Walmsley Graham G, McArdle Adrian, Tevlin Ruth, Momeni Arash, Atashroo David, Hu Michael S, Feroze Abdullah H, Wong Victor W, Lorenz Peter H, Longaker Michael T, Wan Derrick C
Hagey Laboratory for Pediatric Regenerative Medicine, Department of Surgery, Plastic and Reconstructive Surgery, Stanford University School of Medicine, Stanford, CA, USA; Institute for Stem Cell Biology and Regenerative Medicine, Stanford University School of Medicine, Stanford, CA, USA.
Hagey Laboratory for Pediatric Regenerative Medicine, Department of Surgery, Plastic and Reconstructive Surgery, Stanford University School of Medicine, Stanford, CA, USA.
Nanomedicine. 2015 Jul;11(5):1253-63. doi: 10.1016/j.nano.2015.02.013. Epub 2015 Mar 16.
Nanotechnology represents a major frontier with potential to significantly advance the field of bone tissue engineering. Current limitations in regenerative strategies include impaired cellular proliferation and differentiation, insufficient mechanical strength of scaffolds, and inadequate production of extrinsic factors necessary for efficient osteogenesis. Here we review several major areas of research in nanotechnology with potential implications in bone regeneration: 1) nanoparticle-based methods for delivery of bioactive molecules, growth factors, and genetic material, 2) nanoparticle-mediated cell labeling and targeting, and 3) nano-based scaffold construction and modification to enhance physicochemical interactions, biocompatibility, mechanical stability, and cellular attachment/survival. As these technologies continue to evolve, ultimate translation to the clinical environment may allow for improved therapeutic outcomes in patients with large bone deficits and osteodegenerative diseases.
Traditionally, the reconstruction of bony defects has relied on the use of bone grafts. With advances in nanotechnology, there has been significant development of synthetic biomaterials. In this article, the authors provided a comprehensive review on current research in nanoparticle-based therapies for bone tissue engineering, which should be useful reading for clinicians as well as researchers in this field.
纳米技术是一个重要的前沿领域,有潜力极大地推动骨组织工程领域的发展。目前再生策略的局限性包括细胞增殖和分化受损、支架机械强度不足以及有效成骨所需的外源性因子产生不足。在此,我们综述了纳米技术在骨再生方面可能具有潜在影响的几个主要研究领域:1)基于纳米颗粒的生物活性分子、生长因子和遗传物质递送方法;2)纳米颗粒介导的细胞标记和靶向;3)基于纳米的支架构建和修饰,以增强物理化学相互作用、生物相容性、机械稳定性以及细胞附着/存活。随着这些技术不断发展,最终转化到临床环境可能会改善大骨缺损和骨退行性疾病患者的治疗效果。
传统上,骨缺损的重建依赖于骨移植的使用。随着纳米技术的进步,合成生物材料有了显著发展。在本文中,作者对基于纳米颗粒的骨组织工程治疗的当前研究进行了全面综述,这对于该领域的临床医生和研究人员来说都应是有价值的阅读材料。