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1.
Thiol-ene photopolymerization offers a unique platform for the formation of peptide-functionalized poly(ethylene glycol) hydrogels and the encapsulation, culture and differentiation of cells. Specifically, this photoinitiated polymerization scheme occurs at neutral pH and can be controlled both spatially and temporally. Here, we have encapsulated human mesenchymal stem cells (hMSCs) in matrix metalloproteinase (MMP) degradable and cell-adhesive hydrogels using thiol-ene photopolymerization. We find that hMSCs survive equally well in this system, regardless of MMP-degradability. When hMSCs are encapsulated in these cell-degradable hydrogels, they survive and are able to proliferate. In classic hMSC differentiation medias, hMSCs locally remodel their microenvironment and take on characteristic morphologies; hMSCs cultured in growth or osteogenic differentiation media are less round, as measured by elliptical form factor, and are smaller than hMSCs cultured in chondrogenic or adipogenic differentiation media. In addition, hMSCs encapsulated in completely cell-degradable hydrogels and cultured in osteogenic, chondrogenic, or adipogenic differentiation media generally express increased levels of specific differentiation markers as compared to cells in hydrogels that are not cell-degradable. These studies demonstrate the ability to culture and differentiate hMSCs in MMP-degradable hydrogels polymerized via a thiol-ene reaction scheme and that increased cell-mediated hydrogel degradability facilitates directed differentiation of hMSCs.  相似文献   

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Electrospun silk-BMP-2 scaffolds for bone tissue engineering   总被引:24,自引:0,他引:24  
Li C  Vepari C  Jin HJ  Kim HJ  Kaplan DL 《Biomaterials》2006,27(16):3115-3124
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Yim EK  Wan AC  Le Visage C  Liao IC  Leong KW 《Biomaterials》2006,27(36):6111-6122
A biofunctional scaffold was constructed with human mesenchymal stem cells (hMSCs) encapsulated in polyelectrolyte complexation (PEC) fibers. Human MSCs were either encapsulated in PEC fibers and constructed into a fibrous scaffold or seeded on PEC fibrous scaffolds. The proliferation, chondrogenic and osteogenic differentiation of the encapsulated and seeded hMSCs were compared for a culture period of 5.5 weeks. Gene expression and extracellular matrix production showed evidences of chondrogenesis and osteogenesis in the cell-encapsulated scaffolds and cell-seeded scaffolds when the samples were cultured in the chondrogenic and osteogenic differentiation media, respectively. However, better cell proliferation and differentiation were observed on the hMSC-encapsulated scaffolds compared to the hMSC-seeded scaffolds. The study demonstrated that the cell-encapsulated PEC fibers could support proliferation and chondrogenic and osteogenic differentiation of the encapsulated-hMSCs. Together with our previous works, which demonstrated the feasibility of PEC fiber in controlled release of drug, protein and gene delivery, the reported PEC fibrous scaffold system will have the potential in composing a multi-component system for various tissue-engineering applications.  相似文献   

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Poly(ethylene glycol) (PEG) hydrogels functionalized with heparin were utilized as a three-dimensional culture system for human mesenchymal stem cells (hMSCs). Heparin-functionalized hydrogels supported hMSC viability, as quantified through live/dead imaging, and induced osteogenic differentiation, as measured by increased alkaline phosphatase (ALP) production and osteopontin (OPN) and collagen I (COL I) gene expression over the 5-week study. Further exploration of the potential mechanism of heparin-induced osteogenic differentiation was performed. Specifically, the availability of bone morphogenetic protein 2 (BMP2) and fibronectin (FN) in the culture system was controlled and hMSC osteogenic differentiation was evaluated as a function of the microenvironment. BMP2 availability increased both ALP production and OPN gene expression, while FN increased ALP production, but not OPN gene expression. Furthermore, immunostaining of integrin expression revealed that viability and differentiation were differentially affected by integrin production, where both alpha5beta1 and alphavbeta3 integrin-ligand interactions supported viability, while only the alpha5beta1 integrin played a role in hMSC osteogenic differentiation.  相似文献   

