Anal. Chem., 80 (14), 52795285, 2008. 10.1021/ac800763r
Web Release Date: June 19, 2008

Copyright © 2008 American Chemical Society

Synergistic Metabolic Toxicity Screening Using Microsome/DNA Electrochemiluminescent Arrays and Nanoreactors

Sadagopan Krishnan, Eli G. Hvastkovs, Besnik Bajrami, Dharamainder Choudhary, John B. Schenkman,§ and James F. Rusling*§

Department of Chemistry, 55 North Eagleville Road, University of Connecticut, Storrs, Connecticut 06269, and Departments of Cell Biology and Surgery, University of Connecticut Health Center, Farmington, Connecticut 06032

Received for review April 16, 2008. Accepted June 2, 2008.

Abstract:

Platforms based on thin enzyme/DNA films were used in two-tier screening of chemicals for reactive metabolites capable of producing toxicity. Microsomes were used for the first time as sources of cytochrome (cyt) P450 enzymes in these devices. Initial rapid screening involved electrochemiluminescent (ECL) arrays featuring spots containing ruthenium poly(vinylpyridine), DNA, and rat liver microsomes or bicistronically expressed human cyt P450 2E1 (h2E1). Cyt P450 enzymes were activated via the NADPH/reductase cycle. When bioactivation of substrates in the films gives reactive metabolites, they are trapped by covalent attachment to DNA bases. The rate of increase in ECL with enzyme reaction time reflects relative DNA damage rates. “Toxic hits” uncovered by the array were studied in structural detail by using enzyme/DNA films on silica nanospheres as “nanoreactors” to provide nucleobase adducts from reactive metabolites. The utility of this synergistic approach was demonstrated by estimating relative DNA damage rates of three mutagenic N-nitroso compounds and styrene. Relative enzyme turnover rates for these compounds using ECL arrays and LC-UV-MS correlated well with TD50 values for liver tumor formation in rats. Combining ECL array and nanoreactor/LC−MS technologies has the potential for rapid, high-throughput, cost-effective screening for reactive metabolites and provides chemical structure information that is complementary to conventional toxicity bioassays.

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