利用冷冻中间水凝胶状态制备位置性脑移模。

M. Potts, N. Bennion, S. Zappalá, David Marshall, Rob Harrison, S. L. Evans
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摘要

大脑-头骨系统的合成模型(模型)是研究手术事件的有用工具,否则很难在人类中直接研究。到目前为止,很少有研究能够复制完整的大脑颅骨解剖系统。需要这样的模型来研究神经外科中可能发生的更全局的机械事件,例如大脑的位置偏移。这项工作提出了一种制造生物模拟脑颅骨模型的新工作流程,该模型的特点是全水凝胶脑,具有充满液体的心室/裂隙空间、弹性体硬膜间隔和充满液体的颅骨。该工作流程的核心是利用已建立的脑组织替代物的冷冻中间固化状态,这允许采用一种新的成型和颅骨安装方法,从而更全面地再现解剖结构。体模的机械真实性通过体模大脑的压痕测试和仰卧-俯卧脑移位事件的模拟来验证,而几何真实性通过磁共振成像来验证。开发的体模捕捉到了一种新的仰卧向俯卧脑转移事件的测量结果,其大小准确再现了文献中的情况。
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Fabrication of a positional brain shift phantom through the utilization of the frozen intermediate hydrogel state.
Synthetic models (phantoms) of the brain-skull system are useful tools for the study of surgical events that are otherwise difficult to study directly in humans. To date, very few studies can be found which replicate the full anatomical brain-skull system. Such models are required to study the more global mechanical events that can occur in neurosurgery, such as positional brain shift. Presented in this work is a novel workflow for the fabrication of a biofidelic brain-skull phantom which features a full hydrogel brain with fluid-filled ventricle/fissure spaces, elastomer dural septa and fluid-filled skull. Central to this workflow is the utilization of the frozen intermediate curing state of an established brain tissue surrogate, which allows for a novel moulding and skull installation approach that permits a much fuller recreation of the anatomy. The mechanical realism of the phantom was validated through indentation testing of the phantom's brain and simulation of the supine to prone brain shift event, while the geometric realism was validated through magnetic resonance imaging. The developed phantom captured a novel measurement of the supine to prone brain shift event with a magnitude that accurately reproduces that seen in the literature.
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