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Osteogenic differentiation of human mesenchymal stromal cells (hMSCs) may potentially be used in cell-based bone tissue-engineering applications to enhance the bone-forming potential of these cells. Osteogenic differentiation and adipogenic differentiation are thought to be mutually exclusive, and although several signaling pathways and cues that induce osteogenic or adipogenic differentiation, respectively, have been identified, there is no general consensus on how to optimally differentiate hMSCs into the osteogenic lineage. Some pathways have also been reported to be involved in both adipogenic and osteogenic differentiation, as for example, the protein kinase A (PKA) pathway, and the aim of this study was to investigate the role of cAMP/PKA signaling in differentiation of hMSCs in more detail. We show that activation of this pathway with dibutyryl-cAMP results in enhanced alkaline phosphatase expression, whereas another cAMP analog induces adipogenesis in long-term mineralization cultures. Adipogenic differentiation, induced by 8-bromo-cAMP, was accompanied by stronger PKA activity and higher expression of cAMP-responsive genes, suggesting that stronger activation correlates with adipogenic differentiation. In addition, a whole-genome expression analysis showed an increase in expression of adipogenic genes in 8-br-cAMP-treated cells. Furthermore, by means of quantitative polymerase chain reaction, we show differences in peroxisome proliferator-activated receptor-γ activation, either alone or in combination with dexamethasone, thus demonstrating differential effects of the PKA pathway, most likely depending on its mode of activation.  相似文献   

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Adipose-derived human mesenchymal stem cells (hMSCs) will be more valuable for tissue engineering applications if they can be extensively subcultured without loss of phenotype and multilineage differentiation ability. This study examined the effects of serial passaging on growth rate, gene expression, and differentiation potential of adipose-derived hMSCs. Differentiation was assessed by analyzing changes in messenger RNA (mRNA) expression of osteogenic and adipogenic marker genes and by determining production of calcium deposits and lipid vacuoles. Cells cultured in osteogenic medium for 2 weeks upregulated expression of alkaline phosphatase mRNA relative to cells in growth medium, and deposited calcium. Calcium deposition decreased in cells from passages 4 to 6 but returned to levels near or above those of primary cells by passage 10. Cells cultured in adipogenic medium upregulated expression of lipoprotein lipase and peroxisome proliferator activated receptor-gamma mRNA relative to cells in growth medium, and formed lipid vacuoles at all passages. By passage 8, however, cells in adipogenic medium also deposited calcium. Growth rate was stable through passage 5, then decreased. The results of this study indicate that adipose-derived hMSCs are capable of both adipogenic and osteogenic differentiation through 10 passages (34 population doublings) but that osteogenic differentiation may start to dominate at later passages.  相似文献   

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Mammalian artificial chromosomes (ACEs) transferred to autologous adult stem cells (SCs) provide a novel strategy for the ex vivo gene therapy of a variety of clinical indications. Unlike retroviral vectors, ACEs are stably maintained, autonomous, and nonintegrating. In this report we assessed the delivery efficiency of ACEs and evaluated the subsequent differentiation potential of ACE-transfected bone marrow-derived human mesenchymal stem cells (hMSCs). For this, an ACE carrying multiple copies of the red fluorescent protein (RFP) reporter gene was transferred under optimized conditions into hMSCs using standard cationic transfection reagents. RFP expression was detectable in 11% of the cells 4-5 days post-transfection. The RFP-expressing hMSCs were enriched by high-speed flow cytometry and maintained their potential to differentiate along adipogenic or osteogenic lineages. Fluorescent in situ hybridization and fluorescent microscopy demonstrated that the ACEs were stably maintained as single chromosomes and expressed the RFP transgenes in both differentiated cultures. These findings demonstrate the potential utility of ACEs for human adult SC ex vivo gene therapy.  相似文献   

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Li WJ  Tuli R  Huang X  Laquerriere P  Tuan RS 《Biomaterials》2005,26(25):5158-5166
Functional engineering of musculoskeletal tissues generally involves the use of differentiated or progenitor cells seeded with specific growth factors in biomaterial scaffolds. Ideally, the scaffold should be a functional and structural biomimetic of the native extracellular matrix and support multiple tissue morphogenesis. We have previously shown that electrospun, three-dimensional nanofibrous scaffolds that morphologically resemble collagen fibrils are capable of promoting favorable biological responses from seeded cells, indicative of their potential application for tissue engineering. In this study, we tested a three-dimensional nanofibrous scaffold fabricated from poly(epsilon-caprolactone) (PCL) for its ability to support and maintain multilineage differentiation of bone marrow-derived human mesenchymal stem cells (hMSCs) in vitro. hMSCs were seeded onto pre-fabricated nanofibrous scaffolds, and were induced to differentiate along adipogenic, chondrogenic, or osteogenic lineages by culturing in specific differentiation media. Histological and scanning electron microscopy observations, gene expression analysis, and immunohistochemical detection of lineage-specific marker molecules confirmed the formation of three-dimensional constructs containing cells differentiated into the specified cell types. These results suggest that the PCL-based nanofibrous scaffold is a promising candidate scaffold for cell-based, multiphasic tissue engineering.  相似文献   

