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采用可注射肝素锂水凝胶递送电镜 335-5p-四棱锥 DNA 纳米结构治疗激素相关性骨坏死中的挑战性骨缺损。

Delivery of MiR335-5p-Pendant Tetrahedron DNA Nanostructures Using an Injectable Heparin Lithium Hydrogel for Challenging Bone Defects in Steroid-Associated Osteonecrosis.

机构信息

Orthopedic Research Institution, Department of Orthopaedics, West China Hospital, Sichuan University, 37# Wuhou Guoxue Road, Chengdu, 610041, P. R. China.

Neurosurgery Research Laboratory, West China Hospital, Sichuan University, Chengdu, Sichuan, 610041, P. R. China.

出版信息

Adv Healthc Mater. 2022 Jan;11(1):e2101412. doi: 10.1002/adhm.202101412. Epub 2021 Nov 1.

Abstract

Corticosteroids-induced Dickkopf-1 (DKK1) upregulation and Wnt signaling inhibition result in bone metabolism disorder and steroid-associated osteonecrosis (SAON). Implanting biomaterials to regulate the Wnt pathway is a promising method to repair challenging bone defects associated with SAON. Here, tetrahedral DNA nanostructures (TDNs) are fabricated as gene carriers to deliver MiR335-5p, which targets DKK1 translation. Heparin lithium hydrogel (Li-hep-gel) is synthesized to act as a lithium and MiR@TDNs delivery agent. Finally, the repair effects on challenging bone defect in SAON using a MiR@TDNs/Li-hep-gel composite are assessed in vivo. The results reveal that MiR@TDNs are absorbed by bone mesenchymal stem cells (BMSCs) and increase cell viability and reduce apoptosis. Moreover, MiR@TDNs promote alkaline phosphatase expression and calcium nodular deposition, decrease lipid droplet expression of BMSCs, and improve vascular endothelial growth factor secretion and vascular-like structure formation in vitro. After MiR@TDNs/Li-hep-gel is implanted into the SAON model, the internal bone defect of osteonecrosis is repaired with a large area of new bone accompanied with neovascularization and reduced empty lacunae. In conclusion, MiR@TDNs/Li-hep-gel can provide dual delivery of lithium and MiR@TDNs, which synergistically upregulate the Wnt signaling pathway, enhancing bone regeneration in challenging bone defects, and can be potentially used in SAON repair.

摘要

皮质类固醇诱导的 Dickkopf-1(DKK1)上调和 Wnt 信号抑制导致骨代谢紊乱和类固醇相关骨坏死(SAON)。植入生物材料来调节 Wnt 通路是修复与 SAON 相关的具有挑战性的骨缺损的一种很有前途的方法。在这里,四面体 DNA 纳米结构(TDN)被构建为基因载体,以递送靶向 DKK1 翻译的 MiR335-5p。肝素锂水凝胶(Li-hep-gel)被合成以充当锂和 MiR@TDN 的递送剂。最后,在体内评估了使用 MiR@TDN/Li-hep-gel 复合材料修复 SAON 中具有挑战性的骨缺损的效果。结果表明,MiR@TDN 被骨髓间充质干细胞(BMSCs)吸收,并增加细胞活力和减少细胞凋亡。此外,MiR@TDN 促进碱性磷酸酶的表达和钙结节的沉积,减少 BMSCs 的脂滴表达,并改善血管内皮生长因子的分泌和血管样结构的形成。将 MiR@TDN/Li-hep-gel 植入 SAON 模型后,用大面积的新骨修复骨坏死的内部骨缺损,伴有新生血管形成和空骨陷窝减少。总之,MiR@TDN/Li-hep-gel 可以提供锂和 MiR@TDN 的双重递送,协同上调 Wnt 信号通路,增强挑战性骨缺损中的骨再生,有望用于 SAON 修复。

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