首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 156 毫秒
1.
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   

2.
多巴胺在碱性条件下会发生自聚合生成聚多巴胺。由于聚多巴胺具有超强黏附性能,在过去几年中其被大量应用于修饰各类生物材料。神经修复中使用的材料多为聚合物,但单独使用聚合物修复神经的效果不佳。聚多巴胺改性聚合物的亲水性和生物相容性均优于单一聚合物。除此以外,聚合物上的聚多巴胺涂层还可用于进一步修饰促进神经修复的分子。综述了聚多巴胺的合成机理、性能以及聚多巴胺改性各类聚合物在神经修复中的研究进展,并展望了该类材料的发展前景。  相似文献   

3.
聚肽是20种α-氨基酸中的一种或者几种氨基酸通过酰胺键(肽键)联成的长链分子,此外还包含有其它非肽链结构的组成成分,具有和蛋白质类似的二级结构.由于其独特的结构和性能,近年来在组织工程领域聚肽被广泛地研究和应用,主要被用作生长因子、支架材料表面改性物以及支架材料.从以上3个方面介绍了近年来聚肽在骨组织工程领域的研究和应用情况,并对聚肽在骨组织工程研究领域的应用前景进行了展望.  相似文献   

4.
聚己内酯(PCL)以其具有的良好生物相容性及其力学特点,在组织工程领域已经成为主要的生物支架材料之一。利用生物支架材料,组织工程的目的是对组织、器官的丧失或功能障碍进行修复与重建。本文综述了对生物支架材料聚己内酯(PCL)的研究进展以及其在组织工程中的应用。  相似文献   

5.
组织工程支架材料表面的微观和亚微观结构对细胞的黏附与生长有很重要的影响,纳米结构材料的应用为该结构展现了较广阔的前景。另外,组织工程支架材料的表面修饰及孔径调控对生物材料的改进有很重要的作用。介绍了生物材料的基本要求和分类,纳米结构材料在组织工程中的应用及生物材料表面修饰,以及以泡沫支架为例介绍材料孔径调控。  相似文献   

6.
随着关节韧带损伤发生率日益提高,人工材料植入重建韧带功能是重要治疗手段之一。植入后宿主细胞的趋向、黏附和迁移是人工材料在体内形成长期稳定生物连接的关键。以往研究集中于提高材料生物性,如增加材料亲水性、表面修饰、黏附适宜细胞以及复合细胞因子等,目前在张力环境下三维微孔结构对宿主细胞黏附、迁移、长入和分化影响的研究较少。本文拟以生物相容性良好的聚对苯二甲酸丁二醇酯(PET)材料作为载体,探讨在张力状态下新编PET的结构、孔径大小和孔隙率对细胞迁移等细胞生物学行为影响的研究现状和未来发展。为这些研究的深入指明方向,也为PET作为人工材料修复韧带损伤的临床应用奠定实验基础。  相似文献   

7.
贻贝足蛋白是一类通过贻贝足腺分泌的蛋白质复合物,与基质表面发生反应而产生极强的黏附作用。其在海洋环境中具有强黏附能力、可降解性和优秀的生物相容性等优点,因此常被用做生物医药黏合剂。但提取天然蛋白质受原料来源限制,且工艺烦琐导致价格高昂,阻碍了贻贝足蛋白的进一步应用发展。微生物合成的最新进展为贻贝足蛋白的产出提供了一种新思路,并且具有扩大规模生产的意义。主要综述了贻贝足蛋白的基因工程生产方法,总结了重组蛋白在黏附抗污涂层、组织工程材料等领域的应用现状。同时对其研究方向进行了展望,指出重组贻贝足蛋白的进一步发展的关键技术是解析蛋白质的构效和层级结构,在此基础上提高其异源表达水平,以获得更多生物功效性的衍生产品。  相似文献   

