Suppr超能文献

壳聚糖支架与碳纳米管联合光生物调节治疗骨缺损的适宜性。

Suitability of Chitosan Scaffolds with Carbon Nanotubes for Bone Defects Treated with Photobiomodulation.

机构信息

Department of Morphology and Pathology, Jundiaí Medical School, Jundiaí 13202-550, Brazil.

Interunits Graduate Program in Bioengineering (EESC/FMRP/IQSC), University of Sao Paulo (USP), Sao Carlos 13566-590, Brazil.

出版信息

Int J Mol Sci. 2022 Jun 10;23(12):6503. doi: 10.3390/ijms23126503.

Abstract

Biomaterials have been investigated as an alternative for the treatment of bone defects, such as chitosan/carbon nanotubes scaffolds, which allow cell proliferation. However, bone regeneration can be accelerated by electrotherapeutic resources that act on bone metabolism, such as low-level laser therapy (LLLT). Thus, this study evaluated the regeneration of bone lesions grafted with chitosan/carbon nanotubes scaffolds and associated with LLLT. For this, a defect (3 mm) was created in the femur of thirty rats, which were divided into 6 groups: Control (G1/Control), LLLT (G2/Laser), Chitosan/Carbon Nanotubes (G3/C+CNTs), Chitosan/Carbon Nanotubes with LLLT (G4/C+CNTs+L), Mineralized Chitosan/Carbon Nanotubes (G5/C+CNTsM) and Mineralized Chitosan/Carbon Nanotubes with LLLT (G6/C+CNTsM+L). After 5 weeks, the biocompatibility of the chitosan/carbon nanotubes scaffolds was observed, with the absence of inflammatory infiltrates and fibrotic tissue. Bone neoformation was denser, thicker and voluminous in G6/C+CNTsM+L. Histomorphometric analyses showed that the relative percentage and standard deviations (mean ± SD) of new bone formation in groups G1 to G6 were 59.93 ± 3.04a (G1/Control), 70.83 ± 1.21b (G2/Laser), 70.09 ± 4.31b (G3/C+CNTs), 81.6 ± 5.74c (G4/C+CNTs+L), 81.4 ± 4.57c (G5/C+CNTsM) and 91.3 ± 4.81d (G6/C+CNTsM+L), respectively, with G6 showing a significant difference in relation to the other groups (a ≠ b ≠ c ≠ d; p < 0.05). Immunohistochemistry also revealed good expression of osteocalcin (OC), osteopontin (OP) and vascular endothelial growth factor (VEGF). It was concluded that chitosan-based carbon nanotube materials combined with LLLT effectively stimulated the bone healing process.

摘要

生物材料已被研究作为治疗骨缺损的替代物,例如壳聚糖/碳纳米管支架,它允许细胞增殖。然而,电疗资源可以通过作用于骨代谢来加速骨再生,例如低水平激光疗法(LLLT)。因此,本研究评估了壳聚糖/碳纳米管支架移植和 LLLT 联合治疗骨缺损的再生情况。为此,在 30 只大鼠的股骨中创建了一个 3mm 的缺陷,将它们分为 6 组:对照组(G1/Control)、LLLT 组(G2/Laser)、壳聚糖/碳纳米管组(G3/C+CNTs)、壳聚糖/碳纳米管加 LLLT 组(G4/C+CNTs+L)、矿化壳聚糖/碳纳米管组(G5/C+CNTsM)和矿化壳聚糖/碳纳米管加 LLLT 组(G6/C+CNTsM+L)。5 周后,观察壳聚糖/碳纳米管支架的生物相容性,未见炎症浸润和纤维组织。G6/C+CNTsM+L 组的新骨形成更加致密、厚实和体积更大。组织形态计量学分析显示,G1 至 G6 组的新生骨形成的相对百分比和标准差(均值±SD)分别为 59.93±3.04a(G1/Control)、70.83±1.21b(G2/Laser)、70.09±4.31b(G3/C+CNTs)、81.6±5.74c(G4/C+CNTs+L)、81.4±4.57c(G5/C+CNTsM)和 91.3±4.81d(G6/C+CNTsM+L),其中 G6 与其他组有显著差异(a≠b≠c≠d;p<0.05)。免疫组织化学也显示出良好的骨钙蛋白(OC)、骨桥蛋白(OP)和血管内皮生长因子(VEGF)的表达。结论:壳聚糖基碳纳米管材料与 LLLT 联合有效刺激了骨愈合过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4835/9223695/e588f4a089e8/ijms-23-06503-g001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验