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微小RNA-纳米纤维:用于骨再生的新一代生物活性支架综述

MiRNA-Nanofiber, the Next Generation of Bioactive Scaffolds for Bone Regeneration: A Review.

作者信息

Kharaghani Davood, Kurniwan Eben Bashir, Khan Muhammad Qamar, Yoshiko Yuji

机构信息

Department of Calcified Tissue Biology, Graduate School of Biomedical and Health Sciences, Hiroshima University, 1-2-3 Kasumi, Minami-ku, Hiroshima 734-8553, Japan.

School of Dentistry, Hiroshima University, 1-2-3 Kasumi, Minami-ku, Hiroshima 734-8553, Japan.

出版信息

Micromachines (Basel). 2021 Nov 29;12(12):1472. doi: 10.3390/mi12121472.

Abstract

Scaffold-based bone tissue engineering has been introduced as an alternative treatment option for bone grafting due to limitations in the allograft. Not only physical conditions but also biological conditions such as gene expression significantly impact bone regeneration. Scaffolds in composition with bioactive molecules such as miRNA mimics provide a platform to enhance migration, proliferation, and differentiation of osteoprogenitor cells for bone regeneration. Among scaffolds, fibrous structures showed significant advantages in promoting osteogenic differentiation and bone regeneration via delivering bioactive molecules over the past decade. Here, we reviewed the bone and bone fracture healing considerations for the impact of miRNAs on bone regeneration. We also examined the methods used to improve miRNA mimics uptake by cells, the fabrication of fibrous scaffolds, and the effective delivery of miRNA mimics using fibrous scaffold and their processes for bone development. Finally, we offer our view on the principal challenges of miRNA mimics delivery by nanofibers for bone tissue engineering.

摘要

由于同种异体骨移植存在局限性,基于支架的骨组织工程已作为一种替代的骨移植治疗选择被引入。不仅物理条件,而且诸如基因表达等生物学条件都会显著影响骨再生。与生物活性分子(如miRNA模拟物)组成的支架为增强骨祖细胞的迁移、增殖和分化以促进骨再生提供了一个平台。在过去十年中,在支架中,纤维结构在通过递送生物活性分子促进成骨分化和骨再生方面显示出显著优势。在这里,我们综述了miRNA对骨再生影响的骨和骨折愈合相关考量。我们还研究了用于改善细胞对miRNA模拟物摄取的方法、纤维支架的制造以及使用纤维支架有效递送miRNA模拟物及其骨发育过程。最后,我们就纳米纤维递送miRNA模拟物用于骨组织工程的主要挑战提出了我们的观点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/55a6/8707075/5427efeae0cb/micromachines-12-01472-g001.jpg

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