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Composite polymer-bioceramic scaffolds with drug delivery capability for bone tissue engineering

机译:具有药物输送能力的复合聚合物-生物陶瓷支架,用于骨组织工程

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Introduction: Next-generation scaffolds for bone tissue engineering (BTE) should exhibit the appropriate combination of mechanical support and morphological guidance for cell proliferation and attachment while at the same time serving as matrices for sustained delivery of therapeutic drugs and/or biomolecular signals, such as growth factors. Drug delivery from BTE scaffolds to induce the formation of functional tissues, which may need to vary temporally and spatially, represents a versatile approach to manipulating the local environment for directing cell function and/or to treat common bone diseases or local infection. In addition, drug delivery from BTE is proposed to either increase the expression of tissue inductive factors or to block the expression of others factors that could inhibit bone tissue formation. Composite scaffolds which combine biopolymers and bioactive ceramics in mechanically competent 3D structures, including also organic-inorganic hybrids, are being widely developed for BTE, where the affinity and interaction between biomaterials and therapeutic drugs or biomolecular signals play a decisive role in controlling the release rate. Areas covered: This review covers current developments and applications of 3D composite scaffolds for BTE which exhibit the added capability of controlled delivery of therapeutic drugs or growth factors. A summary of drugs and biomolecules incorporated in composite scaffolds and approaches developed to combine biopolymers and bioceramics in composites for drug delivery systems for BTE is presented. Special attention is given to identify the main challenges and unmet needs of current designs and technologies for developing such multifunctional 3D composite scaffolds for BTE. Expert opinion: One of the major challenges for developing composite scaffolds for BTE is the incorporation of a drug delivery function of sufficient complexity to be able to induce the release patterns that may be necessary for effective osseointegration, vascularization and bone regeneration. Loading 3D scaffolds with different biomolecular agents should produce a codelivery system with different, predetermined release profiles. It is also envisaged that the number of relevant bioactive agents that can be loaded onto scaffolds will be increased, whilst the composite scaffold design should exploit synergistically the different degradation profiles of the organic and inorganic components.
机译:简介:用于骨组织工程(BTE)的下一代支架应表现出适当的机械支持和形态学指导,以促进细胞增殖和附着,同时充当持续递送治疗药物和/或生物分子信号的基质,例如作为增长因素。从BTE支架递送药物以诱导功能组织的形成(可能需要在时间和空间上变化)代表了一种操纵局部环境以指导细胞功能和/或治疗常见骨病或局部感染的通用方法。另外,提出了从BTE递送药物以增加组织诱导因子的表达或阻断可能抑制骨组织形成的其他因子的表达。在生物相容性3D结构中结合生物聚合物和生物活性陶瓷的复合支架,包括有机-无机混合物,正在广泛开发用于BTE,其中生物材料与治疗药物或生物分子信号之间的亲和力和相互作用在控制释放速率中起决定性作用。涵盖的领域:这篇综述涵盖了用于BTE的3D复合支架的当前开发和应用,这些支架具有控制药物或生长因子受控递送的附加功能。介绍了掺入复合支架中的药物和生物分子的概述,以及将生物聚合物和生物陶瓷结合在复合物中以用于BTE的药物输送系统的方法。特别注意确定用于开发此类BTE多功能3D复合支架的当前设计和技术的主要挑战和未满足的需求。专家意见:开发BTE复合支架的主要挑战之一是要引入足够复杂的药物传递功能,以能够诱导有效骨整合,血管化和骨再生可能需要的释放模式。用不同的生物分子试剂加载3D支架应产生具有不同的预定释放曲线的代码传递系统。还设想将增加可装载到支架上的相关生物活性剂的数量,同时复合支架设计应协同利用有机和无机组分的不同降解曲线。

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