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1.
为探讨血管发育早期血管平滑肌细胞(VSMCs)募集和增殖特点,构建了含有SM22α启动子序列和增强型绿色荧光蛋白(EGFP)编码序列的质粒,建立了平滑肌特异性蛋白SM22α启动子控制下稳定表达EGFP的胚胎干细胞株(ESCs),以研究VSMCs的发育特点.实验发现,起源于SM22α-EGFPESCs形成的胚胎小体(EBs)在第11天开启SM22α启动子并表达EGFP.此后EGFP阳性细胞持续增加,在第30天达到高峰.VSMCs多起源于EBs中细胞密集处,应用免疫荧光染色及RT-PCR观察到EGFP阳性细胞表达多种平滑肌特异性标志物.在贴壁培养的胚胎小体中VSMCs形态可分为纺锤形及上皮样的多角形,慢速视频显微摄像测得纺锤形细胞迁移速度较上皮形细胞快.以上结果表明,SM22α-EGFPESCs分化形成的EBs可以模拟体内早期胚胎血管形成过程,从形态学上获得VSMCs募集分化的证据.  相似文献   

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目的:研究胚胎血管发育早期SMα-actin、SM22α、myocardin、平滑肌肌球蛋白重链(SMMHC)的表达规律,并初步探讨在此阶段血小板源性生长因子-BB(PDGF-BB)对血管平滑肌细胞(VSMCs)分化的影响。方法:采用转染平滑肌特异性蛋白SM22α启动子控制下表达增强型绿色荧光蛋白(GFP)报告基因载体的胚胎干细胞制备拟胚体(EBs),用免疫荧光染色、RT-PCR、Western blot分析SMα-actin、SM22α、myocardin、SMMHC的表达时相;然后分别用0μmol/L(对照组)、10μmol/L、50μmol/L AG1296(血小板源性生长因子受体抑制剂)处理EBs,观察三组SMα-actin、SM22α、myocardin、SMMHC在基因及蛋白水平上的表达变化。结果:胚胎血管发育早期SMα-actin、myocardin、SM22α、SMMHC分别在EBs第0(胚胎干细胞)、8、11、13d开始有表达。AG1296三种浓度处理后SMα-actin、myocardin、SM22α、SMMHC蛋白表达及myocardin、SM22α和SMMHC mRNA表达均无明显差异。结论:EBs发育过程中存在着自发的VSMCs分化,SMα-actin表达最早,依次为myocardin、SM22α、SMMHC;PDGF-BB对EBs分化早期VSMCs标志物表达的调控可能不是必要的。  相似文献   

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平滑肌22α(SM22α)是平滑肌细胞(VSMC)骨架相关蛋白,通过与肌动蛋白的作用参与VSMC骨架重构,是近年发现的一种VSMC分化标志物,其表达具有平滑肌组织特异性和细胞表型特异性.血管平滑肌细胞(VSMC)表型转化是动脉粥样硬化、高血压等血管重塑性疾病的共同病理生理过程.VSMC表型转化过程中平滑肌特异基因的表达变化和细胞骨架的重构是当前研究的热点问题之一.本文就SM22α的结构特征及其在VSMC中的作用机制进行综述.  相似文献   

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 植物叶绿体与原核生物分裂机制相似,其中MinE蛋白在细菌分裂过程中具有重要作用. 为了研究植物MinE蛋白在叶绿体分裂过程中的功能及其进化,利用RT PCR技术克隆了水稻叶绿体分裂相关基因OsMinE,并在GenBank登录(No. AY496951).OsMinE基因cDNA全长1 035 bp,其ORF为711 bp,编码236个氨基酸.与原核生物MinE蛋白相比,水稻OsMinE具有明显延伸的N端与C端.其N端102个氨基酸残基为预测的叶绿体导肽序列,C端延伸保守,推测赋予植物MinE蛋白新的功能.植物minE基因结构分析显示,水稻、拟南芥、杨树都仅含有1个内含子,且插入位置及相位相同.这表明,该内含子可能在单子叶、双子叶植物分化前产生.水稻OsMinE基因在大肠杆菌细胞中的表达严重影响了细胞的分裂,初步证明了水稻MinE蛋白与原核细胞MinE蛋白功能类似.水稻OsMinE基因的克隆为进一步研究叶绿体的分裂机制奠定了基础.  相似文献   

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SM22α:血管平滑肌细胞分化的分子标志   总被引:7,自引:0,他引:7  
SM22α是一种分化型血管平滑肌细胞(VSMC)的标志基因,编码一种22kDa的收缩调节蛋白。由于SM22α基因结构短小,表达具有VSMC特异性、调控机制较为清楚,因而被广泛用于VSMC发育分化的研究。利用该基因的表达调控特征,设计可在VSMC中高表达目的蛋白的人工启动子,是心血管病基因治疗的新策略。  相似文献   

