Evaluation of targeting c-Src by the RGT-containing peptide as a novel antithrombotic strategy

Jiansong Huang1, Xiaofeng Shi2, Wenda Xi3

  • 1State Key Laboratory of Medical Genomics, Shanghai Institute of Hematology, Collaborative Innovation Center of Hematology, Ruijin Hospital, Shanghai Jiao Tong University School of Medicine, 197 Second Ruijin Road, Shanghai, 200025, China. hjiansong1234@126.com.

Abstract

Insights

The RGT peptide inhibits platelet aggregation by disrupting the Src/β3 association, offering a potential antithrombotic therapy. This peptide blocks c-Src activation without directly affecting its kinase activity, showing promise for treating thrombosis.

Area of Science:

  • Biochemistry
  • Cell Biology
  • Pharmacology

Background:

  • Integrin β3 and c-Src interaction is crucial for platelet function and implicated in various diseases.
  • Targeting integrin αIIbβ3 outside-in signaling offers antithrombotic potential with preserved hemostasis.
  • The myristoylated RGT peptide targets c-Src/integrin β3 association, but its precise mechanism remains unclear.

Purpose of the Study:

  • To elucidate the molecular mechanisms of the RGT peptide in regulating platelet function.
  • To establish the basis for developing RGT peptide-based antithrombotic therapies by targeting c-Src.

Main Methods:

  • Utilized reduction-sensitive peptides to assess cytoplasmic delivery and rule out membrane anchorage.
  • Assayed c-Src activity in living cells and at protein levels to evaluate RGT's direct effects.
  • Observed thrombus formation under flow conditions using whole blood in a collagen-coated micro-chamber.

Main Results:

  • RGT peptide inhibited outside-in signaling and agonist-induced c-Src activation by disrupting Src/β3 association.
  • The peptide inhibited RhoA activation and collagen-induced platelet aggregation.
  • RGT peptide did not directly affect c-Src kinase activity in vitro or in vivo, and it inhibited thrombus formation under high shear flow conditions.

Conclusions:

  • The RGT peptide regulates integrin signaling and platelet function by disrupting Src/β3 association.
  • This disruption represents a druggable target for potential antithrombotic therapies.
  • Findings support further in vivo and clinical studies using structure-based small molecular mimetics.

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