Horn MacKenzie, Diprose William K, Pichardo Samuel, Demchuk Andrew, Almekhlafi Mohammed
Department of Clinical Neurosciences, University of Calgary, Calgary, AB, Canada.
Department of Medicine, University of Auckland, Auckland, New Zealand.
Front Neurol. 2022 Aug 5;13:889214. doi: 10.3389/fneur.2022.889214. eCollection 2022.
Selective therapeutic hypothermia in the setting of mechanical thrombectomy (MT) is promising to further improve the outcomes of large vessel occlusion stroke. A significant limitation in applying hypothermia in this setting is the lack of real-time non-invasive brain temperature monitoring mechanism. Non-invasive brain temperature monitoring would provide important information regarding the brain temperature changes during cooling, and the factors that might influence any fluctuations. This review aims to provide appraisal of brain temperature changes during stroke, and the currently available non-invasive modalities of brain temperature measurement that have been developed and tested over the past 20 years. We cover modalities including magnetic resonance spectroscopy imaging (MRSI), radiometric thermometry, and microwave radiometry, and the evidence for their accuracy from human and animal studies. We also evaluate the feasibility of using these modalities in the acute stroke setting and potential ways for incorporating brain temperature monitoring in the stroke workflow.
在机械取栓(MT)背景下进行选择性治疗性低温有望进一步改善大血管闭塞性卒中的治疗效果。在这种情况下应用低温的一个重大限制是缺乏实时无创脑温监测机制。无创脑温监测将提供有关降温过程中脑温变化以及可能影响任何波动的因素的重要信息。本综述旨在评估卒中期间的脑温变化,以及过去20年来已开发和测试的当前可用的无创脑温测量方法。我们涵盖了包括磁共振波谱成像(MRSI)、辐射测温法和微波辐射测量法等方法,以及来自人体和动物研究的关于其准确性的证据。我们还评估了在急性卒中情况下使用这些方法的可行性,以及将脑温监测纳入卒中工作流程的潜在方法。