8.
贻贝足蛋白是一类通过贻贝足腺分泌的蛋白质复合物,与基质表面发生反应而产生极强的黏附作用。其在海洋环境中具有强黏附能力、可降解性和优秀的生物相容性等优点,因此常被用做生物医药黏合剂。但提取天然蛋白质受原料来源限制,且工艺烦琐导致价格高昂,阻碍了贻贝足蛋白的进一步应用发展。微生物合成的最新进展为贻贝足蛋白的产出提供了一种新思路,并且具有扩大规模生产的意义。主要综述了贻贝足蛋白的基因工程生产方法,总结了重组蛋白在黏附抗污涂层、组织工程材料等领域的应用现状。同时对其研究方向进行了展望,指出重组贻贝足蛋白的进一步发展的关键技术是解析蛋白质的构效和层级结构,在此基础上提高其异源表达水平,以获得更多生物功效性的衍生产品。  相似文献   

9.
目的:综述肌腱组织工程支架材料、细胞来源、制备技术及体外构建的研究进展.方法:查阅近期肌腱组织工程研究的相关文献,对组织工程肌腱支架的材料来源、制备技术,复合细胞种类,体外构建力学刺激等进行分析、归纳.结果:肌腱组织工程支架材料有天然材料、人工合成材料及复合材料等;制备技术包括静电纺丝和编织法等;其中支架材料的表面修饰是组织工程化肌腱构建的重要环节.与肌腱材料进行复合的种子细胞有肌腱细胞、骨髓间充质干细胞及成纤维细胞等.结论:复合材料是近年肌腱组织工程支架材料研究的重点,静电纺丝技术是一种具有潜力的支架制备技术,支架材料的表面修饰可促进细胞在支架上的黏附及肌腱的形成,种子细胞的研究仍是肌腱组织工程发展的瓶颈,周期性张力的存在为组织工程化肌腱的形成创造了条件.  相似文献   

10.
组织工程是生物支架材料、种子细胞和生物活性因子的有机组合,其中支架材料为种子细胞的黏附载体,为细胞的生长增殖及新陈代谢提供适宜的微环境,并最终被生物体逐渐降解而被再生组织替代。支架材料为周围组织提供机械支持,并引导再生组织按照预定结构和方向生长。同时,各种生物活性物质可以加入支架材料中,比如各种生长因子以及抗体等,扩大了支架材料的应用范围。丝素蛋白具有可控且缓慢的生物降解性,突出的机械性能,良好的生物相容性,支持多种细胞的黏附、生长和分化增殖,已经用于血管、骨、软骨及神经组织等方面的组织工程研究。  相似文献   

11.
Dopamine can be induced to polymerize on a variety of substrates, providing a robust and bioinspired surface coating that can be used to tune substrate surface properties and to sequester other species at the interface. We first exploit the facile nature of this surface modification procedure to generate an array of polydopamine that, in conjunction with fluorescent tags, provides the ability to detect multiple protein targets simultaneously and with great specificity. We then demonstrate the use of polydopamine as a matrix to confine gold nanoparticles at the surface of glass and graphene substrates. The nanoparticles (NPs) are used to template further gold nanoparticle growth in situ at the interface; subsequent calcination to remove the polydopamine matrix and sinter the NPs generates a highly active surface enhanced Raman scattering surface that allows for sensitive molecular detection. These varied uses in surface modification/biosensing demonstrate the utility of polydopamine as a functional surface modification for control of physical and electronic properties at the interface. © 2014 American Institute of Chemical Engineers Biotechnol. Prog., 31:299–306, 2015  相似文献   

12.
张家盛  吴刚  邱江 《生物工程学报》2021,37(8):2668-2677
种子细胞、生物材料和生长因子是组织工程三要素。生物材料模拟体内细胞外基质,为细胞提供良好的生长附着环境,维持细胞的活力和功能。材料表面的理化性质和表面改性分子直接影响细胞的粘附、增殖、迁移和分化等细胞行为,进而影响细胞功能和组织再生效果。材料表面修饰分子是细胞表面粘附和生长的直接接触位置,因此细胞与生物材料表面修饰分子的相互作用是组织工程的关键。文中重点介绍表面修饰分子对细胞表型及功能的影响,为组织工程关键问题的研究提供参考。  相似文献   

