| 1. |
Kanagy, N. L. (1997) Increased vascular responsiveness to alpha2-adrenergic stimulation during NOS inhibition-induced hypertension.
Am. J. Physiol. Heart Circ. Physiol. 273, H2756–H2764.
|
| |
| 2. |
Bratz, I. N., Falcon, R., Partridge, L. D., and Kanagy, N. L. (2002) Vascular smooth muscle cell membrane depolarization after
NOS inhibition hypertension. Am. J. Physiol. Heart Circ. Physiol. 282, H1648–H1655.
|
| |
| 3. |
Carter, R. W., Begaye, M., and Kanagy, N. L. (2002) Acute and chronic NOS inhibition enhances α2-adrenoceptor-stimulated rhoA and rho kinase in rat aorta. Am. J. Physiol. Heart Circ. Physiol. 283, H1361–H1369.
|
| |
| 4. |
Mitchell, B. M., Dorrance, A. M., Ergul, A., and Webb, R. C. (2004) Sepiapterin decreases vasorelaxation in nitric oxide synthase
inhibition-induced hypertension. J. Cardiovasc. Pharmacol. 43, 93–98.
|
| |
| 5. |
Wever, R. M. F., van Dam, T., van Rijn, H. J. M., de Groot, P. F., and Rabelink, T. J. (1997) Tetrahydrobiopterin regulates
superoxide and nitric oxide generation by recombinant endothelial nitric oxide synthase. Biochem. Biophys. Res. Commun. 237, 340–344.
|
| |
| 6. |
Vasquez-Vivar, J., Kalyanaraman, B., Martasek, P., Hogg, N., Masters, B. S., Karoui, H., Tordo, P., and Pritchard, K. A. Jr.
(1998) Superoxide generation by endothelial nitric oxide synthase: the influence of cofactors. Proc. Natl. Acad. Sci. U. S. A. 95, 9220–9225.
|
| |
| 7. |
Xia, Y., Tsai, A. L., Berka, V., and Zweier, J. L. (1998) Superoxide generation from endothelial nitric-oxide synthase. A
calcium/calmodulin-dependent and tetrahydrobiopterin regulatory process. J. Biol. Chem. 273, 25804–25808.
|
| |
| 8. |
Werner-Felmayer, G., Werner, E. R., Fuchs, D., Hausen, A., Reibnegger, G., Schmidt, K., Weiss, G., and Wachter, H. (1993)
Pteridine biosynthesis in human endothelial cells: impact on nitric oxide-mediated formation of cyclic GMP. J. Biol. Chem. 268, 1842–1846.
|
| |
| 9. |
Cosentino, F. and Katusic, Z. S. (1995) Tetrahydrobiopterin and dysfunction of endothelial nitric oxide synthase in coronary
arteries. Circulation
91, 139–144.
|
| |
| 10. |
Kinoshita, H., Milstein, S., Wambi, C., and Katusic, Z. S. (1997) Inhibition of tetrahydrobiopterin biosynthesis impairs endothelium-dependent
relaxations in canine basilar artery. Am. J. Physiol. Heart Circ. Physiol. 273, H718–H724.
|
| |
| 11. |
Xie, L., Smith, J. A., and Gross, S. S. (1998) GTP cyclohydrolase I inhibition by the prototypic inhibitor 2,4-diamino-6-hydroxypyrimidine.
J. Biol. Chem. 273, 21091–21098.
|
| |
| 12. |
Mitchell, B. M., Dorrance, A. M., and Webb, R. C. (2003) GTP cyclohydrolase 1 inhibition attenuates vasodilation and increases
blood pressure in rats. Am. J. Physiol. Heart Circ. Physiol. 285, H2165–H2170.
|
| |
| 13. |
Wallerath, T., Witte, K., Schafer, S. C., Schwarz, P. M., Prellwitz, W., Wohlfart, P., Kleinert, H., Lehr, H. A., Lemmer,
B., and Forstermann, U. (1999) Down-regulation of the expression of endothelial NO synthase is likely to contribute to glucocorticoid-mediated
hypertension. Proc. Natl. Acad. Sci. U. S. A. 96, 13357–13362.
|
| |
| 14. |
Mitchell, B. M., Dorrance, A. M., and Webb, R. C. (2003) GTP cyclohydrolase 1 downregulation contributes to glucocorticoid
hypertension in rats. Hypertension
41, 669–674.
|
| |
| 15. |
Wallerath, T., Godecke, A., Molojavyi, A., Li, H., Schrader, J., and Forstermann, U. (2004) Dexamethasone lacks effect on
blood pressure in mice with a disrupted endothelial NO synthase gene. Nitric Oxide
10, 36–41.
|
| |
| 16. |
Kurtz, T. W., Griffin, K. A., Bidani, A. K., Davisson, R. L., and Hall, J. E. (2005) Recommendations for blood pressure measurement
in humans and experimental animals. Part 2: blood pressure measurement in experimental animals. Hypertension
45, 299–310.
|
| |