| Literature DB >> 26484003 |
Daniele Fanale1, Giuseppe Bronte1, Francesco Passiglia1, Valentina Calò1, Marta Castiglia1, Florinda Di Piazza1, Nadia Barraco1, Antonina Cangemi1, Maria Teresa Catarella1, Lavinia Insalaco1, Angela Listì1, Rossella Maragliano1, Daniela Massihnia1, Alessandro Perez1, Francesca Toia2, Giuseppe Cicero1, Viviana Bazan1.
Abstract
Microtubules are dynamic and structural cellular components involved in several cell functions, including cell shape, motility, and intracellular trafficking. In proliferating cells, they are essential components in the division process through the formation of the mitotic spindle. As a result of these functions, tubulin and microtubules are targets for anticancer agents. Microtubule-targeting agents can be divided into two groups: microtubule-stabilizing, and microtubule-destabilizing agents. The former bind to the tubulin polymer and stabilize microtubules, while the latter bind to the tubulin dimers and destabilize microtubules. Alteration of tubulin-microtubule equilibrium determines the disruption of the mitotic spindle, halting the cell cycle at the metaphase-anaphase transition and, eventually, resulting in cell death. Clinical application of earlier microtubule inhibitors, however, unfortunately showed several limits, such as neurological and bone marrow toxicity and the emergence of drug-resistant tumor cells. Here we review several natural and synthetic microtubule-targeting agents, which showed antitumor activity and increased efficacy in comparison to traditional drugs in various preclinical and clinical studies. Cryptophycins, combretastatins, ombrabulin, soblidotin, D-24851, epothilones and discodermolide were used in clinical trials. Some of them showed antiangiogenic and antivascular activity and others showed the ability to overcome multidrug resistance, supporting their possible use in chemotherapy.Entities:
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Year: 2015 PMID: 26484003 PMCID: PMC4592889 DOI: 10.1155/2015/690916
Source DB: PubMed Journal: Anal Cell Pathol (Amst) ISSN: 2210-7177 Impact factor: 2.916
Figure 1The dynamic nature of cytoskeleton is due to cycles of microtubule catastrophes. (a) Model structure of assembled cytoskeleton. The variety of shapes and sizes of the microtubule cytoskeleton is as great as the number of different cell types. In interphase, microtubules are long and stable because there are almost no catastrophes. (b) In mitosis, catastrophes are relatively frequent, resulting in highly dynamic microtubules that reach a steady-state length after a few minutes of growth (c). (d) After the segregation of chromatids, a new cycle of depolymerization and polymerization begins, resulting in a new stable microtubule cytoskeleton in daughter's cells (d). Blue and red arrows indicate effects of stabilizing and destabilizing agents, all resulting in cell cycle arrest.
Microtubule-destabilizing agents.
| Chemical lead | Properties and effects | Clinical trial/status | References |
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| Cryptophycins | Apoptosis induction. Synergistic with chemotherapy and radiation. | Phase II clinical trials in platinum-resistant ovarian cancer and in NSCLC (C-52) but withdrawn due to peripheral neuropathy. | [ |
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| Combretastatin A-4-P | Antivascular and antiangiogenic activity. Synergistic with radiation, hyperthermia, chemotherapy, and immunoradiotherapy. | Phases II and III clinical trials in advanced solid tumors (lung and thyroid cancer) and in combination with carboplatin. | [ |
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| Combretastatin A-1-P | Antivascular and antitumoral activity superior to CA-4-P. Synergistic with chemotherapy. | Phase I clinical trials in solid tumors and in acute myelogenous leukaemia and myelodysplastic syndromes. | [ |
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| Ombrabulin | Antivascular and antitumoral activity superior to CA-4-P. Synergistic with chemotherapy. | Phase I clinical trials as a single agent or in combination; phase III clinical trial in advanced soft-tissue sarcoma. | [ |
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| Soblidotin | Apoptosis induction. Antivascular activity. Antitumoral activity in tumors resistant to vincristine, docetaxel, and paclitaxel. | Phase II clinical trials in advanced solid tumors (soft-tissue sarcoma, NSCLC). | [ |
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| D-24851 | Curative at nontoxic doses in rat tumor. No neurotoxic effects. Oral applicability. Activity versus MDR cell lines. | Phase I/II clinical trials in advanced solid tumors. | [ |
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| Pseudolaric acid B | Antiangiogenic activity. No neurotoxic effects in tested animal. Activity versus MDR cell lines. | Preclinical phase. | [ |
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| Embellistatin | Antiangiogenic activity. | Preclinical phase. | [ |
Figure 2Mechanism of action of cryptophycins.
Figure 3Classification of cryptophycins.
Figure 4Combretastatin A-4-P: mechanisms of action at tumor level.
Microtube-stabilizing agents.
| Chemical lead | Properties and effects | Clinical trial/status | References |
|---|---|---|---|
| Epothilones | Elevated water solubility, activity versus MDR cell lines, and chemical malleability. | Phase II/III clinical trials in taxane-sensitive solid tumors (breast, lung, and prostate). | [ |
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| Ixabepilone | Epothilone B analog, superior metabolic stability, and activity versus MDR cell lines. | Approved in 2007 for metastatic breast cancer; several ongoing trials in solid tumors. | [ |
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| Laulimalide | Activity versus MDR cell lines and angiogenic activity, synergistic with docetaxel. | Preclinical phase. | [ |
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| Dictyostatin | Activity against MDR cell lines, synergistic with taxol. | Preclinical phase. | [ |
Figure 5Similarities and differences between mechanisms of action and activity of microtubule-stabilizing agents.