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目的 观察体外培养的人骨髓间充质干细胞(hMSCs)的生物学特性,并探讨使其转分化为神经前体细胞(NPCs)的方法.方法以密度梯度离心和贴壁法相结合分离成人骨髓间充质干细胞,并观察细胞形态、生长、表面标记以及成骨和成软骨及成脂肪能力的情况.选用第3代细胞进行诱导,先经胚胎干细胞培养液扩增,再用加有5-氮胞苷和曲古菌素A的神经诱导液诱导,7d后,一部分样本进行Nestin、Sox2免疫荧光染色和RT-PCR检测;另一部分样本在含有B27的神经培养液中继续培养7d,然后进行NF-L的免疫荧光检测.结果分离培养的hMSCs纯度较高,CD29、CD44的阳性率均在90%以上;具有明显的成骨、成软骨和成脂肪能力;经5-氮杂胞苷和曲古菌素A作用后能向神经前体细胞分化,免疫荧光染色及RT-PCR结果显示,诱导后的细胞能特异性表达神经前体细胞标志物Nestin和Sox2;在神经培养液中继续培养后检测神经细胞标记物NF-L,可见较多阳性细胞.结论 hMSCs可在体外进行分离培养扩增,经药物修饰后具有向神经前体细胞分化的潜能.  相似文献   

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Human mesenchymal stem cells (hMSCs) are a population of multipotent bone marrow cells capable of differentiating along multiple lineages, including bone. Our recently published proteomics studies suggest that focusing of gene expression is the basis of hMSC osteogenic transdifferentiation, and that extracellular matrix proteins play an important role in controlling this focusing. Here, we show that application of a 3-5% tensile strain to a collagen I substrate stimulates osteogenesis in the attached hMSCs through gene focusing via a MAP kinase signaling pathway. Mechanical strain increases expression levels of well-established osteogenic marker genes while simultaneously reducing expression levels of marker genes from three alternate lineages (chondrogenic, adipogenic, and neurogenic). Mechanical strain also increases matrix mineralization (a hallmark of osteogenic differentiation) and activation of extracellular signal-related kinase 1/2 (ERK). Addition of the MEK inhibitor PD98059 to reduce ERK activation decreases osteogenic gene expression and matrix mineralization while also blocking strain-induced down-regulation of nonosteogenic lineage marker genes. These results demonstrate that mechanical strain enhances collagen I-induced gene focusing and osteogenic differentiation in hMSCs through the ERK MAP kinase signal transduction pathway.  相似文献   

16.
体外扩增过程中人骨髓间充质干细胞的增殖与分化规律   总被引:10,自引:2,他引:10  
目的:系统考察体外扩增过程中人骨髓间充质干细胞(MSC)的增殖与分化规律,为MSC任组织修复以及细胞治疗中的应用提供参考、方法:以全骨髓贴壁法分离成人肋骨骨髓MSC,在相同条件下分别考察各代细胞形态、生长、表面标记、细胞周期、成骨、成软骨及成脂肪能力的变化情况。结果:随代次增加,MSC增殖能力、成骨、成脂肪能力均有所下降,而成软骨能力无明显降低;成骨、成软骨及成脂肪能乃均保持到细胞衰老。存扩增过程中,MSC始终保持较高的纯度,CD29、CD44、CD105的阳性率均在90%以上,CD14、CD34和CD45的阳性率均在4%以下、结论:在体外培养过程中MSC干细胞特性逐渐丢失,其中向骨、脂肪方向的分化潜能较软骨方向更易失去;而多向分化能力的保持较之自我更新能力更为持久。MSC在7代以前可作为基础研究及临床应用的良好对象。  相似文献   

