Antitumor Activity of Cytotoxic Cyclooxygenase-2 Inhibitors
Md Jashim Uddin1, Brenda C Crews1, Shu Xu1
1Departments of Biochemistry, Chemistry, and Pharmacology, A.B. Hancock Memorial Laboratory for Cancer Research, Vanderbilt Institute of Chemical Biology, Vanderbilt University School of Medicine , 850 RRB, 2220 Pierce Ave., Nashville, Tennessee 37232, United States.
Abstract:
Targeted delivery of chemotherapeutic agents to tumors has been explored as a means to increase the selectivity and potency of cytotoxicity. Most efforts in this area have exploited the molecular recognition of proteins highly expressed on the surface of cancer cells followed by internalization. A related approach that has received less attention is the targeting of intracellular proteins by ligands conjugated to anticancer drugs. An attractive target for this approach is the enzyme cyclooxygenase-2 (COX-2), which is highly expressed in a range of malignant tumors. Herein, we describe the synthesis and evaluation of a series of chemotherapeutic agents targeted to COX-2 by conjugation to indomethacin. Detailed characterization of compound 12, a conjugate of indomethacin with podophyllotoxin, revealed highly potent and selective COX-2 inhibition in vitro and in intact cells. Kinetics and X-ray crystallographic studies demonstrated that compound 12 is a slow, tight-binding inhibitor that likely binds to COX-2's allosteric site with its indomethacin moiety in a conformation similar to that of indomethacin. Compound 12 exhibited cytotoxicity in cell culture similar to that of podophyllotoxin with no evidence of COX-2-dependent selectivity. However, in vivo, compound 12 accumulated selectively in and more effectively inhibited the growth of a COX-2-expressing xenograft compared to a xenograft that did not express COX-2. Compound 12, which we have named chemocoxib A, provides proof-of-concept for the in vivo targeting of chemotherapeutic agents to COX-2 but suggests that COX-2-dependent selectivity may not be evident in cell culture-based assays.
Insights
Researchers developed chemocoxib A, a novel drug conjugate targeting cyclooxygenase-2 (COX-2) for cancer therapy. This targeted approach demonstrated selective accumulation and tumor growth inhibition in vivo, validating a new strategy for drug delivery.
Area of Science:
- Oncology
- Pharmacology
- Medicinal Chemistry
Background:
- Targeted chemotherapy aims to enhance drug potency and selectivity by exploiting cancer cell-specific markers.
- Intracellular protein targeting offers an alternative strategy to cell-surface targeting for drug delivery.
- Cyclooxygenase-2 (COX-2) is a validated target due to its high expression in various tumors.
Purpose of the Study:
- To synthesize and evaluate novel chemotherapeutic agents conjugated to indomethacin for targeting intracellular COX-2.
- To characterize the inhibitory mechanism and in vitro/in vivo efficacy of a lead compound, chemocoxib A (compound 12).
Main Methods:
- Synthesis of indomethacin-podophyllotoxin conjugate (compound 12).
- In vitro and cellular assays for COX-2 inhibition.
- Enzyme kinetics and X-ray crystallography to elucidate binding mode.
- In vivo studies using COX-2-expressing and non-expressing xenografts.
Main Results:
- Compound 12 potently and selectively inhibited COX-2 in vitro and in cells.
- Kinetics and crystallography revealed slow, tight-binding inhibition at the allosteric site.
- Compound 12 showed in vivo selective accumulation and superior tumor growth inhibition in COX-2-expressing xenografts.
- No COX-2-dependent selectivity was observed in cell culture assays.
Conclusions:
- Chemocoxib A serves as a proof-of-concept for in vivo drug targeting to intracellular COX-2.
- The study highlights the potential of intracellular targeting for cancer therapy.
- COX-2-dependent selectivity may not always be apparent in standard cell culture assays.
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