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Pharmacological aspects of targeting cancer gene therapy to endothelial cells
1Aventis Pharma Deutschland GmbH, Central Biotechnology, PO Box 1140, 35001, Marburg, Germany. hans-harald.sedlacek@aventis.com
Abstract:
Targeting cancer gene therapy to endothelial cells seems to be a rational approach, because (a) a clear correlation exists between proliferation of tumor vessels and tumor growth and malignancy, (b) differences of cell membrane structures between tumor endothelial cells and normal endothelial cells exist which could be used for targeting of vectors and (c) tumor endothelial cells are accessible to vector vehicles in spite of the peculiarities of the transvascular and interstitial blood flow in tumors. Based on the knowledge on the pharmacokinetics of macromolecules it can be concluded that vectors targeting tumor endothelial cells should own a long blood residence time after intravascular application. This precondition seems to be fulfilled best by vectors exhibiting a slight anionic charge. A long blood residence time would allow the formation of a high amount of complexes between tumor endothelial cells and vector particles. Such high amount of complexes should enable a high transfection rate of tumor endothelial cells. In view of their pharmacokinetic behavior nonviral vectors seem to be more suitable for in vivo targeting tumor endothelial cells than viral vectors. Specific binding of nonviral vectors to tumor endothelial cells should be enhanced by multifunctional ligands and the transduction efficiency should be improved by cationic carriers. Effector genes should encode proteins potent enough to induce reactions which eliminate the tumor tissue. To be effective to that degree such proteins should induce self-amplifying antitumor reactions. Examples for proteins which have the potential to induce such self-amplifying tumor reactions are proteins endowed with antiangiogenic and antiproliferative activity, enzymes which convert prodrugs into drugs and possibly also proteins which induce embolization of tumor vessels. The pharmacological data for such examples are discussed in detail.
Insights
Targeting tumor endothelial cells with gene therapy offers a promising strategy for cancer treatment. Nonviral vectors with anionic charges and specific ligands show potential for enhanced tumor cell transfection and elimination.
Area of Science:
- Oncology
- Gene Therapy
- Biotechnology
Background:
- Tumor growth and malignancy correlate with tumor vessel proliferation.
- Tumor endothelial cells (TECs) possess unique cell membrane structures and accessibility for targeting.
- Effective gene therapy requires vectors with specific pharmacokinetic properties for targeting TECs.
Purpose of the Study:
- To evaluate the rationale and potential of targeting endothelial cells for cancer gene therapy.
- To identify optimal vector characteristics for efficient in vivo targeting of tumor endothelial cells.
- To explore effector genes encoding proteins for self-amplifying antitumor reactions.
Main Methods:
- Analysis of pharmacokinetic data for macromolecule vectors.
- Comparison of viral and nonviral vector suitability for targeting TECs.
- Design considerations for multifunctional ligands and cationic carriers to enhance nonviral vector performance.
Main Results:
- Vectors with a slight anionic charge are proposed to achieve long blood residence times, facilitating complex formation with TECs.
- Nonviral vectors are suggested to be more suitable than viral vectors due to their pharmacokinetic behavior.
- Multifunctional ligands and cationic carriers can enhance binding and transduction efficiency of nonviral vectors.
Conclusions:
- Targeting TECs is a rational strategy for cancer gene therapy.
- Nonviral vectors with specific properties (anionic charge, ligands, cationic carriers) are promising for in vivo TEC targeting.
- Effector genes encoding anti-tumorigenic proteins (anti-angiogenic, antiproliferative, prodrug-converting enzymes, embolizing agents) are crucial for tumor elimination.