13.
摘要:丝素蛋白是一种天然的高分子纤维蛋白,其结构的特殊性决定了较好的机械性能,再因其优良的生物相容性、降解产物无毒等特点,被广泛用于各种材料的研究。通过各种化学修饰和负载生长因子等,使丝素蛋白在体内外具有促进成纤维细胞增殖分化的作用,拥有诱导创面愈合的功能,同时其可部分降解,具有缓释性能好,柔韧性强,透气以及透水等较好的理化性质不但在皮肤组织工程学中的广泛的应用,并且在敷料领域的研究也显示了其治疗烧烫伤、创伤达到抑制疤痕、促进伤口快速愈合的治疗效果。总之,通过改良丝素蛋白材料的加工方法,通过化学修饰、其他物质复合等手段得到适合于皮肤修复的具有优良性能的各种材料,是具有很大潜力的极具临床价值的皮肤修复材料。本文旨在综述国内及国外学者的各种关于丝素蛋白生物材料治疗皮肤损伤的研究最新进展。  相似文献   

14.
Bacterial cellulose (BC) is a nanocellulose form produced by some nonpathogenic bacteria. BC presents unique physical, chemical, and biological properties that make it a very versatile material and has found application in several fields, namely in food industry, cosmetics, and biomedicine. This review overviews the latest state‐of‐the‐art usage of BC on three important areas of the biomedical field, namely delivery systems, wound dressing and healing materials, and tissue engineering for regenerative medicine. BC will be reviewed as a promising biopolymer for the design and development of innovative materials for the mentioned applications. Overall, BC is shown to be an effective and versatile carrier for delivery systems, a safe and multicustomizable patch or graft for wound dressing and healing applications, and a material that can be further tuned to better adjust for each tissue engineering application, by using different methods.  相似文献   

15.
Chitosan and its derivatives for tissue engineering applications   总被引:23,自引:0,他引:23  
Tissue engineering is an important therapeutic strategy for present and future medicine. Recently, functional biomaterial researches have been directed towards the development of improved scaffolds for regenerative medicine. Chitosan is a natural polymer from renewable resources, obtained from shell of shellfish, and the wastes of the seafood industry. It has novel properties such as biocompatibility, biodegradability, antibacterial, and wound-healing activity. Furthermore, recent studies suggested that chitosan and its derivatives are promising candidates as a supporting material for tissue engineering applications owing to their porous structure, gel forming properties, ease of chemical modification, high affinity to in vivo macromolecules, and so on. In this review, we focus on the various types of chitosan derivatives and their use in various tissue engineering applications namely, skin, bone, cartilage, liver, nerve and blood vessel.  相似文献   

16.
The use of electric fields for measuring cell and tissue properties has a long history. However, the exploration of the use of electric fields in tissue engineering is only very recent. A review is given of the various methods by which electric fields may be used in tissue engineering, concentrating on the assembly of artificial tissues from its component cells using electrokinetics. A comparison is made of electrokinetic techniques with other physical cell manipulation techniques which can be used in the construction of artificial tissues.Key words: tissue engineering, electric field, microenvironment, electrokinetics, dielectrophoresis, polarity  相似文献   

17.
Social and economic development has driven considerable scientific and engineering efforts on the discovery, development and utilization of polymers. Polylactic acid (PLA) is one of the most promising biopolymers as it can be produced from nontoxic renewable feedstock. PLA has emerged as an important polymeric material for biomedical applications on account of its properties such as biocompatibility, biodegradability, mechanical strength and process ability. Lactic acid (LA) can be obtained by fermentation of sugars derived from renewable resources such as corn and sugarcane. PLA is thus an eco-friendly nontoxic polymer with features that permit use in the human body. Although PLA has a wide spectrum of applications, there are certain limitations such as slow degradation rate, hydrophobicity and low impact toughness associated with its use. Blending PLA with other polymers offers convenient options to improve associated properties or to generate novel PLA polymers/blends for target applications. A variety of PLA blends have been explored for various biomedical applications such as drug delivery, implants, sutures and tissue engineering. PLA and their copolymers are becoming widely used in tissue engineering for function restoration of impaired tissues due to their excellent biocompatibility and mechanical properties. The relationship between PLA material properties, manufacturing processes and development of products with desirable characteristics is described in this article. LA production, PLA synthesis and their applications in the biomedical field are also discussed.  相似文献   

