循环应变上调血管内皮生长因子,减弱血管平滑肌细胞的增殖。

Q4 Neuroscience Vascular Cell Pub Date : 2011-09-19 DOI:10.1186/2045-824X-3-21
Joseph F Schad, Kate R Meltzer, Michael R Hicks, David S Beutler, Thanh V Cao, Paul R Standley
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引用次数: 35

摘要

目的:血管平滑肌细胞(VSMC)的肥大和增殖是应激诱导的局部和全身炎症细胞因子和生长因子的反应,可能与高血压、动脉粥样硬化和再狭窄有关。我们假设VSMC应变,模拟体外正常动脉压波形,导致48小时后增殖减弱和肥厚反应增加。方法:采用Flexcell Bioflex系统,测定无张力和生物力学张力培养大鼠A7R5 VSMC的形态学、增生性和肥厚反应。我们通过荧光光谱和蛋白质芯片测量了一氧化氮、关键细胞因子/生长因子和参与VSMC增殖的细胞内介质的分泌。我们还研究了VEGF在VSMC株诱导的增殖中的潜在作用。结果:蛋白质微阵列显示,在18小时的机械应变下,VEGF分泌显著增加,ELISA数据证实了这一结果。诱导凋亡的一氧化氮(NO)水平在培养48小时后也增加了43%。与外源性VEGF孵育的非张力细胞没有重现抗生丝作用。然而,抗vegf逆转了机械应变的抗生丝作用。VSMC裂解物抗体芯片显示MEK1、MEK2、phospho- mek1t385、T291、T298、phospho-Erk1/2T202+Y204/T185+T187和PKC异构体表达普遍升高,提示细胞处于增殖/炎症信号状态。相反,VSMC菌株将Cdk1、Cdk2、Cdk4和Cdk6的表达水平降低了25-50%,表明增殖信号级联被部分抑制。结论:体外循环生物力学应变能促进VSMC细胞肥大,抑制细胞增殖。我们还报道了MEK和ERK活化的上调,提示增生表型。然而,增殖反应似乎被增强的抗原性细胞因子VEGF、NO分泌和Cdk表达下调所消除。虽然外源性VEGF本身不足以促进静止VSMC表型,但我们提供的证据表明,菌株是诱导VSMC对VEGF抗生丝作用反应的必要成分。综上所述,这些数据表明VEGF在机械应变诱导的VSMC增殖和血管壁重塑中起关键作用。VEGF和/或NO是否抑制Erk 1/2远端信号传导目前正在研究中。
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Cyclic strain upregulates VEGF and attenuates proliferation of vascular smooth muscle cells.

Objective: Vascular smooth muscle cell (VSMC) hypertrophy and proliferation occur in response to strain-induced local and systemic inflammatory cytokines and growth factors which may contribute to hypertension, atherosclerosis, and restenosis. We hypothesize VSMC strain, modeling normotensive arterial pressure waveforms in vitro, results in attenuated proliferative and increased hypertrophic responses 48 hrs post-strain.

Methods: Using Flexcell Bioflex Systems we determined the morphological, hyperplastic and hypertrophic responses of non-strained and biomechanically strained cultured rat A7R5 VSMC. We measured secretion of nitric oxide, key cytokine/growth factors and intracellular mediators involved in VSMC proliferation via fluorescence spectroscopy and protein microarrays. We also investigated the potential roles of VEGF on VSMC strain-induced proliferation.

Results: Protein microarrays revealed significant increases in VEGF secretion in response to 18 hours mechanical strain, a result that ELISA data corroborated. Apoptosis-inducing nitric oxide (NO) levels also increased 43% 48 hrs post-strain. Non-strained cells incubated with exogenous VEGF did not reproduce the antimitogenic effect. However, anti-VEGF reversed the antimitogenic effect of mechanical strain. Antibody microarrays of strained VSMC lysates revealed MEK1, MEK2, phospo-MEK1T385, T291, T298, phospho-Erk1/2T202+Y204/T185+T187, and PKC isoforms expression were universally increased, suggesting a proliferative/inflammatory signaling state. Conversely, VSMC strain decreased expression levels of Cdk1, Cdk2, Cdk4, and Cdk6 by 25-50% suggesting a partially inhibited proliferative signaling cascade.

Conclusions: Subjecting VSMC to cyclic biomechanical strain in vitro promotes cell hypertrophy while attenuating cellular proliferation. We also report an upregulation of MEK and ERK activation suggestive of a proliferative phenotype. Hhowever, the proliferative response appears to be aborogated by enhanced antimitogenic cytokine VEGF, NO secretion and downregulation of Cdk expression. Although exogenous VEGF alone is not sufficient to promote the quiescent VSMC phenotype, we provide evidence suggesting that strain is a necessary component to induce VSMC response to the antimitogenic effects of VEGF. Taken together these data indicate that VEGF plays a critical role in mechanical strain-induced VSMC proliferation and vessel wall remodeling. Whether VEGF and/or NO inhibit signaling distal to Erk 1/2 is currently under investigation.

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Vascular Cell
Vascular Cell Neuroscience-Neurology
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