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围生期动脉缺血性卒中患者的脑分割。

Brain segmentation in patients with perinatal arterial ischemic stroke.

机构信息

Department of Biomedical Engineering and Physics, Amsterdam University Medical Center, Location University of Amsterdam, Amsterdam, the Netherlands; Department of Radiology and Nuclear Medicine, Amsterdam University Medical Center, Location University of Amsterdam, Amsterdam, the Netherlands; Informatics Institute, University of Amsterdam, Amsterdam, the Netherlands.

Department of Neonatology and Utrecht Brain Center, University Medical Center Utrecht, Utrecht, the Netherlands.

出版信息

Neuroimage Clin. 2023;38:103381. doi: 10.1016/j.nicl.2023.103381. Epub 2023 Mar 17.

Abstract

BACKGROUND

Perinatal arterial ischemic stroke (PAIS) is associated with adverse neurological outcomes. Quantification of ischemic lesions and consequent brain development in newborn infants relies on labor-intensive manual assessment of brain tissues and ischemic lesions. Hence, we propose an automatic method utilizing convolutional neural networks (CNNs) to segment brain tissues and ischemic lesions in MRI scans of infants suffering from PAIS.

MATERIALS AND METHODS

This single-center retrospective study included 115 patients with PAIS that underwent MRI after the stroke onset (baseline) and after three months (follow-up). Nine baseline and 12 follow-up MRI scans were manually annotated to provide reference segmentations (white matter, gray matter, basal ganglia and thalami, brainstem, ventricles, extra-ventricular cerebrospinal fluid, and cerebellum, and additionally on the baseline scans the ischemic lesions). Two CNNs were trained to perform automatic segmentation on the baseline and follow-up MRIs, respectively. Automatic segmentations were quantitatively evaluated using the Dice coefficient (DC) and the mean surface distance (MSD). Volumetric agreement between segmentations that were manually and automatically obtained was computed. Moreover, the scan quality and automatic segmentations were qualitatively evaluated in a larger set of MRIs without manual annotation by two experts. In addition, the scan quality was qualitatively evaluated in these scans to establish its impact on the automatic segmentation performance.

RESULTS

Automatic brain tissue segmentation led to a DC and MSD between 0.78-0.92 and 0.18-1.08 mm for baseline, and between 0.88-0.95 and 0.10-0.58 mm for follow-up scans, respectively. For the ischemic lesions at baseline the DC and MSD were between 0.72-0.86 and 1.23-2.18 mm, respectively. Volumetric measurements indicated limited oversegmentation of the extra-ventricular cerebrospinal fluid in both the follow-up and baseline scans, oversegmentation of the ischemic lesions in the left hemisphere, and undersegmentation of the ischemic lesions in the right hemisphere. In scans without imaging artifacts, brain tissue segmentation was graded as excellent in more than 85% and 91% of cases, respectively for the baseline and follow-up scans. For the ischemic lesions at baseline, this was in 61% of cases.

CONCLUSIONS

Automatic segmentation of brain tissue and ischemic lesions in MRI scans of patients with PAIS is feasible. The method may allow evaluation of the brain development and efficacy of treatment in large datasets.

摘要

背景

围产期动脉缺血性中风(PAIS)与不良神经结局相关。在新生儿中,对缺血性病变和随之而来的脑发育进行量化依赖于对脑组织和缺血性病变进行费力的手动评估。因此,我们提出了一种利用卷积神经网络(CNN)自动分割 MRI 扫描中 PAIS 新生儿脑组织结构和缺血性病变的方法。

材料和方法

这项单中心回顾性研究纳入了 115 名 PAIS 患者,他们在中风发作后(基线)和三个月后(随访)接受了 MRI 检查。9 次基线和 12 次随访 MRI 扫描被手动标记以提供参考分割(白质、灰质、基底节和丘脑、脑干、脑室、脑室外脑脊液和小脑,此外,在基线扫描中还对缺血性病变进行了分割)。两个 CNN 分别在基线和随访 MRI 上进行自动分割。使用 Dice 系数(DC)和平均表面距离(MSD)对自动分割进行定量评估。手动和自动分割之间的体积一致性通过计算得出。此外,两位专家在没有手动注释的更大 MRI 数据集上对扫描质量和自动分割进行了定性评估。此外,还对这些扫描的扫描质量进行了定性评估,以确定其对自动分割性能的影响。

结果

自动脑组织结构分割导致基线扫描的 DC 和 MSD 分别为 0.78-0.92 和 0.18-1.08mm,随访扫描的 DC 和 MSD 分别为 0.88-0.95 和 0.10-0.58mm。基线时的缺血性病变的 DC 和 MSD 分别为 0.72-0.86 和 1.23-2.18mm。体积测量结果表明,在随访和基线扫描中,脑室外脑脊液存在过度分割,左侧半球的缺血性病变存在过度分割,右侧半球的缺血性病变存在分割不足。在没有成像伪影的扫描中,脑组织结构的分割在基线和随访扫描中分别有超过 85%和 91%的病例被评为优秀。对于基线的缺血性病变,这一比例为 61%。

结论

PAIS 患者 MRI 扫描中脑组织结构和缺血性病变的自动分割是可行的。该方法可能允许在大型数据集上评估脑发育和治疗效果。

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1
Brain segmentation in patients with perinatal arterial ischemic stroke.围生期动脉缺血性卒中患者的脑分割。
Neuroimage Clin. 2023;38:103381. doi: 10.1016/j.nicl.2023.103381. Epub 2023 Mar 17.

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