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体外实验业已证明shh基因的启动子受HNF3β蛋白直接调控。为研究斑马鱼shh启动子在体内的作用模式,构建了由538bp斑马鱼shh启动子(包含两个HNF3β结合位点)与绿色荧光蛋白EGFP组成的表达载体,命名为pShh-EGFP。将pShh-EGFP注射到斑马鱼1-细胞期内的受精卵中,定期在倒置荧光显微镜下观察GFP的表达。GFP在原肠作用期就开始表达,主要发生在中轴下胚层中;在体节形成期,GFP在脊索细胞中表达,但未发现在神经底板细胞中表达。由此可见,含两个HNF3β结合区域的538bp的斑马鱼shh启动子具有脊索表达活性。  相似文献   

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为探讨转录因子E2F1在血管平滑肌细胞(vascular smooth muscle cells,VSMCs)表型转化中的作用及其对E1A激活基因阻遏子(cellular repressor of E1A-stimulated genes,CREG)表达调控的分子机制,应用生物信息学方法,定位人CREG(hCREG)基因启动子并确定转录因子E2F1在hCREG启动子区的结合位点,PCR方法克隆并构建hCREG基因启动子绿色荧光报告基因载体,以hCREG启动子区E2F1结合位点为模板,化学合成E2F1寡聚脱氧核苷酸(ODN)和错配E2F1ODN,利用转录因子"诱骗(Decoy)"策略,用E2F1ODN转染体外培养的VSMCs以阻断E2F1与hCREG基因启动子区的结合,蛋白质印迹(Western blot)分析检测阻断前后细胞内hCREG蛋白、报告基因绿色荧光蛋白(green fluorescent protein,GFP)和平滑肌细胞分化标志蛋白SMα-actin表达变化.结果显示:分化表型HITASY细胞中E2F1表达下调伴出核转位,而增殖表型的HITASY细胞中E2F1蛋白表达明显增加且定位于核内.进一步应用FuGene6瞬时转染E2F1ODN和错配E2F1ODN于体外培养HITASY细胞中,蛋白质印迹分析发现,转染E2F1ODN后,HITASY细胞中hCREG、SMα-actin和GFP表达均较未阻断组及错配组细胞明显增加.上述研究结果证实,E2F1是hCREG基因转录的重要调控因子,能够直接结合于hCREG启动子区阻遏hCREG表达,参与hCREG蛋白对VSMCs表型转化的调控作用.  相似文献   

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人同源盒基因NKX3.1对前列腺癌细胞的诱导凋亡作用   总被引:3,自引:0,他引:3  
构建人同源盒基因NKX3.1 cDNA真核表达载体,研究其在前列腺癌细胞PC-3、LNCaP 中的表达及对细胞的促凋亡作用.以人前列腺癌细胞LNCaP细胞中的总RNA为模板,RT-PCR扩增NKX3.1基因全长编码片段,将NKX3.1 cDNA重组到真核表达载体pcDNA3.1(+)中; 将pcDNA3.1-NKX3.1表达载体瞬时转染前列腺癌细胞PC-3和LNCaP 细胞,用RT-PCR和Western印迹检测NKX3.1 cDNA在转录水平和蛋白水平的表达;绘制细胞生长曲线,观察NKX3.1对前列腺癌细胞增殖的抑制作用;用DNA/ladder和流式细胞术检测NKX3.1对前列腺癌细胞凋亡的影响,进一步用RT PCR检测凋亡相关基因caspase3、caspase8、caspase9、Apaf1、survivin和Bcl2表达的变化.人同源盒基因NKX3.1 cDNA真核表达载体pcDNA3.1-NKX3.1经酶切及测序鉴定正确. pcDNA3.1-NKX3.1转染PC-3和LNCaP细胞后,经RT-PCR和Western印迹证明能有效表达NKX3.1.生长曲线显示,前列腺癌细胞转染NKX3.1 cDNA后细胞增殖受到抑制;前列腺癌细胞转染NKX3.1 cDNA 48 h后,DNA电泳呈现具有凋亡特征的DNA ladder;流式细胞术检测出现明显凋亡峰;RT-PCR检测凋亡相关基因.结果显示,caspase3、caspase8、caspase9基因表达明显增加,Bcl2基因表达明显减少.本研究成功构建了真核表达载体pcDNA3.1 NKX3.1, 转染PC3和LNCaP细胞后能有效表达,并对细胞具有诱导凋亡作用  相似文献   

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建立了应用流式细胞仪分选植物特定类型细胞的方法。以拟南芥(Arabidopsis thaliana)Wer::GFP转基因株系为材料,用激光共聚焦显微镜鉴定GFP的表达位置,采用酶解法制备拟南芥根尖原生质体,应用流式细胞仪荧光激活细胞分选技术(FACS)分选收集GFP阳性细胞,并提取细胞的RNA。结果表明,Wer::GFP转基因株系仅在根表皮发育早期的非根毛细胞中表达GFP;利用酶解法制备的根尖原生质体数目较多;从FACS分选收集的细胞中提取的RNA质量较好,可用于研究特定类型细胞的基因表达谱。应用流式细胞仪分选拟南芥非根毛细胞的方法为研究植物特定类型细胞的基因表达谱及基因功能奠定了技术基础。  相似文献   

