IEEE Trans Neural Syst Rehabil Eng. 2022;30:2168-2174. doi: 10.1109/TNSRE.2022.3161085. Epub 2022 Aug 11.
Therapeutic hypothermia (TH) is a common and effective technique to reduce inflammation and induce neuroprotection across a variety of diseases. Focal TH of the brain can avoid the side effects of systemic cooling. The degree and extent of focal TH are a function of cooling probe design and local brain thermoregulation processes. To refine focal TH probe design, with application-specific optimization, we develop precise computational models of brain thermodynamics under intense local cooling. Here, we present a novel multiphysics in silico model that can accurately predict brain response to focal cooling. The model was parameterized from previously described values of metabolic activity, thermal conductivity, and temperature-dependent cerebral perfusion. The model was validated experimentally using data from clinical cases where local cooling was induced intracranially and brain temperatures monitored in real-time with MR thermometry. The validated model was then used to identify optimal design probe parameters to maximize volumetric TH, including considering three stratifications of cooling (mild, moderate, and profound) to produce Volume of Tissue Cooled (VOTC) maps. We report cooling radius increases in a nearly linear fashion with probe length and decreasing probe surface temperature.
治疗性低温(TH)是一种常见且有效的技术,可减轻多种疾病的炎症并诱导神经保护。脑局部低温可以避免全身降温的副作用。局部低温的程度和范围是冷却探头设计和局部脑体温调节过程的函数。为了改进局部 TH 探头设计,我们采用特定于应用的优化方法,开发了在强烈局部冷却下的精确大脑热力学计算模型。在这里,我们提出了一种新颖的多物理场数值模型,可以准确预测大脑对局部冷却的反应。该模型的参数化是根据代谢活性、热导率和温度相关脑灌注的先前描述值进行的。该模型通过使用在颅内诱导局部冷却并使用磁共振测温实时监测脑温的临床病例中的数据进行了实验验证。然后,使用验证后的模型来确定最佳设计探头参数,以最大限度地提高容积 TH,包括考虑三种冷却分层(轻度、中度和深度)以生成冷却组织体积(VOTC)图。我们报告说,冷却半径几乎呈线性增加,与探头长度成正比,而探头表面温度则呈反比。