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Updated: Aug 25, 2025

Quantitative Measurement of Invadopodia-mediated Extracellular Matrix Proteolysis in Single and Multicellular Contexts
Published on: August 27, 2012
A novel Pyk2-derived peptide inhibits invadopodia-mediated breast cancer metastasis
Shams Twafra1, Chana G Sokolik2, Tal Sneh1
1Cell Migration and Invasion Laboratory, The Azrieli Faculty of Medicine, Bar-Ilan University, Safed, 1311502, Israel.
Abstract:
Dissemination of cancer cells from the primary tumor into distant body tissues and organs is the leading cause of death in cancer patients. While most clinical strategies aim to reduce or impede the growth of the primary tumor, no treatment to eradicate metastatic cancer exists at present. Metastasis is mediated by feet-like cytoskeletal structures called invadopodia which allow cells to penetrate through the basement membrane and intravasate into blood vessels during their spread to distant tissues and organs. The non-receptor tyrosine kinase Pyk2 is highly expressed in breast cancer, where it mediates invadopodia formation and function via interaction with the actin-nucleation-promoting factor cortactin. Here, we designed a cell-permeable peptide inhibitor that contains the second proline-rich region (PRR2) sequence of Pyk2, which binds to the SH3 domain of cortactin and inhibits the interaction between Pyk2 and cortactin in invadopodia. The Pyk2-PRR2 peptide blocks spontaneous lung metastasis in immune-competent mice by inhibiting cortactin tyrosine phosphorylation and actin polymerization-mediated maturation and activation of invadopodia, leading to reduced MMP-dependent tumor cell invasiveness. The native structure of the Pyk2-PRR2:cortactin-SH3 complex was determined using nuclear magnetic resonance (NMR), revealing an extended class II interaction surface spanning the canonical binding groove and a second hydrophobic surface which significantly contributes to ligand affinity. Using structure-guided design, we created a mutant peptide lacking critical residues involved in binding that failed to inhibit invadopodia maturation and function and consequent metastatic dissemination in mice. Our findings shed light on the specific molecular interactions between Pyk2 and cortactin and may lead to the development of novel strategies for preventing dissemination of primary breast tumors predicted at the time of diagnosis to be highly metastatic, and of secondary tumors that have already spread to other parts of the body.
Insights
A new peptide inhibitor targeting Pyk2 and cortactin interaction effectively blocks cancer cell metastasis in mice. This discovery offers a potential new strategy to combat metastatic breast cancer by inhibiting invadopodia formation and function.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Cancer cell metastasis, driven by invadopodia, is the primary cause of cancer-related deaths.
- Current treatments primarily focus on primary tumor growth, lacking strategies to eliminate established metastatic disease.
- The non-receptor tyrosine kinase Pyk2 plays a crucial role in invadopodia formation and function in breast cancer.
Purpose of the Study:
- To develop a novel therapeutic strategy targeting the Pyk2-cortactin interaction to inhibit cancer metastasis.
- To investigate the molecular mechanisms underlying Pyk2-mediated invadopodia function.
- To evaluate the efficacy of a Pyk2-derived peptide inhibitor in preventing spontaneous metastasis in vivo.
Main Methods:
- Design and synthesis of a cell-permeable peptide inhibitor (Pyk2-PRR2) targeting the Pyk2-cortactin interaction.
- Nuclear Magnetic Resonance (NMR) to determine the native structure of the Pyk2-PRR2:cortactin-SH3 complex.
- In vivo studies in immune-competent mice to assess the peptide's effect on lung metastasis.
- Structure-guided design of a mutant peptide to validate binding interactions.
Main Results:
- The Pyk2-PRR2 peptide successfully inhibited Pyk2-cortactin interaction within invadopodia.
- The peptide blocked spontaneous lung metastasis in mice by inhibiting invadopodia maturation and activation.
- Structural analysis revealed key interaction surfaces between Pyk2-PRR2 and cortactin-SH3, crucial for binding affinity.
- A structure-guided mutant peptide failed to inhibit invadopodia function and metastasis, confirming the specificity of the interaction.
Conclusions:
- Targeting the Pyk2-cortactin interaction with peptide inhibitors is a viable strategy to block cancer cell metastasis.
- The Pyk2-PRR2 peptide demonstrates significant potential for preventing the spread of highly metastatic breast tumors.
- Understanding the molecular interactions provides a basis for developing novel anti-metastatic therapeutics.
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