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1.
本文探讨了小鼠胚胎干细胞(ES细胞)诱导分化的血管内皮细胞永生化。在体外培养系统中,以维甲酸(RA)和转化生长因子-β1(TGF-β1)诱导小鼠胚胎干细胞(ES细胞)的拟胚体(EB)分化为“圆形细胞”和由这些“圆形细胞”组成的血管样结构。经光学和扫描电镜及免疫荧光等法分析检测,证明组成血管样结构的细胞具有专一性vWF荧光染色,表明是血管内皮样细胞。利用脂质体将人端粒酶催化亚基逆转录酶(hTERT)基因转染诱导分化中的“圆形细胞”。应用Dot-blot,RT-PCR,Western blot及免疫组织化学等方法分析、观察和证明了诱导分化的组成血管样结构的园形细胞和被hTERT基因转染的“圆形”细胞的形态和生物学特性。结果表明,携带hTERT基因的从ES细胞分化来的圆形细胞在体外可大量增殖,持续传代,95%具有血管内皮细胞的一些特有标志和管道化生长特性。因此,通过人端粒酶基因的转染途径可解决由ES细胞诱导分化而来的内皮细胞扩增和永生化问题,为构建组织工程化血管及其它人工血管的内皮化提供种子细胞来源打下基础。  相似文献   

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胚胎干细胞是从动物胚胎内细胞团分离的具有全能性的细胞.研究证明分离的小鼠胚胎干细胞在体外可以分化成心肌细胞,这一发现为小鼠胚胎干细胞向各种特化心脏细胞(动脉样细胞、血管样细胞、窦样细胞、心室样细胞、蒲肯野氏样细胞)分化提供了依据,使基因功能的研究在体外成为可能.1998年末人类ES细胞的成功培养奠定了心脏细胞的再生性治疗的战略基础.主要综述了目前ES细胞体外分化心肌细胞的进程,讨论了此进程对心脏基因研究的促进作用.  相似文献   

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蛋白O-连接岩藻糖基转移酶1 (Pofut1)基因缺失可导致Notch分子无法与配体结合并启动信号传递. 为研究Pofut1基因对哺乳动物胚胎干细胞(ESC)向神经分化的影响,利用Pofut1基因敲除的胚胎干细胞与野生型胚胎干细胞,经体外培养诱导拟胚体(EB)分化为神经细胞,计数分化为神经细胞的比例,采用细胞免疫组化染色和real-time PCR等方法,分析神经细胞特异性标志分子的表达. 结果显示,Pofut1基因缺失后,对EBC生长没有明显影响,分化过程中形成的拟胚体数量明显增多,分化的神经样细胞以及神经标志物分子的表达也明显多于对照组;Notch信号缺失对小鼠胚胎干细胞生长无明显影响,但可以促进ES细胞向神经细胞分化.  相似文献   

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构建Stella基因真核表达质粒,转染小鼠胚胎干细胞(Embryonic stem cells,ESC)并初步探讨Stella对减数分裂起始相关基因(Stra8)及胚胎干细胞多能性的影响。通过RT-PCR扩增目的基因,并连接至真核表达载体pEGFP-C1,利用重组质粒转染小鼠胚胎干细胞。对转染细胞进行荧光检测,确认Stella的表达,并利用免疫荧光及PCR检测转染细胞基因表达情况。酶切鉴定及测序分析表明成功构建含Stella基因的重组真核表达质粒,过表达Stella对ES细胞的增殖和形态学特征、进入减数分裂阶段的相关基因及其多能性基因的表达影响并不显著。故此得出结论:Stella在小鼠胚胎干细胞中能够正确表达,但对ES细胞的分化、Stra8基因的表达及其多能性基因的表达并无显著影响。  相似文献   

