Mathematical modelling of cerebral haemodynamics and their effects on ICP

IF 1.9 Q3 CLINICAL NEUROLOGY Brain & spine Pub Date : 2024-01-01 DOI:10.1016/j.bas.2024.102772
Ka Hing Chu , Ihsane Olakorede , Erta Beqiri , Marek Czosnyka , Peter Smielewski
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引用次数: 0

Abstract

Introduction

Electrical-equivalence mathematical models that integrate vascular and cerebrospinal fluid (CSF) compartments perform well in simulations of dynamic cerebrovascular variations and their transient effects on intracranial pressure (ICP). However, ICP changes due to sustained vascular diameter changes have not been comprehensively examined. We hypothesise that changes in cerebrovascular resistance (CVR) alter the resistance of the bulk flow of interstitial fluid (ISF).

Research question

We hypothesise that changes in CVR alter the resistance of the bulk flow of ISF, thus allowing simulations of ICP in response to sustained vascular diameter changes.

Material and methods

A lumped parameter model with vascular and CSF compartments was constructed and converted into an electrical analogue. The flow and pressure responses to transient hyperaemic response test (THRT) and CSF infusion test (IT) were observed. Arterial blood pressure (ABP) was manipulated to simulate ICP plateau waves. The experiments were repeated with a modified model that included the ISF compartment.

Results

Simulations of the THRT produced identical cerebral blood flow (CBF) responses. ICP generated by the new model reacted in a similar manner as the original model during ITs. Plateau pressure reached during ITs was however higher in the ISF model. Only the latter was successful in simulating the onset of ICP plateau waves in response to selective blood pressure manipulations.

Discussion and conclusion

Our simulations highlighted the importance of including the ISF compartment, which provides mechanism explaining sustained haemodynamic influences on ICP. Consideration of such interactions enables accurate simulations of the cerebrovascular effects on ICP.

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脑血流动力学数学建模及其对 ICP 的影响
导言:在模拟脑血管动态变化及其对颅内压(ICP)的瞬时影响时,整合了血管和脑脊液(CSF)区的电等效数学模型表现出色。然而,因血管直径持续变化而导致的 ICP 变化尚未得到全面研究。我们假设脑血管阻力(CVR)的变化会改变大量间质流体(ISF)的阻力。研究问题我们假设 CVR 的变化会改变大量间质流体的阻力,从而可以模拟 ICP 对持续血管直径变化的响应。观察了瞬时高血容量反应试验(THRT)和 CSF 输注试验(IT)的血流和压力反应。通过调节动脉血压(ABP)来模拟 ICP 高原波。结果THRT模拟产生了相同的脑血流(CBF)反应。新模型产生的 ICP 在 ITs 期间的反应与原始模型相似。然而,ISF 模型在 ITs 期间达到的峰值压力更高。讨论和结论我们的模拟突出了包括 ISF 区室的重要性,它提供了解释 ICP 受持续血流动力学影响的机制。考虑到这种相互作用,就能准确模拟脑血管对 ICP 的影响。
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来源期刊
Brain & spine
Brain & spine Surgery
CiteScore
1.10
自引率
0.00%
发文量
0
审稿时长
71 days
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