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Biomedical subjects

Matthew Grady

Publications and source records attributed to Matthew Grady.

2 recordsLinked to original sources

Dicumarol inhibition of NADPH:quinone oxidoreductase induces growth inhibition of pancreatic cancer via a superoxide-mediated mechanism.

NADPH:quinone oxidoreductase (NQO(1)), a homodimeric, ubiquitous, flavoprotein, catalyzes the two-electron reduction of quinones to hydroquinones. This reaction prevents the one-electron reduction of quinones by cytochrome P450 reductase and other flavoproteins that would result in oxidative cycling with generation of superoxide (O(2)(.-)). NQO(1) gene regulation may be up-regulated in some tumors to accommodate the needs of rapidly metabolizing cells to regenerate NAD(+). We hypothesized that pancreatic cancer cells would exhibit high levels of this enzyme, and inhibiting it would suppress the malignant phenotype. Reverse transcription-PCR, Western blots, and activity assays demonstrated that NQO(1) was up-regulated in the pancreatic cancer cell lines tested but present in very low amounts in the normal human pancreas. To determine whether inhibition of NQO(1) would alter the malignant phenotype, MIA PaCa-2 pancreatic cancer cells were treated with a selective inhibitor of NQO(1), dicumarol. Dicumarol increased intracellular production of O(2)(.-), as measured by hydroethidine staining, and inhibited cell growth. Both of these effects were blunted with infection of an adenoviral vector containing the cDNA for manganese superoxide dismutase. Dicumarol also inhibited cell growth, plating efficiency, and growth in soft agar. We conclude that inhibition of NQO(1) increases intracellular O(2)(.-) production and inhibits the in vitro malignant phenotype of pancreatic cancer. These mechanisms suggest that altering the intracellular redox environment of pancreatic cancer cells may inhibit growth and delineate a potential strategy directed against pancreatic cancer.

Adenocarcinoma↗

Preventing postoperative Staphylococcus infections: an update.

Postoperative nosocomial infections are associated with increased cost, hospitalization, and morbidity. S. aureus is the most common organism that contributes to postoperative nosocomial infections, and causes up to 25% of these infections. The role of the nose as a reservoir for S. aureus and possible subsequent endogenous infections has been recognized for approximately 40 years. Elimination of nasal carriage of S. aureus may be another intervention aimed at reducing postoperative infections. Mupirocin, a topical antibiotic effective against Gram-positive organisms, was proved to be effective in reducing the rates of nasal colonization of S. aureus and decreased postoperative nosocomial infections due to S. aureus.

Anti-Bacterial Agents↗