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制备受生物启发的静电纺丝胶原蛋白/丝素蛋白/生物活性玻璃复合纳米纤维支架以提高骨修复治疗效率

Fabrication of Biologically Inspired Electrospun Collagen/Silk fibroin/bioactive glass composited nanofibrous scaffold to accelerate the treatment efficiency of bone repair.

作者信息

Wu Jianjun, Wang Shengxuan, Zheng Zhong, Li Jianbao

机构信息

Department of Spine Surgery, The Third Clinical Medical College, Fujian Medical University.

Department of Spine Surgery, Fuzhou Second Hospital, PR China.

出版信息

Regen Ther. 2022 Jun 30;21:122-138. doi: 10.1016/j.reth.2022.05.006. eCollection 2022 Dec.

Abstract

Bone disease and disorder treatment might be difficult because of its complicated nature. Millions of patients each year need bone substitutes that may help them recover quickly from a variety of illnesses. Synthetic bone replacements that mirror the structural, chemical, and biological features of bone matrix structure will be very helpful and in high demand. In this research, the inorganic bioactive glass nanoparticles matrixed with organic collagen and silk fibroin structure (COL/SF/CaO-SiO) were used to create multifunctional bone-like fibers in this study, which we describe here. The fiber structure is organized in a layered fashion comparable to the sequence in which apatite and neo tissue are formed. The amino groups in COL and SF combined with CaO-SiO to stabilize the resulting composite nanofiber. Morphological and functional studies confirmed that crystalline CaO-SiO nanoparticles with average sizes of 20 ± 5 nm are anchored on a 115 ± 10 nm COL/SF nanofiber matrix. X-ray photoelectron spectroscopic (XPS) results confirmed the presence of C, N, O, Ca, and Si in the composite fiber with an atomic percentage of 59.46, 3.30, 20.25, 3.38 and 13.61%. respectively. The biocompatibility examination with osteoblast cells (Saos-2) revealed that the CAL/SF/CaO-SiO composite nanofiber had enhanced osteogenic activity. Finally, when the CAL/SF/CaO-SiO composite nanofiber scaffolds were used to treat an osteoporotic bone defect in a rat model, the composite nanofiber scaffolds significantly promoted bone regeneration and vascularization. This novel fibrous scaffold class represents a potential breakthrough in the design of advanced materials for complicated bone regeneration.

摘要

由于骨疾病和病症的性质复杂,其治疗可能会很困难。每年有数百万患者需要骨替代物,这些替代物可能有助于他们从各种疾病中快速康复。能够模仿骨基质结构的结构、化学和生物学特性的合成骨替代物将非常有用且需求量很大。在本研究中,我们使用了与有机胶原蛋白和丝素蛋白结构(COL/SF/CaO-SiO)相结合的无机生物活性玻璃纳米颗粒来制造多功能骨样纤维,我们在此对其进行描述。纤维结构以分层方式组织,类似于磷灰石和新组织形成的顺序。COL和SF中的氨基与CaO-SiO结合,以稳定所得的复合纳米纤维。形态学和功能研究证实,平均尺寸为20±5nm的结晶CaO-SiO纳米颗粒锚定在115±10nm的COL/SF纳米纤维基质上。X射线光电子能谱(XPS)结果证实了复合纤维中存在C、N、O、Ca和Si,其原子百分比分别为59.46%、3.30%、20.25%、3.38%和13.61%。与成骨细胞(Saos-2)的生物相容性检查表明,CAL/SF/CaO-SiO复合纳米纤维具有增强的成骨活性。最后,当使用CAL/SF/CaO-SiO复合纳米纤维支架治疗大鼠模型中的骨质疏松性骨缺损时,复合纳米纤维支架显著促进了骨再生和血管生成。这种新型纤维支架类代表了用于复杂骨再生的先进材料设计中的潜在突破。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/714d/9253997/e7d726558dab/ga1.jpg

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