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一种新型的基于球囊的微创通用型猪脊髓损伤椎体后凸成形术模型。

A novel minimally invasive and versatile kyphoplasty balloon-based model of porcine spinal cord injury.

作者信息

Barber Sean M, Wolfe Tatiana, Steele Alexander G, Hoffman Kris, Hogan Matthew K, Frazier Allison, Tang Xiufeng, Sayenko Dimitry G, Horner Philip J

机构信息

Department of Neurosurgery, Houston Methodist Neurological Institute, Houston, TX, United States.

Center for Neuroregeneration, Houston Methodist Research Institute, Houston, TX, United States.

出版信息

Front Neurol. 2024 Jul 16;15:1422357. doi: 10.3389/fneur.2024.1422357. eCollection 2024.

Abstract

INTRODUCTION

Spinal cord injury (SCI) animal models often utilize an open surgical laminectomy, which results in animal morbidity and also leads to changes in spinal canal diameter, spinal cord perfusion, cerebrospinal fluid flow dynamics, and spinal stability which may confound SCI research. Moreover, the use of open surgical laminectomy for injury creation lacks realism when considering human SCI scenarios.

METHODS

We developed a novel, image-guided, minimally invasive, large animal model of SCI which utilizes a kyphoplasty balloon inserted into the epidural space via an interlaminar approach without the need for open surgery.

RESULTS

The model was validated in 5 Yucatán pigs with imaging, neurofunctional, histologic, and electrophysiologic findings consistent with a mild compression injury.

DISCUSSION

Few large animal models exist that have the potential to reproduce the mechanisms of spinal cord injury (SCI) commonly seen in humans, which in turn limits the relevance and applicability of SCI translational research. SCI research relies heavily on animal models, which typically involve an open surgical, dorsal laminectomy which is inherently invasive and may have untoward consequences on animal morbidity and spinal physiology that limit translational impact. We developed a minimally invasive, large animal model of spinal cord injury which utilizes a kyphoplasty balloon inserted percutaneously into the spinal epidural space. Balloon inflation results in a targeted, compressive spinal cord injury with histological and electrophysiological features directly relevant to human spinal cord injury cases without the need for invasive surgery. Balloon inflation pressure, length of time that balloon remains inflated, and speed of inflation may be modified to achieve variations in injury severity and subtype.

摘要

引言

脊髓损伤(SCI)动物模型通常采用开放性手术椎板切除术,这会导致动物发病,还会引起椎管直径、脊髓灌注、脑脊液流动动力学和脊柱稳定性的变化,这些可能会混淆SCI研究。此外,考虑到人类SCI的情况,使用开放性手术椎板切除术来造成损伤缺乏现实性。

方法

我们开发了一种新型的、图像引导的、微创的大型动物SCI模型,该模型通过椎间隙入路将椎体后凸成形球囊插入硬膜外间隙,无需进行开放性手术。

结果

该模型在5只尤卡坦猪身上得到验证,其影像学、神经功能、组织学和电生理结果与轻度压迫性损伤一致。

讨论

很少有大型动物模型有潜力重现人类常见的脊髓损伤(SCI)机制,这反过来限制了SCI转化研究的相关性和适用性。SCI研究严重依赖动物模型,这些模型通常涉及开放性手术、背部椎板切除术,这种手术本质上具有侵入性,可能会对动物发病率和脊柱生理产生不良后果,从而限制转化影响。我们开发了一种微创的大型动物脊髓损伤模型,该模型利用经皮插入脊髓硬膜外间隙的椎体后凸成形球囊。球囊膨胀会导致有针对性的、压迫性脊髓损伤,其组织学和电生理特征与人类脊髓损伤病例直接相关,无需进行侵入性手术。可以改变球囊膨胀压力、球囊保持膨胀的时间长度和膨胀速度,以实现损伤严重程度和亚型的变化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6b3e/11289774/b1ce89b571b8/fneur-15-1422357-g001.jpg

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