Guanylyl cyclase sensitivity to nitric oxide is protected by a thiol oxidation-driven interaction with thioredoxin-1

被引:29
作者
Huang, Can [1 ]
Alapa, Maryam [1 ]
Shu, Ping [1 ]
Nagarajan, Narayani [2 ]
Wu, Changgong [3 ]
Sadoshima, Junichi [2 ]
Kholodovych, Vladyslav [4 ,5 ]
Li, Hong [3 ]
Beuve, Annie [1 ]
机构
[1] Rutgers New Jersey Med Sch, Cardiovasc Res Inst, Dept Pharmacol Physiol & Neurosci, Newark, NJ 07103 USA
[2] Rutgers New Jersey Med Sch, Cardiovasc Res Inst, Dept Cell Biol & Mol Med, Newark, NJ 07103 USA
[3] Rutgers New Jersey Med Sch, Ctr Adv Prote Res, Dept Microbiol Biochem & Mol Genet, Ctr Canc, Newark, NJ 07103 USA
[4] Rutgers State Univ, Off Adv & Res Comp, Piscataway, NJ 08854 USA
[5] Rutgers State Univ, Robert Wood Johnson Med Sch, Dept Pharmacol, Piscataway, NJ 08901 USA
基金
美国国家卫生研究院;
关键词
SMOOTH-MUSCLE-CELLS; S-NITROSYLATION; CATALYTIC DOMAINS; BINDING-SITE; RECEPTOR; DESENSITIZATION; ACTIVATION; MECHANISM; STRESS; SYSTEM;
D O I
10.1074/jbc.M117.787390
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
Nitric oxide (NO) modulates many physiological events through production of cGMP from its receptor, the NO-sensitive guanylyl cyclase (GC1). NO also appears to function in a cGMP-independent manner, via S-nitrosation (SNO), a redox-based modification of cysteine thiols. Previously, we have shown that S-nitrosated GC1 (SNO-GC1) is desensitized to NO stimulation following prolonged NO exposure or under oxidative/nitrosative stress. In animal models of nitrate tolerance and angiotensin II-induced hypertension, decreased vasodilation in response to NO correlates with GC1 thiol oxidation, but the physiological mechanism that resensitizes GC1 to NO and restores basal activity is unknown. Because GC1 interacts with the oxidoreductase protein-disulfide isomerase, we hypothesized that thioredoxin-1 (Trx1), a cytosolic oxidoreductase, could be involved in restoring GC1 basal activity and NO sensitivity because the Trx/thioredoxin reductase (TrxR) system maintains thiol redox homeostasis. Here, by manipulating activity and levels of the Trx1/TrxR system and by using a Trx1-Trap assay, we demonstrate that Trx1 modulates cGMP synthesis through an association between Trx1 and GC1 via a mixed disulfide. A proximity ligation assay confirmed the endogenous Trx1-GC1 complex in cells. Mutational analysis suggested that Cys(609) in GC1 is involved in the Trx1-GC1 association and modulation of GC1 activity. Functionally, we established that Trx1 protects GC1 from S-nitrosocysteine-induced desensitization. A computational model of Trx1-GC1 interaction illustrates a possible mechanism for Trx1 to maintain basal GC1 activity and prevent/rescue GC1 desensitization to NO. The etiology of some oxidative vascular diseases may very well be explained by the dysfunction of the Trx1-GC1 association.
引用
收藏
页码:14362 / 14370
页数:9
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