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Drug-induced amino acid deprivation as strategy for cancer therapy
Marcus Kwong Lam Fung1, Godfrey Chi-Fung Chan2
1Department of Paediatrics and Adolescent Medicine, LKS Faculty of Medicine, The University of Hong Kong, Pok Fu Lam, Hong Kong.
Abstract:
Cancer is caused by uncontrollable growth of neoplastic cells, leading to invasion of adjacent and distant tissues resulting in death. Cancer cells have specific nutrient(s) auxotrophy and have a much higher nutrient demand compared to normal tissues. Therefore, different metabolic inhibitors or nutrient-depleting enzymes have been tested for their anti-cancer activities. We review recent available laboratory and clinical data on using various specific amino acid metabolic pathways inhibitors in treating cancers. Our focus is on glutamine, asparagine, and arginine starvation. These three amino acids are chosen due to their better scientific evidence compared to other related approaches in cancer treatment. Amino acid-specific depleting enzymes have been adopted in different standard chemotherapy protocols. Glutamine starvation by glutaminase inhibitior, transporter inhibitor, or glutamine depletion has shown to have significant anti-cancer effect in pre-clinical studies. Currently, glutaminase inhibitor is under clinical trial for testing anti-cancer efficacy. Clinical data suggests that asparagine depletion is effective in treating hematologic malignancies even as a single agent. On the other hand, arginine depletion has lower toxicity profile and can effectively reduce the level of pro-cancer biochemicals in patients as shown by ours and others' data. This supports the clinical use of arginine depletion as anti-cancer therapy but its exact efficacy in various cancers requires further investigation. However, clinical application of these enzymes is usually hindered by common problems including allergy to these foreign proteins, off-target cytotoxicity, short half-life and rapidly emerging chemoresistance. There have been efforts to overcome these problems by modifying the drugs in different ways to circumvent these hindrance such as (1) isolate human native enzymes to reduce allergy, (2) isolate enzyme isoforms with higher specificities and efficiencies, (3) pegylate the enzymes to reduce allergy and prolong the half-lives, and (4) design drug combinations protocols to enhance the efficacy of chemotherapy by drug synergy and minimizing resistance. These improvements can potentially lead to the development of more effective anti-cancer treatment with less adverse effects and higher therapeutic efficacy.
Insights
Targeting cancer cell nutrient needs, this review explores amino acid starvation therapies like glutamine, asparagine, and arginine depletion for effective cancer treatment with fewer side effects.
Area of Science:
- Oncology
- Metabolic Pathways
- Drug Development
Background:
- Cancer cells exhibit distinct nutrient auxotrophy and higher demands than normal tissues.
- Metabolic inhibitors and nutrient-depleting enzymes are investigated as anti-cancer strategies.
- Amino acid starvation targets specific metabolic vulnerabilities in neoplastic cells.
Purpose of the Study:
- To review laboratory and clinical data on amino acid metabolic pathway inhibitors for cancer treatment.
- To focus on the anti-cancer potential of glutamine, asparagine, and arginine starvation.
- To discuss challenges and improvements in amino acid-depleting enzyme therapies.
Main Methods:
- Review of preclinical and clinical studies on amino acid metabolic inhibitors.
- Analysis of data on glutamine, asparagine, and arginine depletion strategies.
- Evaluation of drug modification approaches to enhance enzyme therapy efficacy.
Main Results:
- Glutamine starvation shows significant preclinical anti-cancer effects; glutaminase inhibitors are in clinical trials.
- Asparagine depletion demonstrates efficacy in hematologic malignancies as a single agent.
- Arginine depletion exhibits a favorable toxicity profile and reduces pro-cancer biochemicals.
Conclusions:
- Amino acid starvation, particularly glutamine, asparagine, and arginine depletion, shows promise in cancer therapy.
- Challenges like immunogenicity and chemoresistance hinder current enzyme therapies.
- Drug modifications and combination protocols are crucial for developing safer and more effective anti-cancer treatments.
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