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Inhibitors of protein farnesyltransferase as novel anticancer agents
Junko Ohkanda1, David B Knowles, Michelle A Blaskovich
1Department of Chemistry, Yale University, New Haven, CT 06520-8107, USA.
Abstract:
This paper describes recent progress in the design, synthesis and biological evaluation of inhibitors for the enzyme protein farnesyltransferase (PFTase). This enzyme plays a critical role in the post-translational modification of a range of different intracellular proteins. In particular, PFTase attaches a farnesyl group to the GTPase Ras whose oncogenically mutated form is found in over 30% of human cancers. As a result PFTase inhibitors have been developed as potential cancer therapeutic drugs either by rational design based on the structure of the CAAX carboxyl terminus of Ras or random screening of chemical libraries or natural products. Some of these inhibitors show remarkable inhibition potency against PFTase at subnanomolar concentrations and >1000-fold selectivity compared to the related enzyme geranylgeranyltransferase-I. Certain of these compounds are highly effective at blocking the growth of human tumors in animal models and are now undergoing clinical trials. However, several issues in the research remain unsolved, including the mechanism by which PFTase inhibitors suppress tumor growth. Although it has been established that PFTase inhibitors block prenylation of Ras in vitro, the results in wholecells and animal studies suggest the possibility that proteins other than Ras are affected.
Insights
Protein farnesyltransferase (PFTase) inhibitors show promise in cancer therapy by blocking Ras prenylation. These potent inhibitors are effective in preclinical models and are advancing to clinical trials.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Protein farnesyltransferase (PFTase) is crucial for post-translational modification of proteins, including the Ras GTPase.
- Mutated Ras is implicated in over 30% of human cancers, making PFTase a target for drug development.
Purpose of the Study:
- To review recent advancements in the design, synthesis, and biological evaluation of PFTase inhibitors.
- To explore the therapeutic potential of PFTase inhibitors as anti-cancer agents.
Main Methods:
- Rational drug design based on the Ras CAAX motif.
- High-throughput screening of chemical libraries and natural products.
- In vitro enzymatic assays and cellular/in vivo tumor models.
Main Results:
- Development of potent PFTase inhibitors with subnanomolar potency and high selectivity (>1000-fold) over related enzymes.
- Demonstration of significant tumor growth inhibition in animal models.
- Progression of certain PFTase inhibitors into clinical trials.
Conclusions:
- PFTase inhibitors represent a promising class of anti-cancer therapeutics.
- Further research is needed to elucidate the precise mechanisms of tumor suppression by PFTase inhibitors, as non-Ras targets may also be involved.