Direction-selective Resistance to Cerebrospinal Fluid Flow as the Cause of Syringomyelia.

IF 2.3 4区 医学 Q2 CLINICAL NEUROLOGY Neurologia medico-chirurgica Pub Date : 2024-02-15 Epub Date: 2024-01-15 DOI:10.2176/jns-nmc.2023-0149
Han Soo Chang
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Abstract

The pathophysiology of syringomyelia remains poorly understood. Two prevailing challenges stand out: the need for a comprehensive understanding of its diverse types and the yet-to-be-explained mechanism of cerebrospinal fluid (CSF) retention in the syrinx despite its higher pressure than that in the adjacent subarachnoid space. Expanding on our previous proposal that direction-selective resistance to subarachnoid CSF flow drives syringomyelia genesis, this study uses a computer model to explore this mechanism further. We developed a computer simulation model to study spinal CSF dynamics, employing a lumped parameter approach with multiple compartments. This model replicated the to-and-fro movement of CSF in the spinal subarachnoid space and within an intraspinal channel. Subsequently, a direction-selective resistance-opposing only the caudal subarachnoid CSF flow-was introduced at a specific location within the subarachnoid space. Following the introduction of the direction-selective resistance, a consistent pressure increase was observed in the intraspinal channel downstream of the resistance. Importantly, this increase in pressure accumulated with every cycle of to-and-fro CSF flow. The accumulation results from the pressure drop across the resistance, and its effect on the spinal cord matrix creates a pumping action in the intraspinal channel. Our findings elucidate the mechanisms underlying our hypothesis that a direction-selective resistance to subarachnoid CSF flow causes syringomyelia. This comprehensively explains the various types of syringomyelia and resolves the puzzle of CSF retention in the syrinx despite a pressure gradient.

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脑脊液流向选择性阻力是鞘膜积液症的病因。
人们对鞘膜积液的病理生理学仍然知之甚少。其中最突出的挑战有两个:一是需要全面了解鞘膜积液的不同类型;二是尽管鞘膜积液的压力高于邻近的蛛网膜下腔,但脑脊液(CSF)潴留在鞘膜积液中的机制仍有待解释。蛛网膜下腔脑脊液流动的方向选择性阻力是鞘膜积液形成的原因,本研究利用计算机模型进一步探讨了这一机制。我们开发了一个计算机模拟模型来研究脊髓脑脊液的动力学,采用了多分区的集合参数法。该模型再现了 CSF 在脊髓蛛网膜下腔和椎管内通道中的来回运动。随后,在蛛网膜下腔内的特定位置引入了方向选择性阻力--只对抗尾部蛛网膜下腔 CSF 的流动。引入方向选择性阻力后,在阻力下游的椎管内通道观察到压力持续上升。重要的是,在 CSF 往返流动的每个周期中,压力的增加都会累积。这种累积来自于阻力上的压力下降,其对脊髓基质的影响在椎管内通道中产生了泵作用。我们的研究结果阐明了蛛网膜下腔脑脊液流动的方向选择性阻力导致鞘膜积液的假设机制。这全面解释了各种类型的鞘膜积液,并解决了尽管存在压力梯度,但 CSF 仍潴留在鞘膜内的难题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Neurologia medico-chirurgica
Neurologia medico-chirurgica 医学-临床神经学
CiteScore
3.70
自引率
10.50%
发文量
63
审稿时长
3-8 weeks
期刊介绍: Information not localized
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