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Published on: February 24, 2018
Bioactivation of quinones by DT-diaphorase, molecular, biochemical, and chemical studies
1School of Pharmacy, University of Colorado Health Sciences Center, Denver 80262, USA.
Abstract:
Because of the elevated DT-diaphorase (DTD) activity in certain tumors such as human nonsmall cell lung cancer (NCSLC), DTD is a potential target on which to base the development of new antitumor compounds. Mitomycin C is the most effective single agent used for the therapy of NSCLC and is metabolized and bioactivated by DTD. Mitomycin C is a poor substrate for DTD, however, and its metabolism is pH-dependent. We have therefore focused on identifying more efficient substrates for DTD. We have developed a metabolic and cytotoxicity screen that identifies compounds which are efficiently bioactivated by DTD. This screen utilizes both aerobic and hypoxic conditions and cell lines with both elevated and deficient DTD activity as an index of selectivity. Using the screen described above, we have identified [3-hydroxy-5-aziridinyl-1-methyl-2-(1H-indole-4,7-indione)-prop-be ta-en- alpha-ol] (E09), 2,5-diaziridinyl-1,4-benzoquinone (MeDZQ), and streptonigrin as compounds that are most efficiently bioactivated by DTD and exert selective cytotoxicity. Although certain tumors such as NSCLC have elevated DTD activity, we have characterized a point mutation at position 609 in the DTD cDNA, which codes for a proline to serine change in the protein and leads to a loss of enzyme activity. We have characterized this mutation in both BE human colon carcinoma cells and H596 human NSCLC cells. This mutation and resulting lack of DTD activity complicates the use of agents designed to target DTD in tumors.(ABSTRACT TRUNCATED AT 250 WORDS)
Insights
Researchers identified new compounds efficiently activated by DT-diaphorase (DTD) for cancer therapy. However, a DTD mutation in tumors may limit the effectiveness of these targeted antitumor drugs.
Area of Science:
- Biochemistry
- Oncology
- Pharmacology
Background:
- Elevated DT-diaphorase (DTD) activity in tumors like non-small cell lung cancer (NSCLC) presents a therapeutic target.
- Mitomycin C, a key NSCLC drug, is metabolized by DTD but is a poor substrate, necessitating the search for more efficient alternatives.
Purpose of the Study:
- To develop a screening method for identifying novel compounds efficiently bioactivated by DTD.
- To discover new DTD substrates with selective antitumor cytotoxicity.
Main Methods:
- A metabolic and cytotoxicity screen was developed using aerobic/hypoxic conditions and cell lines with varying DTD activity.
- Compounds were evaluated for efficient bioactivation by DTD and selective cytotoxicity.
Main Results:
- E09, MeDZQ, and streptonigrin were identified as compounds efficiently bioactivated by DTD, exhibiting selective cytotoxicity.
- A DTD mutation (Pro609Ser) causing loss of enzyme activity was characterized in colon and NSCLC cell lines, potentially complicating DTD-targeted therapies.
Conclusions:
- New DTD substrates (E09, MeDZQ, streptonigrin) show promise for targeted cancer therapy.
- The identified DTD mutation presents a challenge for developing DTD-targeted antitumor agents.
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