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1.
皮肤组织工程支架材料   总被引:4,自引:0,他引:4  
皮肤组织工程支架材料为种子细胞提供生长和代谢的环境,是人工皮肤研究中的重要内容,可按来源分为合成支架材料和天然支架材料。近几年的研究重点是:前者通过表面仿生技术增强其对细胞的黏附性;后者通过物理或化学方法提高其力学性能和渗透性等。今后应重点研究以下内容:深入研究合成支架材料的表面改性,进一步提高其引导细胞行为的功能,促进材料对细胞的黏附;进一步提高天然支架材料的微观渗透性和生物活性,促进毛细血管的长入;制备结构仿生支架材料及高活性复合支架材料。  相似文献   

2.
目的设计一套生物反应器,能针对不同支架材料———细胞复合物进行构建组织工程皮肤。方法根据皮肤的自身生长特点和不同支架材料-细胞复合物的特性,模拟皮肤的生长环境和力学环境,通过生物反应器解决组织工程皮肤构建中支架的装夹和气液界面问题。结果生物反应器由控制系统和生物反应器主体两部分构成,能提供对多种皮肤细胞复合物的动态培养。结论皮肤生物反应器能够满足不同组织工程皮肤产品的需要。能够形成气液界面和模拟生物力学的刺激。  相似文献   

3.
皮肤成纤维细胞复合纤维修复前交叉韧带的初步研究   总被引:2,自引:0,他引:2  
目的:本实验采用皮肤成纤维细胞修复原位冻融的前交叉韧带,以探索皮肤成纤维细胞作为构建组织工程前交叉韧带种子细胞的可行性.方法:体外分离培养兔皮肤成纤维细胞(SF),传代培养之后将细胞复合纤维生物蛋白胶,将细胞.纤维蛋白胶复合物植入原位冻融的前交叉韧带处.12周取材切片行HE染色及天狼猩红染色,使用偏振光显微镜观察.并使用图象分析软件对Ⅰ、Ⅲ型胶原含量进行半定量分析.结果:采用皮肤成纤维细胞复合纤维生物蛋白胶修复原位冻融的前交叉韧带的Ⅲ型胶原含量较单纯冻融的前交叉韧带明显减少,而较正常前交叉韧带则无明显统计学差异(P>0.05).结论:皮肤成纤维细胞可作为构建组织工程前交又韧带的较为理想的种子细胞选择.  相似文献   

4.
目的:研究新型聚羟丁酸酯作为组织工程软骨支架材料的可行性.方法:取幼兔软骨组织中软骨细胞体外培养扩增.实验组接种软骨细胞于支架材料上,体外培养两周后埋植于新西兰大白兔背部皮下;对照组埋入未接种细胞的支架材料.扫描电镜观察材料表面形态及细胞生长情况.分别于第4、8、12周取出标本,大体观察后进行HE和Masson染色,观察组织工程软骨形成情况.结果:扫描电镜观察可见裸材料孔隙分布均匀,形状不规则;细胞材料复合体体外培养两周后材料表面爬满细胞且生长状态良好.埋植材料取出后可见不同时间点实验组标本大小无明显变化,对照组标本逐渐变小.HE和Masson染色显示各组支架材料至12周时已被完全吸收;实验组12周时可见较成熟软骨组织;对照组支架材料被吸收后最终被纤维结缔组织取代.结论:此新型聚羟丁酸酯材料可作为组织工程软骨支架材料.  相似文献   

5.
目前,器官或组织移植是治疗器官衰竭或大范围组织缺损唯一长期有效的方法,但存在供体短缺、免疫排斥等问题。组织工程技术作为一种潜在的替代治疗方法,支架材料的选择是其中具有决定意义的组成部分。组织工程支架材料按其来源可分为天然及其改性修饰材料、人工合成与复合支架材料3种。组织工程目的就是修复临床上的病损组织或器官,并达到较理想的结构和功能的恢复。因此组织工程支架也必须从基本性质上具有一定的仿生化结构及功能,即"活"支架,这样才能彻底代替病损组织或器官。通过多种支架材料的优化组合(即材料的复合),对材料进行表面改性、制备工艺优化及添加细胞因子缓释微球等技术,模拟病损器官组织的特性及周围环境,有望打开组织工程的新局面。理想的组织工程支架应当以临床需要为根本目的,依靠材料学、分子生物学、工程学等多学科间的交叉研究,取各家之长,优化配比组合,达到仿生的目的。本课题组前期工作已经将骨髓间充质干细胞体外诱导分化为胆管上皮样细胞,并设计出左旋聚乳酸/聚己内酯共聚物(PLCL)胆道支架,内部混有包含生长因子的纳米缓释微球,供细胞因子的远期释放,支架内表面涂有基质胶/胶原混合层,且胶内加入bFGF、EGF,提供诱导因子的早期释放。将诱导细胞与PLCL胆道支架复合,制备组织工程胆管。文中综述了现存各类支架材料的研究状况,简单介绍了制备工艺、表面修饰等影响支架性能的因素,力求探索组织工程支架材料的选择策略。  相似文献   

