无创太赫兹治疗通过临床前胫骨缺损模型的局部血管生成促进骨再生。

IF 1.8 Q2 SURGERY
Li Liu, Shaohui Geng, Yijin Jiang, Jingyuan Fu, Zixuan Shu, Hongxu Liu, Wenrui Jia, Guangrui Huang
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引用次数: 0

摘要

目的:骨缺损是一项重大的临床挑战,通常由于愈合延迟而需要手术干预。太赫兹(THz)辐射是一种非侵入性的物理能量疗法,已显示出通过生物分子相互作用促进骨再生的潜力。本研究旨在通过临床前大鼠胫骨骨折缺损模型,评价太赫兹辐射促进骨修复的治疗效果。方法:建立规范化大鼠胫骨骨缺损模型,每日0.1太赫兹,20 min/次,连续28 d。在整个研究期间,每周进行显微计算机断层扫描(CT)评估,而组织学评估(苏木精和伊红[HE]和Masson染色)、血管内皮生长因子(VEGF)免疫组织化学和血清生物标志物分析仅在28天的终点进行。显微ct成像、组织病理学染色和酪酰胺信号放大分析评估骨体积分数、胶原沉积和血管生成。血液生化指标也被评估,以确定全身代谢的影响。结果:第4周时,太赫兹治疗组新生骨形成明显高于对照组。显微ct分析显示,第3周和第4周皮质连续性和骨体积分数显著改善(p < 0.05)。HE和Masson染色显示胶原排列和小梁组织增强。IF检测显示局部新生骨中VEGFA表达升高(p < 0.01),提示血管生成增强。血清生化指标未见明显变化,提示局部而非全身作用。结论:太赫兹辐射通过增强成骨细胞活性和血管形成,在不改变全身代谢的情况下,有效地加速骨缺损愈合。这些发现突出了太赫兹疗法作为一种新的、无创的骨再生方法的潜力,值得进一步研究临床转化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Noninvasive Terahertz Therapy Promoted Bone Regeneration via Localized Angiogenesis in a Pre-Clinical Tibial Defect Model.

Objective: Bone defects present a significant clinical challenge, often requiring surgical intervention due to delayed healing. Terahertz (THz) radiation, a noninvasive physical energy-based therapy, has shown potential in promoting bone regeneration through biomolecular interactions. This study aims to evaluate the therapeutic efficacy of THz irradiation in enhancing bone repair using a pre-clinical rat tibial fracture defect model. Methods: A standardized tibial bone defect model was created in rats, with daily THz irradiation (0.1 THz, 20 min/session) administered continuously for 28 days. Micro-computed tomography (CT) evaluations were performed weekly throughout the study period, while histological assessments (hematoxylin and eosin [HE] and Masson staining), vascular endothelial growth factor (VEGF) immunohistochemistry, and serum biomarker analyses were exclusively conducted at the 28-days endpoint. Micro-CT imaging, histopathological staining, and tyramide signal amplification analyses were conducted to assess bone volume fraction, collagen deposition, and angiogenesis. Blood biochemical markers were also evaluated to determine systemic metabolic effects. Results: By week 4, the THz-treated group demonstrated a higher new bone formation compared with control group. Micro-CT analysis revealed significantly improved cortical continuity and bone volume fraction at weeks 3 and 4 (p < 0.05). HE and Masson staining showed enhanced collagen alignment and trabecular organization. The IF test indicated increased VEGFA expression in local new bone (p < 0.01), suggesting augmented angiogenesis. No significant changes were observed in serum biochemistry markers, indicating localized rather than systemic effects. Conclusions: THz radiation effectively accelerates bone defect healing by enhancing osteoblast activity and vascularization without systemic metabolic alterations. These findings highlight the potential of THz therapy as a novel, noninvasive approach for bone regeneration, warranting further research for clinical translation.

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来源期刊
CiteScore
4.10
自引率
0.00%
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0
期刊介绍: Photobiomodulation, Photomedicine, and Laser Surgery Editor-in-Chief: Michael R Hamblin, PhD Co-Editor-in-Chief: Heidi Abrahamse, PhD
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