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Epac1在新生内膜形成过程中上调,并促进血管平滑肌细胞迁移。

Epac1 is upregulated during neointima formation and promotes vascular smooth muscle cell migration.

作者信息

Yokoyama Utako, Minamisawa Susumu, Quan Hong, Akaike Toru, Jin Meihua, Otsu Koji, Ulucan Coskun, Wang Xu, Baljinnyam Erdenechimeg, Takaoka Minoru, Sata Masataka, Ishikawa Yoshihiro

机构信息

Cardiovascular Research Institute, Yokohama City University Graduate School of Medicine, Yokohama, Japan.

出版信息

Am J Physiol Heart Circ Physiol. 2008 Oct;295(4):H1547-55. doi: 10.1152/ajpheart.01317.2007. Epub 2008 Aug 8.

Abstract

Vascular remodeling after mechanoinjury largely depends on the migration of smooth muscle cells, an initial key step to wound healing. However, the role of the second messenger system, in particular, the cAMP signal, in regulating such remodeling remains controversial. Exchange protein activated by cAMP (Epac) has been identified as a new target molecule of the cAMP signal, which is independent from PKA. We thus examined whether Epac plays a distinct role from PKA in vascular remodeling. To examine the role of Epac and PKA in migration, we used primary culture smooth muscle cells from both the fetal and adult rat aorta. A cAMP analog selective to PKA, 8-(4-parachlorophenylthio)-cAMP (pCPT-cAMP), decreased cell migration, whereas an Epac-selective analog, 8-pCPT-2'-O-Me-cAMP, enhanced migration. Adenovirus-mediated gene transfer of PKA decreased cell migration, whereas that of Epac1 significantly enhanced cell migration. Striking morphological differences were observed between pCPT-cAMP- and 8-pCPT-2'-O-Me-cAMP-treated aortic smooth muscle cells. Furthermore, overexpression of Epac1 enhanced the development of neointimal formation in fetal rat aortic tissues in organ culture. When the mouse femoral artery was injured mechanically in vivo, we found that the expression of Epac1 was upregulated in vascular smooth muscle cells, whereas that of PKA was downregulated with the progress of neointimal thickening. Our findings suggest that Epac1, in opposition to PKA, increases vascular smooth muscle cell migration. Epac may thus play an important role in advancing vascular remodeling and restenosis upon vascular injury.

摘要

机械损伤后的血管重塑很大程度上依赖于平滑肌细胞的迁移,这是伤口愈合的初始关键步骤。然而,第二信使系统,特别是cAMP信号,在调节这种重塑中的作用仍存在争议。cAMP激活的交换蛋白(Epac)已被确定为cAMP信号的新靶分子,它独立于蛋白激酶A(PKA)。因此,我们研究了Epac在血管重塑中是否发挥与PKA不同的作用。为了研究Epac和PKA在迁移中的作用,我们使用了来自胎鼠和成年大鼠主动脉的原代培养平滑肌细胞。对PKA有选择性的cAMP类似物8-(4-对氯苯硫基)-cAMP(pCPT-cAMP)可减少细胞迁移,而对Epac有选择性的类似物8-pCPT-2'-O-甲基-cAMP则增强迁移。腺病毒介导的PKA基因转移减少细胞迁移,而Epac1的基因转移则显著增强细胞迁移。在pCPT-cAMP和8-pCPT-2'-O-甲基-cAMP处理的主动脉平滑肌细胞之间观察到明显的形态学差异。此外,Epac1的过表达增强了器官培养中胎鼠主动脉组织内膜增生的发展。当在体内机械损伤小鼠股动脉时,我们发现Epac1在血管平滑肌细胞中的表达上调,而PKA的表达随着内膜增厚的进展而下调。我们的研究结果表明,与PKA相反,Epac1增加血管平滑肌细胞迁移。因此,Epac可能在血管损伤后的血管重塑和再狭窄进展中起重要作用。

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