首页> 外文期刊>AJNR. American journal of neuroradiology >Explaining clinical effects of deep brain stimulation through simplified target-specific modeling of the volume of activated tissue
【24h】

Explaining clinical effects of deep brain stimulation through simplified target-specific modeling of the volume of activated tissue

机译:通过简化的针对特定目标的激活组织体积建模来解释深部脑刺激的临床效果

获取原文
获取原文并翻译 | 示例
           

摘要

BACKGROUND AND PURPOSE: Although progress has been made in understanding the optimal anatomic structures as target areas for DBS, little effort has been put into modeling and predicting electromagnetic field properties of activated DBS electrodes and understanding their interactions with the adjacent tissue. Currently, DBS is performed with the patient awake to assess the effectiveness and the side effect spectrum of stimulation. This study was designed to create a robust and rather simple numeric and visual tool that provides sufficient and practical relevant information to visualize the patient's individual VAT. MATERIALS AND METHODS: Multivariate polynomial fitting of previously obtained data from a finite-element model, based on a similar DBS system, was used. The model estimates VAT as a first-approximation sphere around the active DBS contact, using stimulation voltages and individual tissue-electrode impedances. Validation uses data from 2 patients with PD by MR imaging, DTI, fiber tractography, and postoperative CT data. RESULTS: Our model can predict VAT for impedances between 500 and 2000 Ω with stimulation voltages up to 10 V. It is based on assumptions for monopolar DBS. Evaluation of 2 DBS cases showed a convincing correspondence between predicted VAT and neurologic (side) effects (internal capsule activation). CONCLUSIONS: Stimulation effects during DBS can be readily explained with this simple VAT model. Its implementation in daily clinical routine might help in understanding the types of tissues activated during DBS. This technique might have the potential to facilitate DBS implantations with the patient under general anesthesia while yielding acceptable clinical effectiveness.
机译:背景与目的:尽管在了解最佳解剖结构作为DBS靶区域方面已取得进展,但很少有人在建模和预测活化DBS电极的电磁场特性以及了解其与相邻组织的相互作用方面投入了很多精力。当前,在患者清醒的情况下执行DBS以评估刺激的有效性和副作用范围。本研究旨在创建一个健壮且相当简单的数字和视觉工具,该工具可提供足够实用的相关信息以可视化患者的个人增值税。材料与方法:使用基于相似DBS系统的有限元模型先前获得的数据的多元多项式拟合。该模型使用刺激电压和各个组织电极阻抗,将VAT估算为活动DBS接触周围的第一近似球体。验证使用来自2名PD患者的数据,包括MR成像,DTI,纤维束成像和术后CT数据。结果:我们的模型可以在最高10 V的激励电压下预测500至2000Ω之间阻抗的VAT。它基于单极DBS的假设。对2例DBS病例的评估显示,预测的增值税与神经系统(副作用)(内囊激活)之间具有令人信服的对应关系。结论:使用这种简单的增值税模型可以很容易地解释DBS期间的刺激效果。它在日常临床工作中的实施可能有助于了解DBS期间激活的组织类型。该技术可能具有在全身麻醉下促进DBS植入患者的潜力,同时产生可接受的临床效果。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号