Department of Biomedical Engineering, Indian Institute of Technology (IIT), Hyderabad, Kandi-502285, Sangareddy, Telangana, India.
Department of Materials Science and Metallurgical Engineering, Indian Institute of Technology, Hyderabad, Kandi-502285, Sangareddy, Telangana, India.
ACS Appl Bio Mater. 2023 Oct 16;6(10):4020-4041. doi: 10.1021/acsabm.3c00549. Epub 2023 Sep 10.
Bone tissue engineering (BTE) is a multidisciplinary area that can solve the limitation of conventional grafting methods by developing viable and biocompatible bone replacements. The three essential components of BTE, i.e., Scaffold material and Cells and Growth factors altogether, facilitate support and guide for bone formation, differentiation of the bone tissues, and enhancement in the cellular activities and bone regeneration. However, there is a scarcity of the appropriate materials that can match the mechanical property as well as functional similarity to native tissue, considering the bone as hard tissue. In such scenarios, nanotechnology can be leveraged upon to achieve the desired aspects of BTE, and that is the key point of this review article. This review article examines the significant areas of nanotechnology research that have an impact on regeneration of bone: (a) scaffold with nanomaterials helps to enhance physicochemical interactions, biocompatibility, mechanical stability, and attachment; (b) nanoparticle-based approaches for delivering bioactive chemicals, growth factors, and genetic material. The article begins with the introduction of components and healing mechanisms of bone and the factors associated with them. The focus of this article is on the various nanotopographies that are now being used in scaffold formation, by describing how they are made, and how these nanotopographies affect the immune system and potential underlying mechanisms. The advantages of 4D bioprinting in BTE by using nanoink have also been mentioned. Additionally, we have investigated the importance of an in silico approach for finding the interaction between drugs and their related receptors, which can help to formulate suitable systems for delivery. This review emphasizes the role of nanoscale approach and how it helps to increase the efficacy of parameters of scaffold as well as drug delivery system for tissue engineering and bone regeneration.
骨组织工程(BTE)是一个多学科领域,可以通过开发可行的和生物相容性的骨替代物来解决传统移植方法的局限性。BTE 的三个基本组成部分,即支架材料、细胞和生长因子,共同为骨形成、骨组织分化以及细胞活性和骨再生的增强提供支持和指导。然而,考虑到骨骼是硬组织,缺乏能够与天然组织相匹配的机械性能和功能相似的合适材料。在这种情况下,可以利用纳米技术来实现 BTE 的预期目标,这也是本文的关键。本文回顾了对骨再生有影响的纳米技术研究的重要领域:(a)纳米材料支架有助于增强物理化学相互作用、生物相容性、机械稳定性和附着性;(b)基于纳米颗粒的方法用于输送生物活性化学物质、生长因子和遗传物质。本文首先介绍了骨骼的组成和愈合机制以及与其相关的因素。本文的重点是现在在支架形成中使用的各种纳米形貌,描述了它们的制造方式以及这些纳米形貌如何影响免疫系统和潜在的潜在机制。还提到了使用纳米墨水在 BTE 中 4D 生物打印的优势。此外,我们还研究了计算方法在寻找药物与其相关受体相互作用方面的重要性,这有助于为药物输送系统制定合适的系统。本文强调了纳米尺度方法的作用,以及它如何帮助提高支架和药物输送系统的参数的功效,以用于组织工程和骨再生。