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Flavone Attenuates Vascular Contractions by Inhibiting RhoA/Rho Kinase Pathway
Inji Baek1, Su Bun Jeon, Min-Ji Song
1Department of Pharmacology, Kyungpook National University School of Medicine, Daegu 700-422, Korea.
Abstract:
Our previous study demonstrated that flavone inhibits vascular contractions by decreasing the phosphorylation levelof the myosin phosphatase target subunit (MYPT1). In the present study, we hypothesized that flavone attenuates vascular contractions through the inhibition of the RhoA/Rho kinase pathway. Rat aortic rings were denuded of endothelium, mounted in organ baths, and contracted with either 30 nM U46619 (a thromboxane A2 analogue) or 8.0 mM NaF 30 min after pretreatment with either flavone (100 or 300 microM) or vehicle. We determined the phosphorylation level of the myosin light chain (MLC(20)), the myosin phophatase targeting subunit 1 (MYPT1) and the protein kinase C-potentiated inhibitory protein for heterotrimeric myosin light chain phophatase of 17-kDa (CPI17) by means of Western blot analysis. Flavone inhibited, not only vascular contractions induced by these contractors, but also the levels of MLC(20) phosphorylation. Furthermore, flavone inhibited the activation of RhoA which had been induced by either U46619 or NaF. Incubation with flavone attenuated U46619-or NaF-induced phosphorylation of MYPT1(Thr855) and CPI17(Thr38), the downstream effectors of Rho-kinase. In regards to the Ca(2+)-free solution, flavone inhibited the phosphorylation of MYPT1(Thr855) and CPI17(Thr38), as well as vascular contractions induced by U46619. These results indicate that flavone attenuates vascular contractions, at least in part, through the inhibition of the RhoA/Rho-kinase pathway.
Insights
Flavone inhibits vascular contractions by blocking the RhoA/Rho kinase pathway. This compound reduces myosin light chain phosphorylation and downstream effector activation, offering potential therapeutic applications.
Area of Science:
- Vascular biology
- Pharmacology
- Cell signaling
Background:
- Vascular contractions are regulated by the RhoA/Rho kinase pathway.
- Flavonoids, like flavone, have shown potential in modulating vascular function.
Purpose of the Study:
- To investigate whether flavone attenuates vascular contractions by inhibiting the RhoA/Rho kinase pathway.
- To elucidate the specific molecular mechanisms involved in flavone's effect on vascular smooth muscle contraction.
Main Methods:
- Isolated rat aortic rings were used to assess vascular contractions.
- Western blot analysis was employed to measure protein phosphorylation levels (MLC(20), MYPT1, CPI17).
- RhoA activation was quantified following stimulation with U46619 or NaF in the presence of flavone.
Main Results:
- Flavone significantly inhibited vascular contractions induced by U46619 and NaF.
- Flavone decreased the phosphorylation of myosin light chain (MLC(20)), MYPT1, and CPI17.
- Flavone attenuated RhoA activation and phosphorylation of its downstream effectors.
Conclusions:
- Flavone attenuates vascular contractions, at least in part, by inhibiting the RhoA/Rho kinase pathway.
- These findings highlight flavone as a potential therapeutic agent for conditions involving vascular hypercontraction.
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