In Search of a Breakthrough Therapy for Glioblastoma Multiforme
Abstract
:1. Introduction
2. Repurposing of Drugs for Glioblastoma Multiforme
3. Biguanides: Metformin and Phenformin
4. Statins: Atorvastatin, Lovastatin, Simvastatin, and Pravastatin
5. Antimicrobial Agents: Dapsone and Nitroxoline
6. Quinolines: Chloroquine and Quinidine
7. Antidepressants
8. Are Mitochondria a Possible “Weak Spot” of Glioblastoma Multiforme?
9. Mitochondria Are the Central Hub of the “Intrinsic” Apoptotic Pathway
10. Antidepressants and Glioblastoma Multiforme Mitochondria
11. Can Differences in Glioblastoma Multiforme Mitochondria Be Used for Targeted Therapy?
12. Summary
Author Contributions
Funding
Conflicts of Interest
References
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Agent | Proposed Anti-GBM Mechanism | Existing Indication and Main Mechanism (If Known) | Reference |
---|---|---|---|
Nelfinavir | PI3K-Akt signaling inhibition | HIV protease inhibitor | [11] |
Cimetidine | Immunomodulation | Peptic ulcers (Histamine H2 blocker) | [12] |
Diclofenac | Prostaglandin synthesis inhibition | Inflammation and pain (COX-2 inhibitor) | [13] |
Nitroglycerin | Nitric oxide donor | Angina | [14] |
Thioridazine | Induces autophagy and upregulates AMPK activity | Antipsychotic psychosis (blocks D2, 5-HT2A and other receptors) | [15] |
Pimozide | Serotonin receptor-7 inhibition | Antipsychotic (blocks D2, 5-HT2A receptors, has relatively high affinity to 5-HT7 receptors) | [16] |
Risperidone | Serotonin receptor-7 inhibition | Schizophrenia, bipolar disorder, and irritability | [16] |
Paliperidone | Serotonin receptor-7 inhibition | Antipsychotic (blocks D2, 5-HT2A receptors, has relatively high affinity to 5-HT7 receptors) | [16] |
Apomorphine | Mitochondrial metabolic gene downregulation | Emetic, sometimes used in Parkinson disease. Agonist of DA2, DA1, 5-HT2 and α-AR | [17] |
Flupenthixol | Dopamine receptor modulation | Antipsychotic (typical anti-D2-agent) | [18] |
Mebendazole | Tubulin polymerization inhibition | Nematode infestations | [19] |
Disulfiram | Proteasome and alcohol dehydrogenase inhibition | Alcoholism | [20] |
Valproic acid | Histone deacetylase inhibition | Epilepsy | [21] |
Levetiracetam | MGMT activity inhibition | Epilepsy | [22] |
Methadone | cAMP reduction | Severe pain, opioid agonist | [23] |
Sulfasalazine | NF-κB activity suppression | Inflammatory bowel disease | [24] |
Captopril | Angiotensin-converting enzyme inhibitor | Hypertension | [25] |
Nicardipine | EGF and calcium channel antagonism | Hypertension and angina | [26] |
Mibefradil | T-type calcium channel inhibition | Hypertension and angina | [27] |
Prazosin | AKT pathway inhibition | Hypertension | [28] |
Nimodipine | Calcium channel antagonism | Hypertension and angina | [29] |
Minocycline | Apoptosis and autophagy | Antibiotic has multiple known central side effects | [30] |
Quinidine | Ornithine decarboxylase activity inhibition | Heart arrhythmia | [31] |
Accutane | Reduction of EGFR activity | Acne (13-cis-retinoic acid. Has known central side effects) | [32] |
Thalidomide | Angiogenesis inhibition | Multiple myeloma, leprosy. | [33] |
Dichloroacetate | Inhibition of anaerobic metabolism | Topically: warts removal. Congenital lactic acidosis. Inhibits pyruvate dehydrogenase kinase, which increase mitochondrial consumption of pyruvate. | [34] |
Hydroxy-chloroquine | Autophagy inhibition | Malaria | [35] |
Chloroquine | Oxidative stress enhancement | Malaria | [36] |
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Vasilev, A.; Sofi, R.; Tong, L.; Teschemacher, A.G.; Kasparov, S. In Search of a Breakthrough Therapy for Glioblastoma Multiforme. Neuroglia 2018, 1, 292-310. https://doi.org/10.3390/neuroglia1020020
Vasilev A, Sofi R, Tong L, Teschemacher AG, Kasparov S. In Search of a Breakthrough Therapy for Glioblastoma Multiforme. Neuroglia. 2018; 1(2):292-310. https://doi.org/10.3390/neuroglia1020020
Chicago/Turabian StyleVasilev, Alex, Roba Sofi, Li Tong, Anja G. Teschemacher, and Sergey Kasparov. 2018. "In Search of a Breakthrough Therapy for Glioblastoma Multiforme" Neuroglia 1, no. 2: 292-310. https://doi.org/10.3390/neuroglia1020020
APA StyleVasilev, A., Sofi, R., Tong, L., Teschemacher, A. G., & Kasparov, S. (2018). In Search of a Breakthrough Therapy for Glioblastoma Multiforme. Neuroglia, 1(2), 292-310. https://doi.org/10.3390/neuroglia1020020