Keefe Daniel W, Christianson David T, Davis Greyson W, Oya Hiroyuki, Howard Matthew A, Petkov Christopher I, Toor Fatima
University of Iowa, Electrical and Computer Engineering Department, Iowa City, IA, 52242, USA.
University of Iowa Hospitals and Clinics, Neurosurgery Department, Iowa City, IA, 52242, USA.
Curr Res Neurobiol. 2024 Sep 15;7:100139. doi: 10.1016/j.crneur.2024.100139. eCollection 2024.
Laser thermal ablation has become a prominent neurosurgical treatment approach, but in epilepsy patients it cannot currently be safely implemented with intracranial recording electrodes that are used to study interictal or epileptiform activity. There is a pressing need for computational models of laser interstitial thermal therapy (LITT) with and without intracranial electrodes to enhance the efficacy and safety of optical neurotherapies. In this paper, we aimed to build a biophysical bioheat and ray optics model to study the effects of laser heating in the brain, with and without intracranial electrodes in the vicinity of the ablation zone during the LITT procedure. COMSOL Multiphysics finite element method (FEM) solver software was used to create a bioheat thermal model of brain tissue, with and without blood flow incorporation via Penne's model, to model neural tissue response to laser heating. We report that the close placement of intracranial electrodes can increase the maximum temperature of the brain tissue volume as well as impact the necrosis region volume if the electrodes are placed too closely to the laser coupled diffuse fiber tip. The model shows that an electrode displacement of 4 mm could be considered a safe distance of intracranial electrode placement away from the LITT probe treatment area. This work, for the first time, models the impact of intracranially implanted recording electrodes during LITT, which could improve the understanding of the LITT treatment procedure on the brain's neural networks a sufficient safe distance to the implanted intracranial recording electrodes. We recommend modeling safe distances for placing the electrodes with respect to the infrared laser coupled diffuse fiber tip.
激光热消融已成为一种重要的神经外科治疗方法,但对于癫痫患者,目前无法在用于研究发作间期或癫痫样活动的颅内记录电极的情况下安全实施。迫切需要有和没有颅内电极的激光间质热疗(LITT)计算模型,以提高光神经疗法的疗效和安全性。在本文中,我们旨在建立一个生物物理生物热和光线光学模型,以研究在LITT手术期间,在消融区附近有和没有颅内电极的情况下激光加热对大脑的影响。使用COMSOL Multiphysics有限元方法(FEM)求解器软件创建脑组织的生物热模型,通过彭纳模型纳入和不纳入血流,以模拟神经组织对激光加热的反应。我们报告,如果颅内电极放置得离激光耦合扩散光纤尖端太近,其紧密放置会增加脑组织体积的最高温度,并影响坏死区域体积。该模型表明,4毫米的电极位移可被视为颅内电极放置离LITT探头治疗区域的安全距离。这项工作首次模拟了LITT期间颅内植入记录电极的影响,这有助于更好地理解LITT治疗过程对大脑神经网络的影响,以及与植入的颅内记录电极保持足够安全距离的情况。我们建议针对红外激光耦合扩散光纤尖端建模电极放置的安全距离。