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Tasisulam sodium, an antitumor agent that inhibits mitotic progression and induces vascular normalization
Timothy Meier1, Mark Uhlik, Sudhakar Chintharlapalli
1Eli Lilly and Company, Oncology, Lilly Corporate Center, Indianapolis, Indiana, USA.
Abstract:
LY573636-sodium (tasisulam) is a small molecule antitumor agent with a novel mechanism of action currently being investigated in a variety of human cancers. In vitro, tasisulam induced apoptosis via the intrinsic pathway, resulting in cytochrome c release and caspase-dependent cell death. Using high content cellular imaging and subpopulation analysis of a wide range of in vitro and in vivo cancer models, tasisulam increased the proportion of cells with 4N DNA content and phospho-histone H3 expression, leading to G(2)-M accumulation and subsequent apoptosis. Tasisulam also blocked VEGF, epidermal growth factor, and fibroblast growth factor-induced endothelial cell cord formation but did not block acute growth factor receptor signaling (unlike sunitinib, which blocks VEGF-driven angiogenesis at the receptor kinase level) or induce apoptosis in primary endothelial cells. Importantly, in vivo phenocopying of in vitro effects were observed in multiple human tumor xenografts. Tasisulam was as effective as sunitinib at inhibiting neovascularization in a Matrigel plug angiogenesis assay in vivo and also caused reversible, non G(2)-M-dependent growth arrest in primary endothelial cells. Tasisulam also induced vascular normalization in vivo. Interestingly, the combination of tasisulam and sunitinib significantly delayed growth of the Caki-1 renal cell carcinoma model, whereas neither agent was active alone. These data show that tasisulam has a unique, dual-faceted mechanism of action involving mitotic catastrophe and antiangiogenesis, a phenotype distinct from conventional chemotherapies and published anticancer agents.
Insights
Tasisulam, an antitumor agent, triggers cancer cell death through apoptosis and G2-M cell cycle arrest. It also inhibits tumor angiogenesis and normalizes vasculature, offering a unique dual-action approach distinct from traditional therapies.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Tasisulam (LY573636-sodium) is an investigational small molecule antitumor agent.
- Its novel mechanism of action is under evaluation across various human cancers.
Purpose of the Study:
- To elucidate the mechanism of action of tasisulam in cancer treatment.
- To compare tasisulam's antiangiogenic effects with sunitinib.
- To investigate the efficacy of tasisulam in combination with sunitinib.
Main Methods:
- In vitro and in vivo cancer models were utilized.
- High-content cellular imaging and subpopulation analysis were performed.
- Matrigel plug angiogenesis assay was employed to assess antiangiogenic effects.
Main Results:
- Tasisulam induced apoptosis via the intrinsic pathway and G2-M cell cycle arrest.
- It inhibited VEGF, EGF, and FGF-induced endothelial cell cord formation.
- Tasisulam demonstrated efficacy comparable to sunitinib in inhibiting neovascularization and induced vascular normalization in vivo.
- Combination therapy with sunitinib significantly delayed renal cell carcinoma growth.
Conclusions:
- Tasisulam exhibits a unique dual mechanism of action: mitotic catastrophe and antiangiogenesis.
- Its antiangiogenic effects are distinct from sunitinib's receptor kinase inhibition.
- Tasisulam represents a novel therapeutic candidate with a distinct phenotype compared to conventional agents.
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