6.
溶剂浇铸/颗粒沥滤技术制备组织工程支架材料   总被引:9,自引:0,他引:9  
生物可降解多孔三维细胞支架是组织工程化组织构建的基础。溶剂浇铸粒子沥滤技术是最简便、也是研究最广泛的一种多孔三维细胞支架制备技术,随着各种改进方法的出现,溶剂浇铸粒子沥滤已成为组织工程用多孔三维细胞支架的理想制备技术 。  相似文献   

7.
目的探讨聚己内酯(PCL)乳房形态支架用于组织工程乳房的构建的可能性。 方法通过熔融沉积3D打印制备形态仿生的PCL支架,测量其机械性能,并使用新西兰大白兔动物模型,皮下植入该PCL支架12周和18周后,利用核磁共振成像(MRI)观察支架内部新生组织分布情况,在组织学(HE、Masson及EVG染色)上评估支架内部的脂肪、纤维及血管的分布情况,并进一步使用qRT-PCR检测了12周时PCL支架内部组织的成脂相关基因(PPAR-γ、C/EBP-β、AP-2)、炎症相关基因TNF-α及巨噬细胞标记物F4-80的表达情况,同时使用凝胶渗透色谱法分析了PCL植入体内后平均分子量的变化。2组间均数比较采用独立样本t检验,多组间比较采用单因素方差分析,组间两两比较采用LSD-t检验,配对设计的均数比较采用配对t检验。 结果制备的PCL支架孔隙率为(85.30±1.12)%,压缩模量为(8.18±1.39)MPa,植入新西兰大白兔动物模型皮下12周后,MRI影像学显示脂肪组织已由支架周围向内部侵入,HE、Masson及EVG染色同样在该支架边缘观察到部分新生脂肪组织及血管,而支架内部则以疏松排列的纤维组织为主;与原生脂肪比较,12周PCL支架内组织的基因表达分析成脂相关基因C/EBPβ表达水平(2.32±0.28比1.00±0.02)升高,而巨噬细胞标记物F4/80表达(0.80±0.12比1.00±0.03)降低(P均< 0.01);18周后,HE染色证实支架内部已充满脂肪组织。基因表达证实,与原生脂肪比较,支架内部组织C/EBP-β (3.30±0.63比1.00±0.02),PPAR-γ (1.81±0.71比0.99±0.02)及AP-2表达水平(1.38±0.16比1.01±0.01)升高(P均< 0.01);而TNF-α(0.50±0.15比1.00±0.01)及F4/80表达水平(0.52±0.09比1.00±0.03)均降低(P均< 0.001)。而植入体内PCL支架的分子量(Mn)在18周内变化不大[(65.04±2.24)kDa比(64.20±4.09) kDa]。 结论PCL支架具有较好的生物相容性,可用于组织工程乳房的构建,该新西兰大白兔动物模型的建立有利于乳房组织工程的进一步临床转化。  相似文献   

8.
研究经乙基-(3-二甲基氨基丙基)碳化二亚胺盐酸盐(EDC)处理的Ⅱ型胶原-硫酸软骨素支架材料的性能特点,并在体外构建组织工程软骨。从鸡软骨中提取Ⅱ型胶原,以不同浓度的EDC为交联剂通过冷冻干燥的方法制备Ⅱ型胶原与硫酸软骨素复合支架并测定其理化性质。将体外培养的新生兔关节软骨细胞接种在Ⅱ型胶原与硫酸软骨素复合支架上,观察软骨细胞在支架上的生长形态并检测支架上软骨细胞分泌的糖胺聚糖含量及Ⅱ型胶原含量。结果表明:采用EDC与硫酸软骨素交联增加了支架的稳定性,最适的交联剂质量浓度为7 mg/mL。软骨细胞在复合支架上增殖分化良好,并保持软骨细胞特异分化的表型,分泌Ⅱ型胶原与蛋白多糖(GAG)。培养14 d后已有软骨样组织形成。  相似文献   

