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腰椎感觉运动网络的时空激活

Spatiotemporal activation of lumbar sensorimotor networks.

作者信息

Steele A G, Taccola G, Dietz V, Frazier A M, Horner P J, Faraji A H, Sayenko D G

机构信息

Center for Neural Systems Restoration, Houston Methodist Research Institute, 6550 Fannin Street, Houston, TX 77030, United States of America; Department of Neurosurgery, Center for Neuroregeneration, Houston Methodist Research Institute, 6550 Fannin Street, Houston, TX 77030, United States of America.

Center for Neural Systems Restoration, Houston Methodist Research Institute, 6550 Fannin Street, Houston, TX 77030, United States of America; Neuroscience Department, International School for Advanced Studies (SISSA), Via Bonomea, Trieste, Italy.

出版信息

Exp Neurol. 2025 Jun;388:115206. doi: 10.1016/j.expneurol.2025.115206. Epub 2025 Mar 8.

Abstract

Spinal cord injury (SCI) research is primarily conducted using rodent models, which has resulted in significant advances, including novel treatment strategies that promote recovery. Unfortunately, many of these treatments do not have the same efficacy once translated to human clinical trials. Large animal models, such as Yucatan miniature pigs (minipigs), may provide a superior alternative to translating findings to human clinical trials due to their anatomical similarities to humans. However, porcine models are not widely used, which may be due in part to our inadequate understanding of the functional architecture of neural networks in the minipig spinal cord. This study utilized a clinical-grade epidural paddle array implanted over the lumbosacral enlargement of four minipigs. We then mapped the topographical distribution of spinally evoked motor potentials recorded in hindlimb muscles and cord dorsum potentials evoked by sub-motor threshold tibial nerve stimulation. Spatial correlation analysis suggests the motor networks and sensory networks innervated by the tibial nerve are distinct and separate within the minipig lumbosacral spinal cord. Our findings provide foundational knowledge on sensorimotor networks that are functionally diffused among the lumbar enlargement and possess distinct spatiotemporal patterns of activation along the cord for control of motor output and the processing of sensory input. The results reveal critical insights about the variability of electrophysiological measures across animals, offering a foundation for more individualized approaches in future studies. Furthermore, we demonstrate that using an epidural paddle array to map motor responses is a clinically feasible method, though our results highlight the subject-specific nature of these maps and their sensitivity to paddle location and orientation.

摘要

脊髓损伤(SCI)研究主要使用啮齿动物模型进行,这已带来了重大进展,包括促进恢复的新型治疗策略。不幸的是,许多这些治疗方法在转化为人体临床试验后效果并不相同。大型动物模型,如尤卡坦小型猪(小型猪),由于其与人类在解剖学上的相似性,可能为将研究结果转化为人体临床试验提供更好的选择。然而,猪模型并未得到广泛应用,这可能部分归因于我们对小型猪脊髓神经网络功能结构的了解不足。本研究在四只小型猪的腰骶膨大处植入了临床级硬膜外片状电极阵列。然后,我们绘制了后肢肌肉中记录的脊髓诱发运动电位以及运动阈下胫神经刺激诱发的脊髓背侧电位的地形图分布。空间相关性分析表明,在小型猪腰骶脊髓内,由胫神经支配的运动网络和感觉网络是不同且分开的。我们的研究结果提供了关于感觉运动网络的基础知识,这些网络在腰骶膨大之间功能分散,并且沿着脊髓具有不同的时空激活模式,用于控制运动输出和处理感觉输入。结果揭示了关于不同动物电生理测量变异性的关键见解,为未来研究中更个性化的方法提供了基础。此外,我们证明使用硬膜外片状电极阵列绘制运动反应是一种临床可行的方法,尽管我们的结果突出了这些图谱的个体特异性以及它们对电极片位置和方向的敏感性。

相似文献

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Spatiotemporal activation of lumbar sensorimotor networks.腰椎感觉运动网络的时空激活
Exp Neurol. 2025 Jun;388:115206. doi: 10.1016/j.expneurol.2025.115206. Epub 2025 Mar 8.

本文引用的文献

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The neuroanatomical-functional paradox in spinal cord injury.脊髓损伤的神经解剖-功能悖论。
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