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胚胎干细胞向造血细胞分化研究   总被引:2,自引:0,他引:2  
刘革修  张洹 《生命科学》2003,15(1):21-25
胚胎干(embryonic stem,ES)细胞是来源于囊胚的内细胞团(inner cell mass,ICM),具有发育的全能性或多能性,能嵌合到早期胚胎,在体内可以参与各种组织发育甚至包括生殖细胞;在体外分化培养条件下,可以顺序分化出各种组织细胞,与体内完整胚胎发育过程相符合,而且可以通过调节ES细胞某些基因的表达而调节其分化。因此,ES细胞是研究哺乳动物早期胚胎发育、细胞分化及其关键基因鉴定的理想模型。另外,胚胎生殖脊(embryonic germ,EG)细胞系也具有同样的生物学特性,它是由早期胚胎的原始生殖脊(primordial germ,PG)细胞建株而来。最近研究显示:ES细胞在体外不但可以分化为所有造血细胞系,而且还可以分化为具有长期增殖能力的造血干细胞。作者就胚胎干细胞向造血细胞和造血干细胞分化及其诱导因子和调控基因的表达作一综述。  相似文献   

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目的:建立小鼠胚胎干细胞体外定向分化为血管内皮细胞和造血细胞的体系,并验证诱导后2种细胞的表面分子特征。方法:以小鼠胚胎成纤维细胞为饲养层,首先在无血清培养基StemPro中加入骨形态发生蛋白4(BMP4)、激活素A、碱性成纤维细胞生长因子(FGF-Basic)和血管内皮细胞生长因子(VEGF),诱导小鼠胚胎干细胞系R1/E 4 d后形成拟胚体;再将拟胚体消化后与OP9-DL1基质细胞共孵育,分别用干细胞因子(SCF)、VEGF和SCF、FLt3、白细胞介素3(IL-3)诱导向内皮和造血2个方向分化,并以CD31、CD45、CD144、Kit、CD201作为表面标志,流式检测诱导后细胞的表面分子特征和诱导效率;诱导10 d后免疫组化染色,进行内皮细胞的形态学鉴定。结果:诱导分化10 d后,免疫组化染色观察到多个内皮管状结构,流式检测CD31^+的内皮细胞比例为1.35%±0.05%,进一步分析CD31^+CD144^+CD45^-群体,有3.0%±0.2%的细胞表型为Kit^+CD201^+,提示该部分细胞可能是处于分化上游的内皮干祖细胞;CD45^+的造血细胞比例为35.0%±0.5%,其中0.35%±0.05%的细胞表达Kit和CD201,提示该部分细胞可能是处于分化上游的造血干祖细胞。结论:本研究将胚胎干细胞诱导为内皮细胞和造血细胞,并且能诱导出具有内皮、造血干祖细胞分子特征的细胞,可作为理想的体外诱导分化体系。  相似文献   

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本文利用小鼠ES细胞的拟胚体培养和三维胶原蛋白培养系统研究了外源rhTGF-β1对ES细胞分化为血管样结构的影响。结果发现,无论是培液中添加外源rhTGF-β1或细胞经基因转染而有过度表达的TGF-β1都对ES细胞形成血管样结构起着决定性的作用。培液中添加适量的TGF-β1抗体,则过度表达TGF-β1的ES-T6细胞分化为血管样结构的频率明显地受到抑制,相似于其亲本ES-5细胞的分化水平。在Ⅰ型胶原三维培养系统中的单层ES-5细胞培液中添加rhTGF-β1时,明显地促进ES-5细胞形成血管样结构。用层粘连蛋白和Ⅳ型胶原蛋白抗体分别作免疫荧光染色也观察到ES-T6细胞分化产生的上皮样细胞和圆形细胞都显示较强的荧光反应,这些现象提示TGF-β1可能通过调节细胞外基质成份而行使其在血管形成中的作用。同时,我们在ES-5细胞和ES-T6细胞的分化衍生物中都检测到bFGF的mRNA。因此,TGF-β1在血管样结构形成中的作用,除了它对于细胞外基质成份有关基因的直接调控外,还可能通过调节细胞的bFGF等一类与血管内皮细胞生长和分化相关的生长因子而间接地行使其生物学功能。在本实验系统中,ES-T6细胞分化为内皮细胞及血管样结构必需有低剂量RA的诱导,其作用机理有待研究。  相似文献   