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血管平滑肌细胞(vascular smooth muscle cell,VSMC)表型转化是血管损伤性疾病动脉粥样硬化、高血压和血管成形术后再狭窄等的共同病理生理过程.平滑肌22 alpha (smooth muscle 22 alpha, SM22α) 是一种VSMC分化标志物,其表达具有平滑肌组织特异性和细胞表型特异性. 该蛋白不仅作为一种肌动蛋白细胞骨架相关蛋白参与VSMC骨架组构和收缩调节,它还参与VSMC的增殖、炎症和氧化应激等进程. 本文就SM22α 的结构特征及其在VSMC血管损伤中的作用机制进行综述.  相似文献   

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Wang N  Ren GD  Zhou Z  Xu Y  Qin T  Yu RF  Zhang TC 《IUBMB life》2012,64(4):331-339
Several reports demonstrated that mesenchymal stem cells (MSCs) might differentiate into smooth muscle cells (SMCs) in vitro and in vivo. It has been shown that myocardin protein is a strong inducer of smooth muscle genes and MSCs can differentiate into SMCs in response to transforming growth factor-β (TGF-β). However, the relationship or link between myocardin and TGF-β3-induced MSC differentiation has not been fully elucidated. Here, we demonstrated that both myocardin and TGF-β3 were able to induce differentiation of rat bone marrow-derived MSCs toward smooth-muscle-like cell types, as evidenced by increasing expression of SMC-specific genes. Of note, myocardin cooperated with Smad2 to synergistically activate SM22α promoter and significantly enhance the expression of SM22α. Report assays with site-direct mutation analysis of SM22α promoter demonstrated that myocardin and Smad2 coactivated SM22α promoter mainly depending on CArG box and less on smad binding elements (SBE) sites as well. These findings reveal the cooperation of myocardin and Smad2 in process of MSC differentiation into SMCs.  相似文献   

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Two tissue-specific promoters were used to express both green fluorescent protein (GFP) and red fluorescent protein (RFP) in transgenic zebrafish embryos. One promoter (CK), derived from a cytokeratin gene, is active specifically in skin epithelia in embryos, and the other promoter (MLC) from a muscle-specific gene encodes a myosin light chain 2 polypeptide. When the 2 promoters drove the 2 reporter genes to express in the same embryos, both genes were faithfully expressed in the respective tissues, skin or muscle. When the 2 fluorescent proteins were expressed in the same skin or muscle cells under the same promoter, GFP fluorescence appeared earlier than RFP fluorescence in both skin and muscle tissues, probably owing to a higher detection sensitivity of GFP. However, RFP appeared to be more stable as its fluorescence steadily increased during development. Finally, F1 transgenic offspring were obtained expressing GFP in skin cells under the CK promoter and RFP in muscle cells under the MLC promoter. Our study demonstrates the feasibility of monitoring expression of multiple genes in different tissues in the same transgenic organism.  相似文献   

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Bone-marrow-derived mesenchymal stem cells (MSCs) can differentiate into a variety of cell types including smooth muscle cells (SMCs). We have attempted to demonstrate that, following treatment with transforming growth factor-beta 1 (TGF-beta1) and ascorbic acid (AA), human bone-marrow-derived MSCs differentiate into the SMC lineage for use in tissue engineering. Quantitative polymerase chain reaction for SMC-specific gene (alpha smooth muscle actin, h1-calponin, and SM22alpha) expression was performed on MSCs, which were cultured with various concentrations of TGF-beta1 or AA. TGF-beta1 had a tendency to up-regulate the expression of SMC-specific genes in a dose-dependent manner. The expression of SM22alpha was significantly up-regulated by 30 muM AA. We also investigated the additive effect of TGF-beta1 and AA for differentiation into SMCs and compared this effect with that of other factors including platelet-derived growth factor BB (PDGF-BB). In addition to SMC-specific gene expression, SMC-specific proteins increased by two to four times when TGF-beta1 and AA were used together compared with their administration alone. PDGF did not increase the expression of SMC-specific markers. MSCs cultured with TGF-beta1 and AA did not differentiate into osteoblasts and adipocytes. These results suggest that a combination of TGF-beta1 and AA is useful for the differentiation of MSCs into SMCs for use in tissue engineering.  相似文献   

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转录因子OCT4在维持和调控胚胎干细胞的多能性中发挥着重要的作用。Oct4基因启动子驱动标志蛋白的表达对研究胚胎干细胞多能性和建立iPs细胞有重要意义。由于GFP在慢病毒转染过程中常用作转染标记,计划构建兔Oct4基因启动子(rOct4)驱动红色荧光蛋白表达的载体,这将有利于兔ES细胞和iPS细胞制备的研究。通过PCR方法扩增rOct4,构建了rOct4驱动RFP基因的表达载体rOct4-RFP。经转染小鼠ES细胞验证正确后,将rOct4-RFP质粒转染兔成纤维细胞系获得rOct4-RFP成纤维细胞系。经过酶切和测序验证,证明rOct4-RFP构建成功,而且能够在小鼠Es细胞系E14中表达细胞红色荧光蛋白,并受细胞分化状态的调控。通过脂质体介导的基因转移、抗性筛选和PCR鉴定建立了rOct4-RFP转基因成纤维细胞系。  相似文献   

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