Chamseddine Ali H, Miller Francis J
Department of Internal Medicine and Free Radical and Radiation Biology Program, University of Iowa, Iowa City, IA 52242, USA.
Am J Physiol Heart Circ Physiol. 2003 Dec;285(6):H2284-9. doi: 10.1152/ajpheart.00459.2003. Epub 2003 Jul 10.
Reactive oxygen species (ROS) derived from vascular NADPH oxidase are important in normal and pathological regulation of vessel growth and function. Cell-specific differences in expression and function of the catalytic subunit of NADPH oxidase may contribute to differences in vascular cell response to NADPH oxidase activation. We examined the functional expression of gp91phox on NADPH oxidase activity in vascular smooth muscle cells (SMC) and fibroblasts (FB). As measured by dihydroethidium fluorescence in situ, superoxide (O2-) levels were greater in adventitial cells compared with medial SMC in wild-type aorta. In contrast, there was no difference in O2- levels between adventitial cells and medial SMC in aorta from gp91phox-deficient (gp91phox KO) mice. Adventitial-derived FB and medial SMC were isolated from the aorta of wild-type and gp91phox KO mice and grown in culture. Consistent with the observations in situ, basal and stimulated ROS levels were reduced in FB isolated from aorta of gp91phox KO compared with FB from wild-type aorta, whereas ROS levels were similar in SMC derived from gp91phox KO and wild-type aorta. There were no differences in expression of superoxide dismutase between gp91phox KO and wild-type FB to account for these observations. Because gp91phox is associated with membranes, we examined NADPH-stimulated O2-. production in membrane-enriched fractions of cell lysate. As measured by chemiluminescence, NADPH oxidase activity was markedly greater in wild-type FB compared with gp91phox KO FB but did not differ among the SMCs. Confirming functional expression of gp91phox in FB, antisense to gp91phox decreased ROS levels in wild-type FB. Finally, deficiency of gp91phox did not alter expression of the gp91phox homolog NOX4 in isolated FB. We conclude that the neutrophil subunit gp91phox contributes to NADPH oxidase function in vascular FB, but not SMC.
源自血管NADPH氧化酶的活性氧(ROS)在血管生长和功能的正常及病理调节中起重要作用。NADPH氧化酶催化亚基的表达和功能在细胞特异性上的差异可能导致血管细胞对NADPH氧化酶激活反应的差异。我们检测了gp91phox在血管平滑肌细胞(SMC)和成纤维细胞(FB)中对NADPH氧化酶活性的功能表达。通过二氢乙锭荧光原位检测,野生型主动脉中外膜细胞中的超氧化物(O2-*)水平高于中膜SMC。相反,gp91phox缺陷(gp91phox KO)小鼠主动脉中外膜细胞与中膜SMC之间的O2-*水平没有差异。从野生型和gp91phox KO小鼠的主动脉中分离出外膜来源的FB和中膜SMC,并在培养中生长。与原位观察结果一致,与野生型主动脉来源的FB相比,gp91phox KO主动脉来源的FB中基础和刺激后的ROS水平降低,而gp91phox KO和野生型主动脉来源的SMC中的ROS水平相似。gp91phox KO和野生型FB之间超氧化物歧化酶的表达没有差异来解释这些观察结果。由于gp91phox与膜相关,我们检测了细胞裂解液中富含膜的部分中NADPH刺激的O2-产生。通过化学发光检测,野生型FB中的NADPH氧化酶活性明显高于gp91phox KO FB,但在SMC之间没有差异。用gp91phox反义核酸证实了FB中gp91phox的功能表达,其降低了野生型FB中的ROS水平。最后,gp91phox的缺陷并没有改变分离出的FB中gp91phox同源物NOX4的表达。我们得出结论,中性粒细胞亚基gp91phox有助于血管FB中NADPH氧化酶的功能,但对SMC没有作用。