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Preparation of Mitochondria from Ovarian Cancer Tissues and Control Ovarian Tissues for Quantitative Proteomics Analysis
Published on: November 18, 2019
Proteomics for cancer drug design
Amanda Haymond1, Justin B Davis1, Virginia Espina1
1Center for Applied Proteomics and Molecular Medicine, George Mason University , Manassas , VA , USA.
Abstract:
Introduction: Signal transduction cascades drive cellular proliferation, apoptosis, immune, and survival pathways. Proteins have emerged as actionable drug targets because they are often dysregulated in cancer, due to underlying genetic mutations, or dysregulated signaling pathways. Cancer drug development relies on proteomic technologies to identify potential biomarkers, mechanisms-of-action, and to identify protein binding hot spots. Areas covered: Brief summaries of proteomic technologies for drug discovery include mass spectrometry, reverse phase protein arrays, chemoproteomics, and fragment based screening. Protein-protein interface mapping is presented as a promising method for peptide therapeutic development. The topic of biosimilar therapeutics is presented as an opportunity to apply proteomic technologies to this new class of cancer drug. Expert opinion: Proteomic technologies are indispensable for drug discovery. A suite of technologies including mass spectrometry, reverse phase protein arrays, and protein-protein interaction mapping provide complimentary information for drug development. These assays have matured into well controlled, robust technologies. Recent regulatory approval of biosimilar therapeutics provides another opportunity to decipher the molecular nuances of their unique mechanisms of action. The ability to identify previously hidden protein hot spots is expanding the gamut of potential drug targets. Proteomic profiling permits lead compound evaluation beyond the one drug, one target paradigm.
Insights
Proteomic technologies are essential for cancer drug discovery, identifying biomarkers and novel targets. These advanced methods enable comprehensive evaluation of drug candidates beyond traditional approaches.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Signal transduction pathways regulate fundamental cellular processes like proliferation and apoptosis.
- Proteins are key drug targets in cancer due to dysregulation by genetic mutations or aberrant signaling.
- Proteomic technologies are crucial for identifying cancer biomarkers and understanding drug mechanisms.
Purpose of the Study:
- To review proteomic technologies applicable to cancer drug discovery.
- To highlight protein-protein interface mapping for peptide therapeutics.
- To discuss the role of proteomics in evaluating biosimilar therapeutics.
Main Methods:
- Mass spectrometry
- Reverse phase protein arrays
- Chemoproteomics
- Fragment-based screening
- Protein-protein interaction mapping
Main Results:
- Proteomic technologies provide complementary data for robust drug development.
- Biosimilar therapeutics offer new avenues for proteomic application.
- Identification of novel protein binding sites expands potential drug targets.
- Proteomic profiling allows for evaluation beyond single-target paradigms.
Conclusions:
- Proteomic technologies are indispensable tools in modern cancer drug discovery.
- The integration of various proteomic methods enhances biomarker and target identification.
- Emerging areas like biosimilars and peptide therapeutics benefit significantly from proteomic insights.
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