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Disrupting the intramolecular interaction between proto-oncogene c-Src SH3 domain and its self-binding peptide PPII
Peng Zhou1,2,3, Shasha Hou1,3, Zhengya Bai1,3
1a School of Life Science and Technology , Center for Informational Biology, University of Electronic Science and Technology of China (UESTC) , Chengdu , China.
Abstract:
Proto-oncogene non-receptor tyrosine protein kinase c-Src has been involved in the development, progression and metastasis of a variety of human cancers. This protein contains two self-binding peptide (SBP) sites separately between the SH3 domain and polyproline-II (PPII) helix and between the SH2 domain and C-terminal phosphorylatable tail (CTPT), which are potential targets of anticancer drugs to regulate the kinase activity. Here, we described an integrated protocol to systematically investigate the structural basis, energetic property and dynamics behaviour of PPII binding to SH3, and to rationally design potent peptide ligands to target the SBP site of SH3-PPII interaction. Our study found that the PPII peptide is a non-typical binder that can only interact effectively with its cognate SH3 domain when it is integrated into the full-length c-Src kinase protein; stripping the peptide from the protein would considerably impair SH3 affinity by increasing entropy penalty upon the domain-peptide binding, suggesting that the protein context plays an essential role in the SBP's biological function. Next, we identified that the PPII peptide binds to SH3 domain in a class II manner and, on this basis, we derived a series of modified versions of the wild-type PPII peptide using a structure-based rational strategy. These modified peptide mutants have been structurally optimized with respect to their molecular flexibility and interaction potency with SH3 domain, in order to minimize indirect entropy penalty and to maximize direct binding enthalpy simultaneously. Consequently, several rationally designed peptides were obtained, including PPIIm2 (TSKPQTPGRA), PPIIm5 (KPPTPPRA), PPIIm6 (FPPPPPRA) and PPIIm7 (YPPLPPRA), which exhibit a moderately or considerably increased affinity (Kd = 72, 34, 15 and 5.7 μM, respectively) relative to the wild-type PPII (TSKPQTQGLA) (Kd = 160 μM). These peptides can be used as lead molecular entities to further develop new anticancer therapeutics to regulate c-Src kinase activity by targeting the SBP site of SH3-PPII interaction.
Insights
This study reveals that the polyproline-II (PPII) peptide
Area of Science:
- Biochemistry and Molecular Biology
- Structural Biology
- Drug Discovery
Background:
- Proto-oncogene non-receptor tyrosine protein kinase c-Src is implicated in human cancer development, progression, and metastasis.
- c-Src protein possesses two self-binding peptide (SBP) sites, SH3-PPII and SH2-CTPT, which are potential targets for anticancer drugs.
- Understanding the structural basis of SBP interactions is crucial for developing targeted cancer therapies.
Purpose of the Study:
- To investigate the structural, energetic, and dynamic properties of the polyproline-II (PPII) helix binding to the SH3 domain of c-Src.
- To rationally design potent peptide ligands targeting the SH3-PPII SBP site for cancer therapy.
- To explore the role of protein context in the biological function of SBP sites.
Main Methods:
- Integrated protocol to study PPII-SH3 domain interaction.
- Structure-based rational design of peptide mutants.
- Affinity measurements (Kd) of wild-type and modified peptides.
Main Results:
- The PPII peptide's affinity for the SH3 domain is dependent on its integration within the full-length c-Src protein, with dissociation impairing binding due to entropic penalties.
- PPII peptide binds to the SH3 domain in a class II manner.
- Rationally designed peptide mutants (PPIIm2, PPIIm5, PPIIm6, PPIIm7) showed significantly increased binding affinity (Kd values ranging from 5.7 to 72 μM) compared to the wild-type PPII peptide (Kd = 160 μM).
Conclusions:
- The protein context is essential for the biological function of c-Src's SBP sites.
- Optimized peptide ligands targeting the SH3-PPII interaction site demonstrate enhanced binding affinity.
- These rationally designed peptides represent promising lead compounds for developing novel anticancer therapeutics targeting c-Src kinase activity.
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