17.
Physiological tissues, including brain and other organs, have three-dimensional (3-D) aspects that need to be supported to model them in vitro. Here we report the use of cellulose microfibers combined with cross-linked gelatin to make biocompatible porous microscaffolds for the sustained growth of brain cell and human mesenchymal stem cells (hMSCs) in 3-D structure. Live imaging using confocal microscopy indicated that 3-D microscaffolds composed of gelatin or cellulose fiber/gelatin both supported brain cell adhesion and growth for 16 days in vitro. Cellulose microfiber/gelatin composites containing up to 75% cellulose fibers can withstand a higher mechanical load than gelatin alone, and composites also provided linear pathways along which brain cells could grow compared to more clumped cell growth in gelatin alone. Therefore, the bulk cellulose microfiber provides a novel skeleton in this new scaffold material. Cellulose fiber/gelatin scaffold supported hMSCs growth and extracellular matrix formation. hMSCs osteogenic and adipogenic assays indicated that hMSCs cultured in cellulose fiber/gelatin composite preserved the multilineage differentiation potential. As natural, biocompatible components, the combination of gelatin and cellulose microfibers, fabricated into 3-D matrices, may therefore provide optimal porosity and tensile strength for long-term maintenance and observation of cells.  相似文献   

18.
Despite their paracrine activites, cardiomyogenic differentiation of bone marrow (BM)-derived mesenchymal stem cells (MSCs) is thought to contribute to cardiac regeneration. To systematically evaluate the role of differentiation in MSC-mediated cardiac regeneration, the cardiomyogenic differentiation potential of human MSCs (hMSCs) and murine MSCs (mMSCs) was investigated in vitro and in vivo by inducing cardiomyogenic and noncardiomyogenic differentiation. Untreated hMSCs showed upregulation of cardiac tropopin I, cardiac actin, and myosin light chain mRNA and protein, and treatment of hMSCs with various cardiomyogenic differentiation media led to an enhanced expression of cardiomyogenic genes and proteins; however, no functional cardiomyogenic differentiation of hMSCs was observed. Moreover, co-culturing of hMSCs with cardiomyocytes derived from murine pluripotent cells (mcP19) or with murine fetal cardiomyocytes (mfCMCs) did not result in functional cardiomyogenic differentiation of hMSCs. Despite direct contact to beating mfCMCs, hMSCs could be effectively differentiated into cells of only the adipogenic and osteogenic lineage. After intramyocardial transplantation into a mouse model of myocardial infarction, Sca-1(+) mMSCs migrated to the infarcted area and survived at least 14 days but showed inconsistent evidence of functional cardiomyogenic differentiation. Neither in vitro treatment nor intramyocardial transplantation of MSCs reliably generated MSC-derived cardiomyocytes, indicating that functional cardiomyogenic differentiation of BM-derived MSCs is a rare event and, therefore, may not be the main contributor to cardiac regeneration.  相似文献   

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Expansion of human mesenchymal stem cells (hMSCs) in medium supplemented with fetal bovine serum (FBS) has a potential risk of transmitting viral and prion diseases and causing immunological rejection. The aim of our present study was to find a substitute for the traditional FBS in culture of hMSCs to facilitate the clinical application of hMSCs. We used autologous plasma derived from bone marrow (APM) as a substitute for FBS and found that, when cultured with APM, the cell surface markers and the proportion of hMSCs in the G(0)/G(1) phase and the S+G(2)/M phase resembled those cultured with FBS. However, there were fewer early apoptotic cells in APM-supplemented medium than in FBS (p < 0.01). APM resulted in much greater thymidine incorporation than FBS (p < 0.001). There were significantly more alkaline phosphatase (ALP)-positive fibroblast colony-forming units (CFU-Fs) covering larger areas in APM than in FBS (p < 0.01). Also, APM induced greater ALP activity, more mineralized nodules, and greater expression of osteogenic genes than did FBS. In addition, when cultured in adipogenic medium, there were fewer oil-red O-positive cells and lower expression of adipogenic gene with APM than with FBS. In conclusion, expansion of hMSCs in APM-supplemented medium instead of traditional FBS is more advantageous. It could promote cell proliferation, enhance osteogenic differentiation, and suppress adipogenic differentiation of hMSCs and is therefore a safer and more effective substitute for FBS in clinical cytotherapy processes.  相似文献   

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用密度梯度离心和贴壁法分离和纯化兔骨髓间充干细胞,建立诱导兔MSCs向脂肪细胞及成骨细胞表型转化的方法及条件。在成脂诱导剂或成骨诱导剂作用下,对原代和第2代兔MSCs进行成脂和成骨诱导培养,并鉴定成脂及成骨表型。结果表明:原代及第2代兔MSCs均有一定的成脂、成骨能力,且第2代细胞的分化能力较原代低。在诱导培养条件下,原代及第2代兔MSCs均能分化,成脂诱导21d,75%的兔MSCs转化为脂肪细胞;成骨诱导21d,75%的兔MSCs转化为成骨细胞。兔MSCs在适当的诱导条件下可快速分化为脂肪细胞或成骨细胞。  相似文献   

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