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近年来,通过培养小鼠精原干细胞(spermatogonial stem cells,SSCs)获得了胚胎干细胞样细胞(,embryonic stem cell-like cells,ES样细胞).这些研究表明小鼠精原干细胞不仅具备特异分化为精子的干细胞潜能,而且具备胚胎干细胞(embryonic stem cell,ES)分化为三胚层的多向分化潜能.因此.这将有助于研究干细胞的分化调控机制,并且这些研究成果延伸至人类精原干细胞,也将为再生医学获取特殊的胚胎干细胞样细胞或特异分化的精子细胞开辟了蹊径.  相似文献   

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应用电打孔的方法将化学合成的NRSE/RE-1d sRNA转染小鼠胚胎干细胞,在去除LIF的条件下,直接接种培养,观察其分化情况,并对分化结果进行相关检测.结果显示分化细胞呈明显的神经样改变,免疫荧光显示NSE阳性率为(82.3±8.1)%.说明通过转染NRSE/RE-1d sRNA能有效地诱导小鼠胚胎干细胞向神经元细胞分化.  相似文献   

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A major obstacle to the immortalization of primary human cells and the establishment of human cell lines is telomere-controlled senescence. Telomere-controlled senescence is caused by the shortening of telomeres that occurs each time somatic human cells divide. The enzyme telomerase can prevent the erosion of telomeres and block the onset of telomere-controlled senescence, but its expression is restricted to the early stages of embryonic development, and in the adult, to rare cells of the blood, skin and digestive track. However, we and others have shown that the transfer of an exogenous hTERT cDNA, encoding the catalytic subunit of human telomerase, can be used to prevent telomere shortening, overcome telomere-controlled senescence, and immortalize primary human cells. Most importantly, hTERT alone can immortalize cells without causing cancer-associated changes or altering phenotypic properties. Primary human cells that have so far been established by the forced expression of hTERT alone include fibroblasts, retinal pigmented epithelial cells, endothelial cells, oesophageal squamous cells, mammary epithelial cells, keratinocytes, osteoblasts, and Nestin-positive cells of the pancreas. In this article, we discuss the use of hTERT to immortalize of human cells, the properties of hTERT-immortalized cells, and their applications to cancer research and tissue engineering.  相似文献   

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Like most somatic human cells, T lymphocytes have a limited replicative life span. This phenomenon, called senescence, presents a serious barrier to clinical applications that require large numbers of Ag-specific T cells such as adoptive transfer therapy. Ectopic expression of hTERT, the human catalytic subunit of the enzyme telomerase, permits fibroblasts and endothelial cells to avoid senescence and to become immortal. In an attempt to immortalize normal human CD8(+) T lymphocytes, we infected bulk cultures or clones of these cells with a retrovirus transducing an hTERT cDNA clone. More than 90% of transduced cells expressed the transgene, and the cell populations contained high levels of telomerase activity. Measuring the content of total telomere repeats in individual cells (by flowFISH) we found that ectopic hTERT expression reversed the gradual loss of telomeric DNA observed in control populations during long term culture. Telomere length in transduced cells reached the levels observed in freshly isolated normal CD8(+) lymphocytes. Nevertheless, all hTERT-transduced populations stopped to divide at the same time as nontransduced or vector-transduced control cells. When kept in IL-2 the arrested cells remained alive. Our results indicate that hTERT may be required but is not sufficient to immortalize human T lymphocytes.  相似文献   

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Recent evidence suggests the existence of progenitor cells in adult tissues that are capable of differentiating into vascular structures as well as into all hematopoietic cell lineages. Here we describe an efficient and reproducible method for generating large numbers of these bipotential progenitors-known as hemangioblasts-from human embryonic stem (hES) cells using an in vitro differentiation system. Blast cells expressed gene signatures characteristic of hemangioblasts, and could be expanded, cryopreserved and differentiated into multiple hematopoietic lineages as well as into endothelial cells. When we injected these cells into rats with diabetes or into mice with ischemia-reperfusion injury of the retina, they localized to the site of injury in the damaged vasculature and appeared to participate in repair. Injection of the cells also reduced the mortality rate after myocardial infarction and restored blood flow in hind limb ischemia in mouse models. Our data suggest that hES-derived blast cells (hES-BCs) could be important in vascular repair.  相似文献   