9.
聚多巴胺作为贻贝的仿生材料,可由多巴胺在碱性环境中自发形成。由于其较好的黏附特性以及组织相容性,在生命科学等领域有着广泛的应用。将聚多巴胺对材料进行表面修饰,既可以保护材料免受强氧化剂、酸碱等外界的侵蚀,也可以通过表面改性赋予材料新的功能,使其在各领域发挥更好的作用。对聚多巴胺的制备原理、生物性能,以及近年来在组织工程领域(骨组织、软骨组织、硬脑膜组织、血管组织、耳组织)的运用进行综述,以期为后续聚多巴胺作为组织工程黏附材料的研究提供参考。  相似文献   

10.
聚多巴胺作为贻贝的仿生材料,可由多巴胺在碱性环境中自发形成。由于其较好的黏附特性以及组织相容性,在生命科学等领域有着广泛的应用。将聚多巴胺对材料进行表面修饰,既可以保护材料免受强氧化剂、酸碱等外界的侵蚀,也可以通过表面改性赋予材料新的功能,使其在各领域发挥更好的作用。对聚多巴胺的制备原理、生物性能,以及近年来在组织工程领域(骨组织、软骨组织、硬脑膜组织、血管组织、耳组织)的运用进行综述,以期为后续聚多巴胺作为组织工程黏附材料的研究提供参考。  相似文献   

11.
A novel method to quantify cell migration through potential tissue engineering 3-d scaffolds is described. The migration assay uses a dot-blotting apparatus into which the tissue engineering matrix is placed on top of a nitrocellulose membrane. This assay was used to evaluate human dermal fibroblast migration through four porcine collagen matrices with varying pore diameters and pitch lengths. Fibroblasts were placed on the matrix surface, at between 1 ×103–3 × 103 cells mm–2, and left for 18 h to allow migration. The nitrocellulose membrane was stained with haematoxylin, the membrane digitised and the pixel intensity of the stained cells quantified. We showed that for all matrix variants, migration was more effective with a higher initial seeding density. The application of varying initial cell densities resulted in the greatest extent of cell migration through the matrix variant with pores of 30 m diameter and 400 m pitch length (i.e. 10.3% migration at 1 ×103 cells mm–2). This method was coupled with confocal microscopy to evaluate the depth of cell migration within the matrix. At a depth of 20 m cell numbers were similar to those on the matrix surface: at a depth of 100 m only a few cells were observed.  相似文献   

12.
A cell leakproof porous poly(DL ‐lactic‐co‐glycolic acid) (PLGA)‐collagen hybrid scaffold was prepared by wrapping the surfaces of a collagen sponge except the top surface for cell seeding with a bi‐layered PLGA mesh. The PLGA‐collagen hybrid scaffold had a structure consisting of a central collagen sponge formed inside a bi‐layered PLGA mesh cup. The hybrid scaffold showed high mechanical strength. The cell seeding efficiency was 90.0% when human mesenchymal stem cells (MSCs) were seeded in the hybrid scaffold. The central collagen sponge provided enough space for cell loading and supported cell adhesion, while the bi‐layered PLGA mesh cup protected against cell leakage and provided high mechanical strength for the collagen sponge to maintain its shape during cell culture. The MSCs in the hybrid scaffolds showed round cell morphology after 4 weeks culture in chondrogenic induction medium. Immunostaining demonstrated that type II collagen and cartilaginous proteoglycan were detected in the extracellular matrices. Gene expression analyses by real‐time PCR showed that the genes encoding type II collagen, aggrecan, and SOX9 were upregulated. These results indicated that the MSCs differentiated and formed cartilage‐like tissue when being cultured in the cell leakproof PLGA‐collagen hybrid scaffold. The cell leakproof PLGA‐collagen hybrid scaffolds should be useful for applications in cartilage tissue engineering. © 2009 American Institute of Chemical Engineers Biotechnol. Prog., 2010  相似文献   

