PTB (PhosphoTyrosine Binding) domains are protein domains that exert their function by binding phosphotyrosine residues on other proteins. They are commonly found in a variety of signaling proteins and are important for mediating protein-protein interactions in numerous cellular processes. PTB domains can also exhibit binding to unphosphorylated ligands, suggesting that they have additional binding specificities beyond phosphotyrosine recognition. Structural studies have reported that the PTB domain from FRS2 possesses this peculiar feature, allowing it to interact with both phosphorylated and unphosphorylated ligands, such as TrkB and FGFR1, through different topologies and orientations. In an effort to elucidate the dynamic and functional properties of these protein-protein interactions, we provide a complete characterization of the folding mechanism of the PTB domain of FRS2 and the binding process to peptides mimicking specific regions of TrkB and FGFR1. By analyzing the equilibrium and kinetics of PTB folding, we propose a mechanism implying the presence of an intermediate along the folding pathway. Kinetic binding experiments performed at different ionic strengths highlighted the electrostatic nature of the interaction with both peptides. The specific role of single amino acids in early and late events of binding was pinpointed by site-directed mutagenesis. These results are discussed in light of previous experimental works on these protein systems.

Characterization of the folding and binding properties of the PTB domain of FRS2 with phosphorylated and unphosphorylated ligands / Pennacchietti, Valeria; Pagano, Livia; Malagrinò, Francesca; Diop, Awa; Di Felice, Mariana; Di Matteo, Sara; Marcocci, Lucia; Pietrangeli, Paola; Toto, Angelo; Gianni, Stefano. - In: ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS. - ISSN 0003-9861. - 745:(2023), p. 109703. [10.1016/j.abb.2023.109703]

Characterization of the folding and binding properties of the PTB domain of FRS2 with phosphorylated and unphosphorylated ligands

Pennacchietti, Valeria;Pagano, Livia;Malagrinò, Francesca;Diop, Awa;Di Felice, Mariana;Di Matteo, Sara;Marcocci, Lucia;Pietrangeli, Paola;Toto, Angelo
;
Gianni, Stefano
2023

Abstract

PTB (PhosphoTyrosine Binding) domains are protein domains that exert their function by binding phosphotyrosine residues on other proteins. They are commonly found in a variety of signaling proteins and are important for mediating protein-protein interactions in numerous cellular processes. PTB domains can also exhibit binding to unphosphorylated ligands, suggesting that they have additional binding specificities beyond phosphotyrosine recognition. Structural studies have reported that the PTB domain from FRS2 possesses this peculiar feature, allowing it to interact with both phosphorylated and unphosphorylated ligands, such as TrkB and FGFR1, through different topologies and orientations. In an effort to elucidate the dynamic and functional properties of these protein-protein interactions, we provide a complete characterization of the folding mechanism of the PTB domain of FRS2 and the binding process to peptides mimicking specific regions of TrkB and FGFR1. By analyzing the equilibrium and kinetics of PTB folding, we propose a mechanism implying the presence of an intermediate along the folding pathway. Kinetic binding experiments performed at different ionic strengths highlighted the electrostatic nature of the interaction with both peptides. The specific role of single amino acids in early and late events of binding was pinpointed by site-directed mutagenesis. These results are discussed in light of previous experimental works on these protein systems.
2023
Protein-protein interactions; stopped-flow; site-directed mutagenesis; TrkB; FGFR1
01 Pubblicazione su rivista::01a Articolo in rivista
Characterization of the folding and binding properties of the PTB domain of FRS2 with phosphorylated and unphosphorylated ligands / Pennacchietti, Valeria; Pagano, Livia; Malagrinò, Francesca; Diop, Awa; Di Felice, Mariana; Di Matteo, Sara; Marcocci, Lucia; Pietrangeli, Paola; Toto, Angelo; Gianni, Stefano. - In: ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS. - ISSN 0003-9861. - 745:(2023), p. 109703. [10.1016/j.abb.2023.109703]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1686025
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