Subcellular targeting and trafficking of nitric oxide synthases

被引:100
作者
Oess, Stefanie
Icking, Ann
Fulton, David
Govers, Roland
Mueller-Esterl, Werner
机构
[1] Goethe Univ Frankfurt, Sch Med, Inst Biochem 2, D-60590 Frankfurt, Germany
[2] Med Coll Georgia, Vasc Biol Ctr, Augusta, GA 30912 USA
[3] Fac Med, INSERM, U568, F-06107 Nice, France
关键词
acylation cycle; differential activation; intracellular trafficking; nitric oxide synthase; protein-protein interaction; subcellular targeting;
D O I
10.1042/BJ20060321
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Unlike most other endogenous messengers that are deposited in vesicles, processed on demand and/or secreted in a regulated fashion, NO (nitric oxide) is a highly active molecule that readily diffuses through cell membranes and thus cannot be stored inside the producing cell. Rather, its signalling capacity must be controlled at the levels of biosynthesis and local availability. The importance of temporal and spatial control of NO production is highlighted by the finding that differential localization of NO synthases in cardiomyocytes translates into distinct effects of NO in the heart. Thus NO synthases belong to the most tightly controlled enzymes, being regulated at transcriptional and translational levels, through co- and post-translational modifications, by substrate availability and not least via specific sorting to subcellular compartments, where they are in close proximity to their target proteins. Considerable efforts have been made to elucidate the molecular mechanisms that underlie the intracellular targeting and trafficking of NO synthases, to ultimately understand the cellular pathways controlling the formation and function of this powerful signalling molecule. In the present review, we discuss the mechanisms and triggers for subcellular routing and dynamic redistribution of NO synthases and the ensuing consequences for NO production and action.
引用
收藏
页码:401 / 409
页数:9
相关论文
共 120 条
[1]   Novel treatment of excitotoxicity: targeted disruption of intracellular signalling from glutamate receptors [J].
Aarts, MM ;
Tymianski, M .
BIOCHEMICAL PHARMACOLOGY, 2003, 66 (06) :877-886
[2]   Nitric oxide synthases: structure, function and inhibition [J].
Alderton, WK ;
Cooper, CE ;
Knowles, RG .
BIOCHEMICAL JOURNAL, 2001, 357 (03) :593-615
[3]  
Andries LJ, 1998, CIRC RES, V82, P195
[4]   NMDA induces NOS 1 translocation to the cell membrane in NGF-differentiated PC 12 cells [J].
Arundine, M ;
Sanelli, T ;
He, BP ;
Strong, MJ .
BRAIN RESEARCH, 2003, 976 (02) :149-158
[5]   Nitric oxide regulates the heart by spatial confinement of nitric oxide synthase isoforms [J].
Barouch, LA ;
Harrison, RW ;
Skaf, MW ;
Rosas, GO ;
Cappola, TP ;
Kobeissi, ZA ;
Hobai, IA ;
Lemmon, CA ;
Burnett, AL ;
O'Rourke, B ;
Rodriguez, ER ;
Huang, PL ;
Lima, JAC ;
Berkowitz, DE ;
Hare, JM .
NATURE, 2002, 416 (6878) :337-340
[6]   Oxidized low density lipoprotein displaces endothelial nitric-oxide synthase (eNOS) from plasmalemmal caveolae and impairs eNOS activation [J].
Blair, A ;
Shaul, PW ;
Yuhanna, IS ;
Conrad, PA ;
Smart, EJ .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (45) :32512-32519
[7]   NITRIC-OXIDE SYNTHASE COMPLEXED WITH DYSTROPHIN AND ABSENT FROM SKELETAL-MUSCLE SARCOLEMMA IN DUCHENNE MUSCULAR-DYSTROPHY [J].
BRENMAN, JE ;
CHAO, DS ;
XIA, HH ;
ALDAPE, K ;
BREDT, DS .
CELL, 1995, 82 (05) :743-752
[8]   Hsp90 ensures the transition from the early Ca2+-dependent to the late phosphorylation-dependent activation of the endothelial nitric-oxide synthase in vascular endothelial growth factor-exposed endothelial cells [J].
Brouet, A ;
Sonveaux, P ;
Dessy, C ;
Balligand, JL ;
Feron, O .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2001, 276 (35) :32663-32669
[9]   Endothelial nitric oxide synthase is segregated from caveolin-1 and localizes to the leading edge of migrating cells [J].
Bulotta, S ;
Cerullo, A ;
Barsacchi, R ;
De Palma, C ;
Rotiroti, D ;
Clementi, E ;
Borgese, N .
EXPERIMENTAL CELL RESEARCH, 2006, 312 (06) :877-889
[10]   The PSD95-nNOS interface: a target for inhibition of excitotoxic p38 stress-activated protein kinase activation and cell death [J].
Cao, J ;
Viholainen, JI ;
Dart, C ;
Warwick, HK ;
Leyland, ML ;
Courtney, MJ .
JOURNAL OF CELL BIOLOGY, 2005, 168 (01) :117-126