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Solid-phase Synthesis of [4.4] Spirocyclic Oximes
Published on: February 6, 2019
Design of new oxazaphosphorine anticancer drugs
Jun Liang1, Min Huang, Wei Duan
1Department of Pharmacology and Toxicology, Australian Institute of Chinese Medicine, Carlingford, New South Wales, Australia.
Abstract:
The oxazaphosphorines including cyclophosphamide (CPA, Cytoxan, or Neosar), ifosfamide (IFO, Ifex) and trofosfamide (Ixoten) represent an important group of therapeutic agents due to their substantial antitumor and immunomodulating activity. However, several intrinsic limitations have been uncounted during the clinical use of these oxazaphosphorines, including substantial pharmacokinetic variability, resistance and severe host toxicity. To circumvent these problems, new oxazaphosphorines derivatives have been designed and evaluated with an attempt to improve the selectivity and response with reduced host toxicity. These include mafosfamide (NSC 345842), glufosfamide (D19575, beta-D-glucosylisophosphoramide mustard), S-(-)-bromofosfamide (CBM-11), NSC 612567 (aldophosphamide perhydrothiazine) and NSC 613060 (aldophosphamide thiazolidine). Mafosfamide is an oxazaphosphorine analog that is a chemically stable 4-thioethane sulfonic acid salt of 4-hydroxy-CPA. Glufosfamide is IFO derivative in which the isophosphoramide mustard, the alkylating metabolite of IFO, is glycosidically linked to a beta-D-glucose molecule. Phase II studies of glufosfamide in the treatment of pancreatic cancer, non-small cell lung cancer (NCSLC), and recurrent glioblastoma multiform (GBM) have recently completed and Phase III trials are ongoing, while Phase I studies of intrathecal mafosfamide have recently completed for the treatment of meningeal malignancy secondary to leukemia, lymphoma, or solid tumors. S-(-)-bromofosfamide is a bromine-substituted IFO analog being evaluated in a few Phase I clinical trials. The synthesis and development of novel oxazaphosphorine analogs with favourable pharmacokinetic and pharmacodynamic properties still constitutes a great challenge for medicinal chemists and cancer pharmacologists.
Insights
New oxazaphosphorine derivatives aim to overcome limitations of older drugs like cyclophosphamide. These novel compounds show promise in improving cancer treatment selectivity and reducing patient toxicity.
Area of Science:
- Medicinal Chemistry
- Cancer Pharmacology
- Drug Development
Background:
- Oxazaphosphorines, including cyclophosphamide (CPA), ifosfamide (IFO), and trofosfamide, are vital anticancer and immunomodulating agents.
- Clinical use of existing oxazaphosphorines is hindered by pharmacokinetic variability, drug resistance, and severe host toxicity.
- Development of novel derivatives is crucial to enhance therapeutic selectivity and minimize adverse effects.
Purpose of the Study:
- To review the design and evaluation of new oxazaphosphorine derivatives.
- To explore strategies for improving the efficacy and safety profile of oxazaphosphorine-based cancer therapies.
- To highlight ongoing clinical investigations of promising novel analogs.
Main Methods:
- Synthesis and chemical characterization of novel oxazaphosphorine analogs.
- Preclinical evaluation of antitumor activity and host toxicity.
- Clinical trials (Phase I, II, and III) assessing efficacy and safety in various cancer types.
Main Results:
- Several novel derivatives, including mafosfamide, glufosfamide, and S-(-)-bromofosfamide, have been developed.
- Glufosfamide shows promise in pancreatic cancer, non-small cell lung cancer, and glioblastoma multiforme, with Phase III trials underway.
- Intrathecal mafosfamide is in Phase I trials for meningeal malignancies.
Conclusions:
- Novel oxazaphosphorine derivatives offer potential improvements over existing therapies by addressing limitations like toxicity and resistance.
- Ongoing clinical trials are essential to validate the efficacy and safety of these new compounds.
- Further research in medicinal chemistry and cancer pharmacology is needed to optimize the development of next-generation oxazaphosphorines.
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