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The Japanese toxicogenomics project: application of toxicogenomics.

Molecular nutrition & food research (2009-12-31)
Takeki Uehara, Atsushi Ono, Toshiyuki Maruyama, Ikuo Kato, Hiroshi Yamada, Yasuo Ohno, Tetsuro Urushidani
ABSTRACT

Biotechnology advances have provided novel methods for the risk assessment of chemicals. The application of microarray technologies to toxicology, known as toxicogenomics, is becoming an accepted approach for identifying chemicals with potential safety problems. Gene expression profiling is expected to identify the mechanisms that underlie the potential toxicity of chemicals. This technology has also been applied to identify biomarkers of toxicity to predict potential hazardous chemicals. Ultimately, toxicogenomics is expected to aid in risk assessment. The following discussion explores potential applications and features of the Japanese Toxicogenomics Project.

MATERIALS
Product Number
Brand
Product Description

Sigma-Aldrich
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Sigma-Aldrich
Caffeine, anhydrous, 99%, FCC, FG
Sigma-Aldrich
Allyl alcohol, ≥98.5%
Supelco
Ciprofloxacin, VETRANAL®, analytical standard
Sigma-Aldrich
(S)-(+)-6-Methoxy-α-methyl-2-naphthaleneacetic acid, 98%
Sigma-Aldrich
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Sigma-Aldrich
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Sigma-Aldrich
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Sigma-Aldrich
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Sigma-Aldrich
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Sigma-Aldrich
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Ketoconazole, 99.0-101.0% (EP, titration)
Sigma-Aldrich
Furosemide
Sigma-Aldrich
6-Propyl-2-thiouracil, enzyme inhibitor
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5,5-Diphenylhydantoin, ≥98%
Sigma-Aldrich
Colchicine, ≥95% (HPLC), powder
Sigma-Aldrich
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Sigma-Aldrich
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Sigma-Aldrich
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Sigma-Aldrich
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Sigma-Aldrich
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Sigma-Aldrich
Tamoxifen, ≥99%
Sigma-Aldrich
Naproxen, meets USP testing specifications
Supelco
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Sigma-Aldrich
Diazepam
Sigma-Aldrich
L-Ethionine, ≥99% (TLC)
Sigma-Aldrich
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Sigma-Aldrich
D-Penicillamine, 98-101%
Sigma-Aldrich
N-Nitrosodiethylamine, liquid
Sigma-Aldrich
Caffeine, meets USP testing specifications, anhydrous