Zakaria Matthew, Allard Jerome, Garcia Jose, Matta Justin, Honjol Yazan, Schupbach Drew, Grant Michael, Mwale Fackson, Harvey Edward, Merle Geraldine
Surgical and Interventional Sciences Program, MUHC-RI, Montreal, Canada.
Department of Chemical Engineering, Polytechnique Montreal, Montreal, Canada.
Tissue Eng Part A. 2025 Apr;31(7-8):303-314. doi: 10.1089/ten.TEA.2024.0069. Epub 2024 Aug 7.
Fracture healing, a critical and complex biological process, often presents challenges in clinical practice with the current standards failing to fully address the medical needs for rapid and effective recovery. In this work, a localized cold therapy is investigated as an alternative approach to expedite bone healing. We hypothesized that optimized cold application can enhance bone healing within a fracture model by inducing hypoxia, leading to accelerated angiogenesis along with improved osteogenesis. A short, localized cold exposure is directly applied to the fracture site over a 4-week period in a mouse fracture model, aiming to assess its impact on bone formation through mechanisms of angiogenesis and osteogenesis. Our results revealed a significantly greater volume of new bone tissue and enhanced vascularity at the fracture site in the cold-treated group compared with controls. Calcified tissue histology analysis showed that the accelerated callus maturation and development of the vascular network following cold exposure were associated with an activity increase of alkaline phosphatase and transient receptor potential vanilloid 1. These biological changes were accompanied by a hypoxic environment induced during cold therapy. The study provides compelling evidence supporting the efficacy of intermittent cold therapy in accelerating fracture healing. These promising results highlight the need for further research in larger-scale studies and diverse fracture models, underlining the potential of cold therapy as a novel, noninvasive treatment strategy in orthopedic care.
骨折愈合是一个关键且复杂的生物学过程,在临床实践中常常面临挑战,当前的标准未能充分满足快速有效恢复的医疗需求。在这项研究中,我们研究了局部冷疗法作为加速骨愈合的替代方法。我们假设,优化的冷疗可以通过诱导缺氧,促进骨折模型中的骨愈合,从而加速血管生成并改善骨生成。在小鼠骨折模型中,在4周的时间内直接对骨折部位进行短期局部冷暴露,旨在通过血管生成和骨生成机制评估其对骨形成的影响。我们的结果显示,与对照组相比,冷疗组骨折部位的新骨组织体积明显更大,血管分布也有所增强。钙化组织组织学分析表明,冷暴露后骨痂成熟加速和血管网络发育与碱性磷酸酶和瞬时受体电位香草酸亚型1的活性增加有关。这些生物学变化伴随着冷疗期间诱导的缺氧环境。该研究提供了有力证据,支持间歇性冷疗在加速骨折愈合方面的疗效。这些有前景的结果凸显了在更大规模研究和多种骨折模型中进一步开展研究的必要性,强调了冷疗作为骨科护理中一种新型非侵入性治疗策略的潜力。