class='kwd-title'>Keywords: Bone tissue engineer'/> Carbon based nanomaterials for tissue engineering of bone: Building new bone on small black scaffolds: A review
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Carbon based nanomaterials for tissue engineering of bone: Building new bone on small black scaffolds: A review

机译:用于骨骼组织工程的碳基纳米材料:在黑色小支架上构建新骨骼:综述

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摘要

class="kwd-title">Keywords: Bone tissue engineering, Carbon nanomaterials, Scaffold, Graphene oxide, Carbon nanotubes, Carbon dots, Nanodiamonds class="head no_bottom_margin" id="ab015title">AbstractTissue engineering is a rapidly-growing approach to replace and repair damaged and defective tissues in the human body. Every year, a large number of people require bone replacements for skeletal defects caused by accident or disease that cannot heal on their own. In the last decades, tissue engineering of bone has attracted much attention from biomedical scientists in academic and commercial laboratories. A vast range of biocompatible advanced materials has been used to form scaffolds upon which new bone can form. Carbon nanomaterial-based scaffolds are a key example, with the advantages of being biologically compatible, mechanically stable, and commercially available. They show remarkable ability to affect bone tissue regeneration, efficient cell proliferation and osteogenic differentiation. Basically, scaffolds are templates for growth, proliferation, regeneration, adhesion, and differentiation processes of bone stem cells that play a truly critical role in bone tissue engineering. The appropriate scaffold should supply a microenvironment for bone cells that is most similar to natural bone in the human body. A variety of carbon nanomaterials, such as graphene oxide (GO), carbon nanotubes (CNTs), fullerenes, carbon dots (CDs), nanodiamonds and their derivatives that are able to act as scaffolds for bone tissue engineering, are covered in this review. Broadly, the ability of the family of carbon nanomaterial-based scaffolds and their critical role in bone tissue engineering research are discussed. The significant stimulating effects on cell growth, low cytotoxicity, efficient nutrient delivery in the scaffold microenvironment, suitable functionalized chemical structures to facilitate cell-cell communication, and improvement in cell spreading are the main advantages of carbon nanomaterial-based scaffolds for bone tissue engineering.
机译:<!-fig ft0-> <!-fig @ position =“ position” anchor“ == f4-> <!-fig mode =” anchred“ f5-> <!-fig / graphic | fig / alternatives / graphic mode =“ anchored” m1-> class =“ kwd-title”>关键字:骨组织工程,碳纳米材料,支架,氧化石墨烯,碳纳米管,碳点,纳米金刚石组织工程学是一种快速发展的方法,用于替换和修复人体中受损和有缺陷的组织。每年,由于意外事故或无法自行治愈的疾病而导致的骨骼缺损,很多人都需要进行骨置换。在过去的几十年中,骨骼的组织工程学引起了学术和商业实验室中生物医学科学家的极大关注。各种各样的生物相容性先进材料已用于形成可在其上形成新骨骼的支架。碳纳米材料基支架是一个关键的例子,具有生物相容性,机械稳定性和可商购的优点。它们显示出显着的能力来影响骨组织再生,有效的细胞增殖和成骨分化。基本上,支架是骨骼干细胞生长,增殖,再生,粘附和分化过程的模板,这些骨骼干细胞在骨骼组织工程中起着至关重要的作用。适当的支架应为骨骼细胞提供与人体天然骨骼最相似的微环境。这篇综述涵盖了各种碳纳米材料,例如氧化石墨烯(GO),碳纳米管(CNT),富勒烯,碳点(CD),纳米金刚石及其衍生物,它们可以用作骨组织工程的支架。广泛地,讨论了基于碳纳米材料的支架家族的能力及其在骨组织工程研究中的关键作用。基于碳纳米材料的支架在骨组织工程中的主要优点是对细胞生长的显着刺激作用,低细胞毒性,在支架微环境中有效的营养传递,合适的功能化化学结构以促进细胞与细胞之间的通讯以及细胞铺展的改善。

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