13.
Fabrication of collagen hybridized elastic PLCL for tissue engineering   总被引:2,自引:0,他引:2  
Lim JI  Yu B  Lee YK 《Biotechnology letters》2008,30(12):2085-2090
Biodegradable elastic poly(l-lactide-co-ε-caprolactone) (PLCL) (50:50) copolymer was blended with collagen (0.05, 0.1 and 0.2% w/w) in an acidic dioxane solution to form a collagen/PLCL hybrid material suitable for tissue engineering applications. Stability and dispersivity of collagen on collagen/PLCL hybrid films and collagen coated PLCL films under mechanical stress were determined by a collagen release test and water contact angle measurement. Hybrid films had a higher stability than collagen-coated PLCL films. Elastic recovery as well as high interconnectivity and uniform pore morphology of the hybrid scaffolds were not affected by the collagen concentration. Fibroblasts (NIH-3T3) cell culture test was performed for cell growth and viability evaluation. Collagen concentration had little affect on the initial cell adhesion after 4 h cell culture; but after 48 h cell culture, increased cell proliferation on the hybrid films was observed. The hybrid material can be applied as a scaffold for vessel and cartilage regeneration for mechano-active tissue engineering.  相似文献   

14.
15.
Engineering adipose tissue that has the ability to engraft and establish a vascular supply is a laudable goal that has broad clinical relevance, particularly for tissue reconstruction. In this article, we developed novel microtissues from surface‐coated adipocyte/collagen/alginate microspheres and human umbilical vein endothelial cells (HUVECs) co‐cultures that resembled the components and structure of natural adipose tissue. Firstly, collagen/alginate hydrogel microspheres embedded with viable adipocytes were obtained to mimic fat lobules. Secondly, collagen fibrils were allowed to self‐assemble on the surface of the microspheres to mimic collagen fibrils surrounding the fat lobules in the natural adipose tissue and facilitate HUVEC attachment and co‐cultures formation. Thirdly, the channels formed by the gap among the microspheres served as the room for in vitro prevascularization and in vivo blood vessel development. The endothelial cell layer outside the microspheres was a starting point of rapid vascular ingrowth. Adipose tissue formation was analyzed for 12 weeks at 4‐week intervals by subcutaneous injection into the head of node mice. The vasculature in the regenerated tissue showed functional anastomosis with host blood vessels. Long‐term stability of volume and weight of the injection was observed, indicating that the vasculature formed within the constructs benefited the formation, maturity, and maintenance of adipose tissue. This study provides a microsurgical method for adipose regeneration and construction of biomimetic model for drug screening studies. Biotechnol. Bioeng. 2013; 110: 1430–1443. © 2012 Wiley Periodicals, Inc.  相似文献   

16.
Over 800,000 bone grafting procedures are performed in the United States annually, creating a demand for viable alternatives to autogenous bone, the grafting standard in osseous repair. The objective of this study was to examine the efficacy of a BMP-polymer matrix in inducing the expression of the osteoblastic phenotype and in vitro bone formation by muscle-derived cells. Specifically, we evaluated the ability of bone morphogenetic protein-7 (BMP-7), delivered from a poly(lactide-co-glycolide) (PLAGA) matrix, to induce the differentiation of cells derived from rabbit skeletal muscle into osteoblast-like cells and subsequently form mineralized tissue. Results confirmed that muscle-derived cells attached and proliferated on the PLAGA substrates. BMP-7 released from PLAGA induced the muscle-derived cells to increase bone marker expression and form mineralized cultures. These results demonstrate the efficacy of a BMP-polymer matrix in inducing the expression of the osteoblastic phenotype by muscle-derived cells and present a new paradigm for bone tissue engineering.  相似文献   

