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Composite scaffolds for cartilage tissue engineering

机译:软骨组织工程复合支架

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Tissue engineering remains a promising therapeutic strategy for the repair or regeneration of diseased or damaged tissues. Previous approaches have typically focused on combining cells and bioactive molecules (e.g., growth factors, cytokines and DNA fragments) with a biomaterial scaffold that functions as a template to control the geometry of the newly formed tissue, while facilitating the attachment, proliferation, and differentiation of embedded cells. Biomaterial scaffolds also play a crucial role in determining the functional properties of engineered tissues, including biomechanical characteristics such as inho-mogeneity, anisotropy, nonlinearity or viscoelasticity. While single-phase, homogeneous materials have been used extensively to create numerous types of tissue constructs, there continue to be significant challenges in the development of scaffolds that can provide the functional properties of load-bearing tissues such as articular cartilage. In an attempt to create more complex scaffolds that promote the regeneration of functional engineered tissues, composite scaffolds comprising two or more distinct materials have been developed. This paper reviews various studies on the development and testing of composite scaffolds for the tissue engineering of articular cartilage, using techniques such as embedded fibers and textiles for reinforcement, embedded solid structures, multi-layered designs, or three-dimensionally woven composite materials. In many cases, the use of composite scaffolds can provide unique biomechanical and biological properties for the development of functional tissue engineering scaffolds. ^g>Articular cartilage, tissue engineering, stem cell, hydrogel, fiber, biomaterial
机译:组织工程仍然是修复或病变或受损组织的再生有希望的治疗策略。先前方法通常集中于结合细胞和生物活性分子(例如,生长因子,细胞因子和DNA片段)与生物材料支架,其用作模板,以控制新形成的组织的几何形状,同时有助于附着,增殖和分化嵌入式细胞。生物材料支架在确定工程化组织,包括生物力学特性如INHO-mogeneity,各向异性,非线性或粘弹性的功能特性也起着至关重要的作用。而单相,均匀的材料已经被广泛用于创建多种类型的组织构建物,有继续在支架可以提供承重组织的功能性质,例如关节软骨的发展显著挑战。在试图创建更复杂的支架促进功能工程化组织的再生,复合支架包括两个或更多不同的材料已被开发。本文回顾上发展了各种研究和对关节软骨的组织工程复合支架的测试,使用诸如嵌入纤维和纺织品进行加固,嵌入的固体结构,多层设计,或三维编织复合材料。在许多情况下,使用复合支架可以提供的功能性组织工程支架材料的发展提供了独特的生物力学和生物学特性。 ^ g>的关节软骨,组织工程,干细胞,水凝胶,纤维,生物材料

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