An Asp to Strike Out Cancer? Therapeutic Possibilities Arising from Aspartate’s Emerging Roles in Cell Proliferation and Survival
Abstract
:1. Introduction
2. Roles of Aspartate in Cell Proliferation and Survival
2.1. Protein Synthesis, Amino Acid Metabolism, and the Urea Cycle
2.2. De Novo Nucleotide Synthesis
2.3. Redox Balance and Oxidative Stress
3. Aspartate Availability, Biosynthesis, and Their Limiting Steps in Cancer
3.1. Aspartate Biosynthesis in Respiration-Competent Cancers
3.2. Aspartate Biosynthesis in Respiration-Incompetent Cancers
4. Therapeutic Approaches Targeting Aspartate Availability in Cancer
4.1. Glutaminase Inhibition Reduces Glutamine Utilization and Aspartate Synthesis
4.2. OXPHOS Inhibition Suppresses Mitochondrial Metabolism and Aspartate Synthesis
4.3. aKG Depletes Aspartate via GOT1 under Respiration-Incompetent Cancer Conditions
4.4. Knockdown of Oxoglutarate Dehydrogenase (OGDH) Reduces Aspartate Level in Subsets of Cancers
4.5. Lysosomal Inhibition by Chloroquine Causes Aspartate Depletion
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Therapeutic Agent | Proposed Mechanism of Action | Status of Development | Co-Targeting Strategy | References |
---|---|---|---|---|
CB-839 | Inhibit GLS1 | clinical trial | Inhibit poly(ADP-ribose) polymerase (PARP) | [12] |
Metformin | Inhibit Complex I of the electron transport chain | FDA-approved diabetes drug | Inhibit GOT1 or exploit GOT1 to exhaust aspartate | [6,11,14] |
Dimethyl alpha-ketoglutarate (dmaKG) | Engage GOT1 in aspartate consumption | Pre-clinical testing | Inhibit mitochondrial respiration | [14,45] |
Chloroquine | Unclear; possibly through inhibition of mitochondrial metabolism | FDA-approved anti-malarial drug | Inhibit replication stress response | [15,46] |
OGDH inhibition | [24,25] |
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Helenius, I.T.; Madala, H.R.; Yeh, J.-R.J. An Asp to Strike Out Cancer? Therapeutic Possibilities Arising from Aspartate’s Emerging Roles in Cell Proliferation and Survival. Biomolecules 2021, 11, 1666. https://doi.org/10.3390/biom11111666
Helenius IT, Madala HR, Yeh J-RJ. An Asp to Strike Out Cancer? Therapeutic Possibilities Arising from Aspartate’s Emerging Roles in Cell Proliferation and Survival. Biomolecules. 2021; 11(11):1666. https://doi.org/10.3390/biom11111666
Chicago/Turabian StyleHelenius, Iiro Taneli, Hanumantha Rao Madala, and Jing-Ruey Joanna Yeh. 2021. "An Asp to Strike Out Cancer? Therapeutic Possibilities Arising from Aspartate’s Emerging Roles in Cell Proliferation and Survival" Biomolecules 11, no. 11: 1666. https://doi.org/10.3390/biom11111666
APA StyleHelenius, I. T., Madala, H. R., & Yeh, J.-R. J. (2021). An Asp to Strike Out Cancer? Therapeutic Possibilities Arising from Aspartate’s Emerging Roles in Cell Proliferation and Survival. Biomolecules, 11(11), 1666. https://doi.org/10.3390/biom11111666