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Published on: April 27, 2017
RGD-Binding Integrins Revisited: How Recently Discovered Functions and Novel Synthetic Ligands (Re-)Shape an
Beatrice S Ludwig1, Horst Kessler2, Susanne Kossatz1,2
1Department of Nuclear Medicine, University Hospital Klinikum Rechts der Isar and Central Institute for Translational Cancer Research (TranslaTUM), Technical University Munich, 81675 Munich, Germany.
Abstract:
Integrins have been extensively investigated as therapeutic targets over the last decades, which has been inspired by their multiple functions in cancer progression, metastasis, and angiogenesis as well as a continuously expanding number of other diseases, e.g., sepsis, fibrosis, and viral infections, possibly also Severe Acute Respiratory Syndrome Coronavirus (SARS-CoV-2). Although integrin-targeted (cancer) therapy trials did not meet the high expectations yet, integrins are still valid and promising targets due to their elevated expression and surface accessibility on diseased cells. Thus, for the future successful clinical translation of integrin-targeted compounds, revisited and innovative treatment strategies have to be explored based on accumulated knowledge of integrin biology. For this, refined approaches are demanded aiming at alternative and improved preclinical models, optimized selectivity and pharmacological properties of integrin ligands, as well as more sophisticated treatment protocols considering dose fine-tuning of compounds. Moreover, integrin ligands exert high accuracy in disease monitoring as diagnostic molecular imaging tools, enabling patient selection for individualized integrin-targeted therapy. The present review comprehensively analyzes the state-of-the-art knowledge on the roles of RGD-binding integrin subtypes in cancer and non-cancerous diseases and outlines the latest achievements in the design and development of synthetic ligands and their application in biomedical, translational, and molecular imaging approaches. Indeed, substantial progress has already been made, including advanced ligand designs, numerous elaborated pre-clinical and first-in-human studies, while the discovery of novel applications for integrin ligands remains to be explored.
Insights
Integrins are crucial targets for treating cancer and other diseases. Innovative strategies and advanced ligands are needed for successful clinical translation and improved disease monitoring.
Area of Science:
- Biomedical research
- Molecular biology
- Drug discovery
Background:
- Integrins play key roles in cancer, metastasis, angiogenesis, and various other diseases like sepsis, fibrosis, and viral infections.
- Despite challenges, integrins remain promising therapeutic targets due to their overexpression and accessibility on diseased cells.
Purpose of the Study:
- To comprehensively review the roles of RGD-binding integrins in cancer and non-cancerous diseases.
- To outline recent advancements in synthetic ligand design and their applications in biomedical and molecular imaging.
- To explore innovative treatment strategies for successful clinical translation of integrin-targeted therapies.
Main Methods:
- Analysis of current knowledge on integrin biology and disease roles.
- Review of state-of-the-art synthetic ligand design and development.
- Evaluation of applications in preclinical, translational, and molecular imaging studies.
Main Results:
- Integrin ligands show high accuracy in disease monitoring and patient selection for targeted therapy.
- Substantial progress has been made in advanced ligand designs and preclinical/first-in-human studies.
- Novel applications for integrin ligands are continuously being explored.
Conclusions:
- Revisiting and innovating treatment strategies are essential for clinical success.
- Refined approaches in preclinical models, ligand selectivity, and treatment protocols are required.
- Integrin ligands hold significant potential for individualized therapy and advanced diagnostics.
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