» Articles » PMID: 26593676

Citron Rho-interacting Kinase Mediates Arsenite-induced Decrease in Endothelial Nitric Oxide Synthase Activity by Increasing Phosphorylation at Threonine 497: Mechanism Underlying Arsenite-induced Vascular Dysfunction

Overview
Date 2015 Nov 24
PMID 26593676
Citations 4
Authors
Affiliations
Soon will be listed here.
Abstract

We reported that arsenite causes an acute decrease in nitric oxide (NO) production by increasing phosphorylation of endothelial NO synthase at threonine 497 (eNOS-Thr(497)); however, the detailed mechanism has not yet been clarified. Here, we investigated the kinase involving in arsenite-stimulated eNOS-Thr(497) phosphorylation. Although treatment with H-89, a known protein kinase A (PKA) inhibitor, inhibited arsenite-stimulated eNOS-Thr(497) phosphorylation, no inhibition was found in cells treated with other PKA inhibitors, including Rp-8-Br-cAMPS or PKI. Based on previous reports, we also tested whether RhoA mediates arsenite-stimulated eNOS-Thr(497) phosphorylation and found that arsenite causes an acute increase in RhoA activity. Ectopic expression of dominant negative (DN)-RhoA significantly reversed arsenite-stimulated eNOS-Thr(497) phosphorylation. An in vitro phosphorylation assay also revealed that the well-known Rho effectors, Rho-associated protein kinase 1/2 (ROCK1/2), directly phosphorylate eNOS-Thr(497). Y27632, a selective ROCK inhibitor, reversed arsenite-stimulated eNOS-Thr(497) phosphorylation. However, overexpression of a small interfering RNA (siRNA) against ROCK1/2 or DN-ROCK did not reverse arsenite-stimulated eNOS-Thr(497) phosphorylation, thereby providing no conclusive evidence of a role for ROCK1/2. Knockdown of PKC-related protein kinase 1/2, another Rho effector, also did not reverse arsenite-stimulated eNOS-Thr(497) phosphorylation. In contrast, we found that transfection with an siRNA against citron Rho-interacting kinase (CRIK), the other downstream effector of Rho, significantly reversed the arsenite-induced eNOS-Thr(497) phosphorylation that was accompanied by restoration of eNOS enzymatic activity repressed by arsenite. Moreover, CRIK directly phosphorylated eNOS-Thr(497)in vitro. Finally, we also found that arsenite increased eNOS-Thr(497) phosphorylation and decreased acetylcholine-induced vessel relaxation in rat aortas. In conclusion, we demonstrate that arsenite acutely inhibits eNOS enzymatic activity and vessel relaxation in part by increasing the RhoA/CRIK/eNOS-Thr(497) phosphorylation signaling axis, which provides a molecular mechanism underlying arsenite-induced impaired vascular diseases.

Citing Articles

Zearalenone-Induced Interaction between PXR and Sp1 Increases Binding of Sp1 to a Promoter Site of the eNOS, Decreasing Its Transcription and NO Production in BAECs.

Lee H, Park J, Oh S, Cho D, Kim S, Jo I Toxins (Basel). 2020; 12(6).

PMID: 32630586 PMC: 7354576. DOI: 10.3390/toxins12060421.


Activation of ATM/Akt/CREB/eNOS Signaling Axis by Aphidicolin Increases NO Production and Vessel Relaxation in Endothelial Cells and Rat Aortas.

Park J, Cho D, Hwang Y, Lee J, Lee H, Jo I Biomol Ther (Seoul). 2020; 28(6):549-560.

PMID: 32394671 PMC: 7585642. DOI: 10.4062/biomolther.2020.007.


Telmisartan Inhibits Nitric Oxide Production and Vessel Relaxation via Protein Phosphatase 2A-mediated Endothelial NO Synthase-Ser Dephosphorylation.

Cho D J Korean Med Sci. 2019; 34(42):e266.

PMID: 31674157 PMC: 6823522. DOI: 10.3346/jkms.2019.34.e266.


Targeted inhibition of STAT3 as a potential treatment strategy for atherosclerosis.

Chen Q, Lv J, Yang W, Xu B, Wang Z, Yu Z Theranostics. 2019; 9(22):6424-6442.

PMID: 31588227 PMC: 6771242. DOI: 10.7150/thno.35528.