Open cranium model for the study of cerebrovascular dynamics in intracranial hypertension

IF 2.7 4区 医学 Q2 BIOCHEMICAL RESEARCH METHODS Journal of Neuroscience Methods Pub Date : 2024-06-14 DOI:10.1016/j.jneumeth.2024.110196
Rohan Jaishankar , Daniel Teichmann , Alison Hayward , James W. Holsapple , Thomas Heldt
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Abstract

Background

Significant research has been devoted to developing noninvasive approaches to neuromonitoring. Clinical validation of such approaches is often limited, with minimal data available in the clinically relevant elevated ICP range.

New Method

To allow ultrasound-guided placement of an intraventricular catheter and to perform simultaneous long-duration ICP and ultrasound recordings of cerebral blood flow, we developed a large unilateral craniectomy in a swine model. We also used a microprocessor-controlled actuator for intraventricular saline infusion to reliably and reversibly manipulate ICP according to pre-determined profiles.

Results

The model was reproducible, resulting in over 80 hours of high-fidelity, multi-parameter physiological waveform recordings in twelve animals, with ICP ranging from 2 to 78 mmHg. ICP elevations were reversible and reproducible according to two predetermined profiles: a stepwise elevation up to an ICP of 30–35 mmHg and return to normotension, and a clinically significant plateau wave. Finally, ICP was elevated to extreme levels of greater than 60 mmHg, simulating extreme clinical emergency.

Comparison with existing methods

Existing methods for ICP monitoring in large animals typically relied on burr-hole approaches for catheter placement. Accurate catheter placement can be difficult in pigs, given the thickness of their skull. Additionally, ultrasound is significantly attenuated by the skull. The open cranium model overcomes these limitations.

Conclusions

The hemicraniectomy model allowed for verified placement of the intraventricular catheter, and reversible and reliable ICP manipulation over a wide range. The large dural window additionally allowed for long-duration recording of cerebral blood flow velocity from the middle cerebral artery.

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用于研究颅内高压症脑血管动力学的开颅模型
背景:大量研究致力于开发无创神经监测方法。这些方法的临床验证往往有限,在临床相关的 ICP 升高范围内可用的数据极少:新方法:为了能够在超声引导下放置脑室内导管,并同时进行长时间的 ICP 和脑血流超声记录,我们在猪模型中开发了一种大型单侧颅骨切除术。我们还使用微处理器控制的致动器进行脑室内生理盐水输注,按照预定的曲线可靠、可逆地控制 ICP:该模型具有良好的可重复性,对 12 只动物进行了超过 80 小时的高保真、多参数生理波形记录,ICP 范围从 2 到 78 毫米汞柱不等。ICP 升高是可逆的,并可根据两个预先确定的轮廓进行重现:ICP 逐步升高至 30 至 35 毫米汞柱,然后恢复正常张力,以及临床上显著的高原波。最后,ICP 升高到超过 60mmHg 的极端水平,模拟极端临床紧急情况:与现有方法的比较:现有的大型动物 ICP 监测方法通常依赖于毛细孔导管置入法。考虑到猪的头骨厚度,在猪身上很难准确放置导管。此外,超声波会被头骨明显衰减。开颅模型克服了这些限制:结论:半颅骨切除术模型可验证脑室内导管的置入位置,并可在较大范围内对 ICP 进行可逆且可靠的操作。此外,大硬脑膜窗还能长时间记录大脑中动脉的脑血流速度。
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来源期刊
Journal of Neuroscience Methods
Journal of Neuroscience Methods 医学-神经科学
CiteScore
7.10
自引率
3.30%
发文量
226
审稿时长
52 days
期刊介绍: The Journal of Neuroscience Methods publishes papers that describe new methods that are specifically for neuroscience research conducted in invertebrates, vertebrates or in man. Major methodological improvements or important refinements of established neuroscience methods are also considered for publication. The Journal''s Scope includes all aspects of contemporary neuroscience research, including anatomical, behavioural, biochemical, cellular, computational, molecular, invasive and non-invasive imaging, optogenetic, and physiological research investigations.
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