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Enzymes to die for: exploiting nucleotide metabolizing enzymes for cancer gene therapy
Andressa Ardiani1, Adam J Johnson, Hongmei Ruan
1School of Molecular Biosciences, Washington State University, Pullman, 99164-7520, USA.
Abstract:
Suicide gene therapy is an attractive strategy to selectively destroy cancer cells while minimizing unnecessary toxicity to normal cells. Since this idea was first introduced more than two decades ago, numerous studies have been conducted and significant developments have been made to further its application for mainstream cancer therapy. Major limitations of the suicide gene therapy strategy that have hindered its clinical application include inefficient directed delivery to cancer cells and the poor prodrug activation capacity of suicide enzymes. This review is focused on efforts that have been and are currently being pursued to improve the activity of individual suicide enzymes towards their respective prodrugs with particular attention to the application of nucleotide metabolizing enzymes in suicide cancer gene therapy. A number of protein engineering strategies have been employed and our discussion here will center on the use of mutagenesis approaches to create and evaluate nucleotide metabolizing enzymes with enhanced prodrug activation capacity and increased thermostability. Several of these studies have yielded clinically important enzyme variants that are relevant for cancer gene therapy applications because their utilization can serve to maximize cancer cell killing while minimizing the prodrug dose, thereby limiting undesirable side effects.
Insights
Suicide gene therapy uses engineered enzymes to activate cancer drugs, improving cancer cell killing and reducing side effects. This review highlights advancements in nucleotide metabolizing enzymes for enhanced cancer treatment.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Suicide gene therapy offers targeted cancer cell destruction with minimal toxicity.
- Clinical application is limited by inefficient delivery and poor enzyme prodrug activation.
- Nucleotide metabolizing enzymes are key targets for improving suicide gene therapy.
Purpose of the Study:
- To review strategies for enhancing suicide enzyme activity in cancer gene therapy.
- To focus on protein engineering approaches, particularly mutagenesis, for nucleotide metabolizing enzymes.
- To evaluate enzyme variants with improved prodrug activation and thermostability.
Main Methods:
- Protein engineering via mutagenesis to create novel enzyme variants.
- Evaluation of enzyme variants for enhanced prodrug activation capacity.
- Assessment of enzyme thermostability for therapeutic applications.
Main Results:
- Development of engineered nucleotide metabolizing enzymes with superior prodrug activation.
- Identification of enzyme variants exhibiting increased thermostability.
- Demonstration of enhanced cancer cell killing potential with optimized enzymes.
Conclusions:
- Protein engineering, especially mutagenesis, can significantly improve suicide gene therapy efficacy.
- Enhanced enzyme variants offer a promising strategy to maximize cancer cell killing.
- Optimized suicide gene therapy can minimize prodrug dosage and reduce side effects.
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