Biotechnology Division, CSIR-Institute of Himalayan Bioresource Technology, Palampur, Himachal Pradesh, 176061, India.
Academy of Scientific and Innovative Research (AcSIR), CSIR-Institute of Himalayan Bioresource Technology, Palampur, Himachal Pradesh, 176061, India.
J Biomed Mater Res B Appl Biomater. 2019 Oct;107(7):2433-2449. doi: 10.1002/jbm.b.34327. Epub 2019 Jan 28.
Tissue engineering (TE) is an emerging field where alternate/artificial tissues or organ substitutes are implanted to mimic the functionality of damaged or injured tissues. Earlier efforts were made to develop natural, synthetic, or semisynthetic materials for skin equivalents to treat burns or skin wounds. Nowadays, many more tissues like bone, cardiac, cartilage, heart, liver, cornea, blood vessels, and so forth are being engineered using 3-D biomaterial constructs or scaffolds that could deliver active molecules such as peptides or growth factors. Nanomaterials (NMs) due to their unique mechanical, electrical, and optical properties possess significant opportunities in TE applications. Traditional TE scaffolds were based on hydrolytically degradable macroporous materials, whereas current approaches emphasize on controlling cell behaviors and tissue formation by nano-scale topography that closely mimics the natural extracellular matrix. This review article gives a comprehensive outlook of different organ specific NMs which are being used for diversified TE applications. Varieties of NMs are known to serve as biological alternatives to repair or replace a portion or whole of the nonfunctional or damaged tissue. NMs may promote greater amounts of specific interactions stimulated at the cellular level, ultimately leading to more efficient new tissue formation. © 2019 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater 107B: 2433-2449, 2019.
组织工程(TE)是一个新兴领域,在该领域中,替代/人工组织或器官替代物被植入以模拟受损或受伤组织的功能。早期的努力是开发天然、合成或半合成材料的皮肤等效物来治疗烧伤或皮肤伤口。如今,越来越多的组织,如骨骼、心脏、软骨、心脏、肝脏、角膜、血管等,正在使用 3-D 生物材料构建体或支架进行工程设计,这些构建体或支架可以输送活性分子,如肽或生长因子。由于具有独特的机械、电气和光学特性,纳米材料(NMs)在组织工程应用中具有重要的机会。传统的 TE 支架基于可水解的多孔材料,而当前的方法则强调通过纳米级拓扑结构来控制细胞行为和组织形成,这种拓扑结构非常类似于天然细胞外基质。本文综述了不同器官特异性纳米材料在多样化的组织工程应用中的应用。众所周知,各种纳米材料可作为修复或替代部分或整个功能失调或受损组织的生物替代物。纳米材料可能会促进在细胞水平上刺激更多的特定相互作用,最终导致更有效的新组织形成。© 2019 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater 107B: 2433-2449, 2019.