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利用近红外光学层析成像技术对脑血管进行成像:一项模拟研究。

Imaging Cerebral Blood Vessels Using Near-Infrared Optical Tomography: A Simulation Study.

机构信息

Biomedical Optics Research Laboratory (BORL), Department of Neonatology, University Hospital Zurich, University of Zurich, Zurich, Switzerland.

出版信息

Adv Exp Med Biol. 2023;1438:203-207. doi: 10.1007/978-3-031-42003-0_32.

Abstract

Cerebral veins have received increasing attention due to their importance in preoperational planning and the brain oxygenation measurement. There are different modalities to image those vessels, such as magnetic resonance angiography (MRA) and recently, contrast-enhanced (CE) 3D gradient-echo sequences. However, the current techniques have certain disadvantages, i.e., the long examination time, the requirement of contrast agents or inability to measure oxygenation. Near-infrared optical tomography (NIROT) is emerging as a viable new biomedical imaging modality that employs near infrared light (650-950 nm) to image biological tissue. It was proven to easily penetrate the skull and therefore enables the brain vessels to be assessed. NIROT utilizes safe non-ionizing radiation and can be applied in e.g., early detection of neonatal brain injury and ischemic strokes. The aim is to develop non-invasive label-free dynamic time domain (TD) NIROT to image the brain vessels. A simulation study was performed with the software (NIRFAST) which models light propagation in tissue with the finite element method (FEM). Both a simple shape mesh and a real head mesh including all the segmented vessels from MRI images were simulated using both FEM and a hybrid FEM-U-Net network, we were able to visualize the superficial vessels with NIROT with a Root Mean Square Error (RMSE) lower than 0.079.

摘要

由于脑静脉在手术前规划和脑氧测量中的重要性,它们受到了越来越多的关注。有不同的方式来成像这些血管,如磁共振血管造影(MRA)和最近的对比增强(CE)3D 梯度回波序列。然而,目前的技术存在一些缺点,例如检查时间长、需要造影剂或无法测量氧合。近红外光学断层扫描(NIROT)作为一种新兴的可行的生物医学成像方式,利用近红外光(650-950nm)来成像生物组织。它已被证明可以很容易地穿透颅骨,从而可以评估脑血管。NIROT 使用安全的非电离辐射,可用于例如新生儿脑损伤和缺血性中风的早期检测。目的是开发非侵入性、无标记的动态时域(TD)NIROT 来成像脑血管。使用软件(NIRFAST)进行了模拟研究,该软件使用有限元方法(FEM)对组织中的光传播进行建模。使用 FEM 和混合 FEM-U-Net 网络对简单形状的网格和包括来自 MRI 图像的所有分割血管的真实头部网格进行了模拟,我们能够使用 NIROT 可视化浅表血管,均方根误差(RMSE)低于 0.079。

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