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Murine embryonic stem cells can differentiate in vitro to form cystic embryoid bodies (CEB) that contain different structures and cell types. The blood islands are one such structure that consist of immature hematopoietic cells surrounded by endothelial cells, the first identifiable vascular cells. CEBs differentiated in vitro developed blood islands initially, and subsequently these blood islands matured to form vascular channels containing hematopoietic cells. Phase contrast microscopy demonstrated the presence of channels in mature CEBs grown in suspension culture, and high resolution light and electron microscopy showed that the cells lining these channels were endothelial cells. The channels appeared less organized than the vasculature of the mature yolk sac. The hematopoietic cells were occasionally seen 'flowing' through the CEB channels, although their numbers were reduced relative to the yolk sac. Analysis of primary CEB cultures showed the presence of cells with two characteristics of endothelial cells: approximately 30% of the cells labelled with fluorescent acetylated low density lipoprotein and a small number of cells were positive for von Willebrand's factor by immunostaining. Thus we conclude that a primitive vasculature forms in CEBs differentiated in vitro, and that not only primary differentiation of endothelial cells but also some aspects of vascular maturation are intrinsic to this cell culture system. CEBs are therefore a useful model for the study of developmental blood vessel formation.  相似文献   

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Induction of vasculogenesis and hematopoiesis in vitro.   总被引:28,自引:0,他引:28  
Despite a large number of investigations of embryonic vascular development, in particular in avian embryos, the conditions under which the endothelial and hematopoietic cell lineages emerge remain unknown. As we demonstrate here, both endothelial and hematopoietic cells can be induced by treatment of dissociated quail epiblast with fibroblast growth factors in vitro. These cells aggregate in characteristic blood islands. In long-term culture, the induced endothelial cells gave rise to vascular structures in vitro, i.e. vasculogenesis. No induction was observed in the absence of fibroblast growth factors, and other growth factors like TGF-beta, TGF-alpha and EGF were not capable of inducing blood island formation. Thus, the dissociated quail epiblast provides a remarkably simple test system to investigate cell lineage diversification in higher vertebrates.  相似文献   

17.
It is well established that vascularization is critical for osteogenesis. However, adequate vascularization also remains one of the major challenges in tissue engineering of bone. This problem is further accentuated in regeneration of large volume of tissue. Although a complex process, vascularization involves reciprocal regulation and functional interaction between endothelial and osteoblast-like cells during osteogenesis. This prompted us to investigate the possibility of producing bone tissue both in vitro and ectopically in vivo using vascular endothelial cells because we hypothesized that the direct contact or interaction between vascular endothelial cells and bone marrow mesenchymal stem cells are of benefit to osteogenesis in vitro and in vivo. For that purpose we co-cultured rat bone marrow mesenchymal stem cells (MSC) and kidney vascular endothelial cells (VEC) with polylactide-glycolic acid scaffolds. In vitro experiments using alkaline phosphatase and osteocalcin assays demonstrated the proliferation and differentiation of MSC into osteoblast-like cells, especially the direct contact between VEC and MSC. In addition, histochemical analysis with CD31 and von-Willebrand factor staining showed that VEC retained their endothelial characteristics. In vivo implantation of MSC and VEC co-cultures into rat's muscle resulted in pre-vascular network-like structure established by the VEC in the PLGA. These structures developed into vascularized tissue, and increased the amount and size of the new bone compared to the control group (p < 0.05). These results suggest that the vascular endothelial cells could efficiently stimulate the in vitro proliferation and differentiation of osteoblast-like cells and promote osteogenesis in vivo by the direct contact or interaction with the MSC. This technique for optimal regeneration of bone should be further investigated.  相似文献   

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