology Domains
  • Sequence Alignment
  • Protein Binding
  • Peptides
  • Nuclear Magnetic Resonance, Biomolecular
  • Molecular Sequence Data
  • Models, Molecular
  • Mice
  • Lysine
  • Ligands