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连接组学在小儿动静脉畸形手术治疗中的新应用

Novel Application of Connectomics to the Surgical Management of Pediatric Arteriovenous Malformations.

作者信息

Syed Shoaib A, Al-Mufti Fawaz, Hanft Simon J, Gandhi Chirag D, Pisapia Jared M

机构信息

School of Medicine, New York Medical College, Valhalla, New York, USA,

School of Medicine, New York Medical College, Valhalla, New York, USA.

出版信息

Pediatr Neurosurg. 2025 Jun 25:1-11. doi: 10.1159/000547100.

Abstract

INTRODUCTION

The emergence of connectomics in neurosurgery has allowed for construction of detailed maps of white matter connections, incorporating both structural and functional connectivity patterns. The advantage of mapping cerebral vascular lesions to guide surgical approach shows great potential. We aim to identify the clinical utility of connectomics for the surgical treatment of pediatric arteriovenous malformations (AVMs).

CASE PRESENTATION

We present two illustrative cases of the application of connectomics to the management of cerebral AVM in a 9-year-old and 8-year-old female. Using magnetic resonance anatomic and diffusion tensor imaging, a machine learning algorithm generated patient-specific representations of the corticospinal tract for the first patient, and the optic radiations for the second patient. The default mode network and language network were also examined for each patient. The imaging output served as an adjunct to guide operative decision-making. It assisted with selection of the superior parietal lobule as the operative corridor for the first case. Furthermore, it alerted the surgeon to white matter tracts in close proximity to the AVM nidus during resection. Finally, it aided in risk versus benefit analysis regarding treatment approach, such as craniotomy for resection for the first patient versus radiosurgery for the second patient. Both patients had favorable neurologic outcomes at the available follow-up period.

CONCLUSION

Use of the software integrated well with clinical workflow. The output was used for planning and overlaid on the intraoperative neuro-navigation system. It improved visualization of eloquent regions, especially those networks not visible on standard anatomic imaging. Future studies will focus on expanding the cohort, conducting in pre- and postoperative connectomic analysis with correlation to clinical outcome measures, and incorporating functional magnetic resonance imaging.

摘要

引言

神经外科领域连接组学的出现使得能够构建详细的白质连接图谱,融合了结构和功能连接模式。将脑血管病变进行图谱绘制以指导手术入路的优势显示出巨大潜力。我们旨在确定连接组学在小儿动静脉畸形(AVM)手术治疗中的临床应用价值。

病例报告

我们展示了两例将连接组学应用于一名9岁和一名8岁女性脑AVM治疗的典型病例。利用磁共振解剖成像和扩散张量成像,一种机器学习算法为第一名患者生成了皮质脊髓束的个体化表征,为第二名患者生成了视辐射的个体化表征。还对每名患者的默认模式网络和语言网络进行了检查。成像输出作为辅助手段来指导手术决策。它有助于为第一例病例选择顶上小叶作为手术通道。此外,在切除过程中,它提醒外科医生注意靠近AVM病灶的白质束。最后,它有助于对治疗方法进行风险与获益分析,例如第一名患者采用开颅切除,第二名患者采用放射外科治疗。在现有的随访期内,两名患者的神经功能结局均良好。

结论

该软件的使用与临床工作流程良好整合。输出结果用于手术规划并叠加在术中神经导航系统上。它改善了明确功能区的可视化,尤其是那些在标准解剖成像上不可见的网络。未来的研究将集中在扩大队列、进行术前和术后连接组学分析并与临床结局指标相关联,以及纳入功能磁共振成像。

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