17.
The selection of a suitable scaffold matrix is critical for cell-based bone tissue engineering. This study aimed to identify and characterize natural marine sponges as potential bioscaffolds for osteogenesis. Callyspongiidae marine sponge samples were collected from the Fremantle coast of Western Australia. The sponge structure was assessed using scanning electron microscopy (SEM) and Hematoxylin and eosin. Mouse primary osteoblasts were seeded onto the sponge scaffold and immunostained with F-actin to assess cell attachment and aggregation. Alkaline phosphatase expression, von Kossa staining and real-time PCR were performed to examine the osteogenic potential of sponge samples. SEM revealed that the sponge skeleton possessed a collagenous fibrous network consisting of interconnecting channels and a porous structure that support cellular adhesion, aggregation and growth. The average pore size of the sponge skeleton was measured 100 to 300 μm in diameter. F-actin staining demonstrated that osteoblasts were able to anchor onto the surface of collagen fibres. Alkaline phosphatase expression, a marker of early osteoblast differentiation, was evident at 7 days although expression decreased steadily with long term culture. Using von Kossa staining, mineralisation nodules were evident after 21 days. Gene expression of osteoblast markers, osteocalcin and osteopontin, was also observed at 7, 14 and 21 days of culture. Together, these results suggest that the natural marine sponge is promising as a new scaffold for use in bone tissue engineering.  相似文献   

18.
Collagen is an essential component of tissues, which is the most abundant component in extracellular matrix and highly conserved across the animal kingdom. It can assemble into fiber and play an essential role in cell adhesion and growth and could be extremely useful in tissue engineering. In this study, the effect of tannic acid (TA) on the thermal, enzymatic and conformational stability of type I collagen has been investigated for the development of collagen‐based biomaterials. Interaction of TA with collagen demonstrates the role of hydrogen bonding and hydrophobic interaction in providing the thermal and enzymatic stability. Thermal analysis studies reveal that, hydrothermal stability of collagen increases as well as inhibits the breakdown of collagenase by formation of hydrogen bonds and hydrophobic interactions. TA binds to the collagen with high affinity because the structural flexibility of the collagen compensates for the structural rigidity of the phenolics. Increase in concentration of TA induces significant change in the conformation of triple helix. The free binding energy of TA with collagen‐like peptide was determined to be in the range of ?9.4 to ?11.2 kcal mol?1, which was calculated by using Autodock Vina software and showed numerous hydrophobic and hydrogen bond interactions. We anticipate that these collagen‐based biomaterials hold great potential for biomedical applications. © 2013 Wiley Periodicals, Inc. Biopolymers 101: 471–483, 2014.  相似文献   

19.

Abstract

Development of bioorganic–inorganic composites has drawn eyes to extensive attention in biomedical fields and tissue engineering. So many attempts to prepare hydroxyapatite (HA), in conjunction with various binders including polyvinyl alcohol (PVA), and collagen has performed for late 20 years. We applied a method based on the phase separation for making of polymer porous membranes. This procedure is induced through the addition of a small quantity of water (polymer-rich phase) to a solution with HA precursors (polymer-poor phase). Thermal and structural composite properties of collagen Hydrolysate (CH)–PVA/HA Polymer-Nano-Porous Membranes were analyzed by Design of experiment that was undertaken using D-optimal approach, to select the optimal combination of nano composites precursor. The resulted composite characters were investigated by Fourier transform infrared, scanning electron microscopy (SEM) and thermal gravimetric analysis. Based on the SEM images, this new method could be clearly concluded to porous CH–PVA/HA hybrid materials. Finally the hemocompatibility of nanocomposite membranes were evaluated by the hemolysis study.

Graphical Abstract

Open in a separate window  相似文献   

20.
Aims: To investigate the effectiveness of pulsed electric field (PEF) treatment as a new method for inactivation of micro-organisms in complex biomatrices and to assess this by quantifying the inactivation of Escherichia coli seeded in collagen gels. Methods and Results: PEF was applied to E. coli seeded collagen gels in static (nonflowing) chambers. The influence of electric field strength, pulse number and seeded cell densities were investigated. The highest level of inactivation was obtained at the maximum field strength of 45 kV cm−1. For low levels of E. coli contamination (103 CFU ml−1), PEF treatment resulted in no viable E. coli being recovered from the gels. However, PEF treatment of gels containing higher cell densities (≥104 CFU ml−1) did not achieve complete inactivation of E. coli. Conclusions: PEF treatment successfully inactivated E. coli seeded in collagen gels by 3 log10 CFU ml−1. Complete inactivation was hindered at high cell densities by the tailing effect observed. Significance and Impact of the Study: PEF shows potential as a novel, nondestructive method for decontamination of collagen-based matrices. Further investigation is required to ensure its compatibility with other proteins and therapeutic drugs for tissue engineering and drug delivery applications.  相似文献   

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