18.
Modification of polymer substrates can essentially change the properties of material and thereby it allows their usage in attractive fields of material research. Laser treatment can be successfully applied for change in physico-chemical surface properties and/or for selective change of surface morphology with pattern construction. Three major applications of laser induced structures were described, cytocompatibility control, application as anti-bacterial substrate and plasmonic-based detection system. The construction of a second generation antibacterials using the synergic effect of either nanopatterning of polymers by application of a laser or noble metals deposition and consequent modification of nanostructures was presented.  相似文献   

19.
Silk has been used for centuries in the textile industry and as surgical sutures. In addition to its unique mechanical properties, silk possesses other properties, such as biocompatibility, biodegradability and ability to self-assemble, which make it an interesting material for biomedical applications. Although silk forms only fibers in nature, synthetic techniques can be used to control the processing of silk into different morphologies, such as scaffolds, films, hydrogels, microcapsules, and micro- and nanospheres. Moreover, the biotechnological production of silk proteins broadens the potential applications of silk. Synthetic silk genes have been designed. Genetic engineering enables modification of silk properties or the construction of a hybrid silk. Bioengineered hybrid silks consist of a silk sequence that self-assembles into the desired morphological structure and the sequence of a polypeptide that confers a function to the silk biomaterial. The functional domains can comprise binding sites for receptors, enzymes, drugs, metals or sugars, among others. Here, we review the current status of potential applications of silk biomaterials in the field of oncology with a focus on the generation of implantable, injectable and targeted drug delivery systems and the three-dimensional cancer models based on silk scaffolds for cancer research. However, the systems described could be applied in many biomedical fields.  相似文献   

20.
Functional tissue engineering of chondral and osteochondral constructs   总被引:5,自引:0,他引:5  
Lima EG  Mauck RL  Han SH  Park S  Ng KW  Ateshian GA  Hung CT 《Biorheology》2004,41(3-4):577-590
Due to the prevalence of osteoarthritis (OA) and damage to articular cartilage, coupled with the poor intrinsic healing capacity of this avascular connective tissue, there is a great demand for an articular cartilage substitute. As the bearing material of diarthrodial joints, articular cartilage has remarkable functional properties that have been difficult to reproduce in tissue-engineered constructs. We have previously demonstrated that by using a functional tissue engineering approach that incorporates mechanical loading into the long-term culture environment, one can enhance the development of mechanical properties in chondrocyte-seeded agarose constructs. As these gel constructs begin to achieve material properties similar to that of the native tissue, however, new challenges arise, including integration of the construct with the underlying native bone. To address this issue, we have developed a technique for producing gel constructs integrated into an underlying bony substrate. These osteochondral constructs develop cartilage-like extracellular matrix and material properties over time in free swelling culture. In this study, as a preliminary to loading such osteochondral constructs, finite element modeling (FEM) was used to predict the spatial and temporal stress, strain, and fluid flow fields within constructs subjected to dynamic deformational loading. The results of these models suggest that while chondral ("gel alone") constructs see a largely homogenous field of mechanical signals, osteochondral ("gel bone") constructs see a largely inhomogeneous distribution of mechanical signals. Such inhomogeneity in the mechanical environment may aid in the development of inhomogeneity in the engineered osteochondral constructs. Together with experimental observations, we anticipate that such modeling efforts will provide direction for our efforts aimed at the optimization of applied physical forces for the functional tissue engineering of an osteochondral articular cartilage substitute.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号