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Published on: May 28, 2014
1,2-Bis(methylsulfonyl)-1-(2-chloroethyl)-2-[[1-(4-nitrophenyl)ethoxy]carbonyl]hydrazine: an anticancer agent
Helen A Seow1, Philip G Penketh, Krishnamurthy Shyam
1Department of Pharmacology and Therapeutic Radiology, Yale Cancer Center, Yale University School of Medicine, New Haven, CT 06520, USA.
Abstract:
To target malignant cells residing in hypoxic regions of solid tumors, we have designed and synthesized prodrugs generating the cytotoxic alkylating species 1,2-bis(methylsulfonyl)-1-(2-chloroethyl)hydrazine (90CE) after bioreductive activation. We postulate that one of these agents, 1,2-bis(methylsulfonyl)-1-(2-chloroethyl)-2-[[1-(4-nitrophenyl)ethoxy]carbonyl]hydrazine (KS119), requires enzymatic nitro reduction to produce 90CE, whereas another agent, 1,2-bis(methylsulfonyl)-1-(2-chloroethyl)-2-[(4-nitrobenzyloxy)carbonyl]hydrazine (PNBC), can also be activated by nucleophilic attack by thiols such as glutathione (GSH)/GST. We demonstrated that these agents selectively kill hypoxic EMT6 mouse mammary carcinoma and CHO cells. In hypoxia, 50 microM KS119 produced 5 logs of kill of EMT6 cells without discernable cytotoxicity in air; similar effects were observed with CHO cells. PNBC was less efficacious against hypoxic tumor cells and also had some toxicity to aerobic cells, presumably because of GST/thiol activation, making PNBC less interesting as a selective hypoxic-cell cytotoxin. BALB/c mice with established EMT6 solid tumors were used to demonstrate that KS119 could reach and kill hypoxic cells in solid tumors. To gain information on bioreductive enzymes involved in the activation of KS119, cytotoxicity was measured in CHO cell lines overexpressing NADH:cytochrome b5 reductase (NBR), NADPH:cytochrome P450 reductase (NPR), or NADPH: quinone oxidoreductase 1 (NQO1). Increased cytotoxicity occurred in cells overexpressing NBR and NPR, whereas overexpressed NQO1 had no effect. These findings were supported by enzymatic studies using purified NPR and xanthine oxidase to activate KS119. KS119 has significant potential as a hypoxia-selective tumor-cell cytotoxin and is unlikely to cause major toxicity to well oxygenated normal tissues.
Insights
We developed novel prodrugs that selectively kill hypoxic tumor cells. One prodrug, KS119, showed significant potential as a hypoxia-selective cytotoxin with minimal toxicity to normal tissues.
Area of Science:
- Biochemistry
- Pharmacology
- Oncology
Background:
- Solid tumors often contain hypoxic regions resistant to conventional therapies.
- Targeting these hypoxic cells requires specialized therapeutic strategies.
- Prodrugs activated under hypoxic conditions offer a promising approach.
Purpose of the Study:
- To design and synthesize novel prodrugs for selective activation in hypoxic tumor environments.
- To evaluate the efficacy and selectivity of these prodrugs against hypoxic cancer cells.
- To identify the bioreductive enzymes involved in prodrug activation.
Main Methods:
- Synthesis of two prodrugs: KS119 and PNBC.
- In vitro cytotoxicity assays on hypoxic and normoxic EMT6 and CHO cells.
- In vivo studies in BALB/c mice bearing EMT6 solid tumors.
- Cell-based assays using cell lines overexpressing specific reductase enzymes (NBR, NPR, NQO1).
- Enzymatic activation studies with purified enzymes.
Main Results:
- KS119 demonstrated potent and selective cytotoxicity against hypoxic EMT6 and CHO cells, with minimal toxicity in normoxic conditions.
- PNBC showed less efficacy and some toxicity to aerobic cells, suggesting non-specific activation.
- In vivo studies confirmed KS119's ability to reach and eliminate hypoxic cells within solid tumors.
- Overexpression of NADH:cytochrome b5 reductase (NBR) and NADPH:cytochrome P450 reductase (NPR) enhanced KS119 cytotoxicity, indicating their role in activation.
Conclusions:
- KS119 is a promising hypoxia-selective tumor-cell cytotoxin.
- Its activation is primarily mediated by enzymatic nitro reduction involving NBR and NPR.
- KS119 exhibits favorable properties for targeting solid tumors with minimal toxicity to well-oxygenated normal tissues.
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