神经损伤
再生(生物学)
可控性
坐骨神经
医学
周围神经损伤
病态的
神经病理性疼痛
动物模型
大鼠模型
夹紧
周围神经
神经科学
计算机科学
麻醉
病理
解剖
生物
内科学
夹紧
数学
应用数学
计算机视觉
细胞生物学
作者
Tuo Yang,Xilin Liu,Rangjuan Cao,Xiongyao Zhou,Weizhen Li,Wenzheng Wu,Wei Ma,Xianyu Zhang,Zhengxiao Guo,Shusen Cui
标识
DOI:10.1002/advs.202405265
摘要
Abstract Animal models of peripheral nerve injury (PNI) serve as the fundamental basis for the investigations of nerve injury, regeneration, and neuropathic pain. The injury properties of such models, including the intensity and duration, significantly influence the subsequent pathological changes, pain development, and therapeutic efficacy. However, precise control over the intensity and duration of nerve injury remains challenging within existing animal models, thereby impeding accurate and comparative assessments of relevant cases. Here, a new model that provides quantitative and off‐body controllable injury properties via a magnetically controlled clamp, is presented. The clamp can be implanted onto the rat sciatic nerve and exert varying degrees of compression under the control of an external magnetic field. It is demonstrated that this model can accurately simulate various degrees of pathology of human patients by adjusting the magnetic control and reveal specific pathological changes resulting from intensity heterogeneity that are challenging to detect previously. The controllability and quantifiability of this model may significantly reduce the uncertainty of central response and inter‐experimenter variability, facilitating precise investigations into nerve injury, regeneration, and pain mechanisms.
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