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首页> 外文期刊>ACS Omega >Doping of Carbon Quantum Dots (CDs) in Calcium Phosphate Nanorods for Inducing Ectopic Chondrogenesis via Activation of the HIF-α/SOX-9 Pathway
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Doping of Carbon Quantum Dots (CDs) in Calcium Phosphate Nanorods for Inducing Ectopic Chondrogenesis via Activation of the HIF-α/SOX-9 Pathway

机译:通过激活HIF-α/ SOX-9途径对磷酸钙纳米棒中的碳量子点(CD)进行掺杂以诱导异位软骨形成。

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摘要

Calcium phosphate (CaPs)-based nanostructures are mostly known to induce osteogenic differentiation of mesenchymal stem cells (MSCs). However, in the current study, doping of carbon quantum dots into calcium phosphate nanorods (C-CaPs) has been observed to affect the differentiation pathway and enhanced the expression of chondrogenic genes instead of osteogenic ones. Here, we report a microwave-assisted single-step synthesis and doping of carbon dot into calcium phosphate nanorods and their ectopic chondrogenicity in a rodent subcutaneous model. High-resolution transmission electron microscopy, X-ray powder diffraction, and X-ray photoelectron spectroscopy studies show that the doping of carbon dots results in p-type semiconductor-like structure formation at the phosphate site of the bioceramic nanostructure, whereas UV–vis absorption shows a drastic drop in band-gap energy, which enhances the molecular oxygen reduction reaction. The cytocompatibility, free radical scavenging property, and fluorescence microscopy studies proved the applicability of the nanostructure as a cell imaging nanoprobe. Further, fluorescent three-dimensional printed composite scaffolds were prepared and implanted (with MSCs cultured on them) in the rodent model where evidence of ectopic chondrogenesis was observed on the 15th day and 30th day of study via histology and immunohistochemistry. Further, in vitro polymerase chain reaction results and immunohistochemistry results correlated with the physicochemical characterization results. The analysis suggested that doping of carbon quantum dots into CaP nanostructures could activate the HIF-α/SOX-9 pathway for ectopic chondrogenesis.
机译:基于磷酸钙(CaPs)的纳米结构最能诱导间充质干细胞(MSC)的成骨分化。然而,在当前的研究中,已发现将碳量子点掺入磷酸钙纳米棒(C-CaPs)中会影响分化途径并增强软骨生成基因而非成骨基因的表达。在这里,我们报告了一种微波辅助的一步合成和碳点掺杂到磷酸钙纳米棒中及其在啮齿动物皮下模型中的异位软骨形成性。高分辨率透射电子显微镜,X射线粉末衍射和X射线光电子能谱研究表明,碳点的掺杂导致在生物陶瓷纳米结构的磷酸盐位点形成p型半导体样结构,而UV-vis吸收显示带隙能量急剧下降,这增强了分子氧还原反应。细胞相容性,自由基清除性能和荧光显微镜研究证明了纳米结构作为细胞成像纳米探针的适用性。此外,制备了荧光三维印刷的复合支架,并将其植入(在其上培养了MSC)在啮齿动物模型中,通过组织学和免疫组织化学在研究的第15天和第30天观察到异位软骨形成的证据。此外,体外聚合酶链反应结果和免疫组化结果与理化特性结果相关。分析表明,将碳量子点掺杂到CaP纳米结构中可以激活异位软骨形成的HIF-α/ SOX-9途径。

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