Superior cortical venous anatomy for endovascular device implantation: a systematic review.

IF 4.5 1区 医学 Q1 NEUROIMAGING
Jamie Brannigan, Alexander McClanahan, Ferdinand Hui, Kyle M Fargen, Nandor Pinter, Thomas J Oxley
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Abstract

Endovascular electrode arrays provide a minimally invasive approach to access intracranial structures for neural recording and stimulation. These arrays are currently used as brain-computer interfaces (BCIs) and are deployed within the superior sagittal sinus (SSS), although cortical vein implantation could improve the quality and quantity of recorded signals. However, the anatomy of the superior cortical veins is heterogenous and poorly characterised. MEDLINE and Embase databases were systematically searched from inception to December 15, 2023 for studies describing the anatomy of the superior cortical veins. A total of 28 studies were included: 19 cross-sectional imaging studies, six cadaveric studies, one intraoperative anatomical study and one review. There was substantial variability in cortical vein diameter, length, confluence angle, and location relative to the underlying cortex. The mean number of SSS branches ranged from 11 to 45. The vein of Trolard was most often reported as the largest superior cortical vein, with a mean diameter ranging from 2.1 mm to 3.3 mm. The mean vein of Trolard was identified posterior to the central sulcus. One study found a significant age-related variability in cortical vein diameter and another identified myoendothelial sphincters at the base of the cortical veins. Cortical vein anatomical data are limited and inconsistent. The vein of Trolard is the largest tributary vein of the SSS; however, its relation to the underlying cortex is variable. Variability in cortical vein anatomy may necessitate individualized pre-procedural planning of training and neural decoding in endovascular BCI. Future focus on the relation to the underlying cortex, sulcal vessels, and vessel wall anatomy is required.

用于血管内装置植入的上皮层静脉解剖:系统性综述。
血管内电极阵列为进入颅内结构进行神经记录和刺激提供了一种微创方法。这些阵列目前被用作脑机接口(BCI),部署在上矢状窦(SSS)内,不过皮质静脉植入可以提高记录信号的质量和数量。然而,皮质上静脉的解剖结构各不相同,特征也不十分明确。我们在 MEDLINE 和 Embase 数据库中系统检索了从开始到 2023 年 12 月 15 日描述皮质上静脉解剖结构的研究。共纳入 28 项研究:其中包括 19 项横断面成像研究、6 项尸体研究、1 项术中解剖研究和 1 项综述。皮质静脉的直径、长度、汇合角度以及相对于下层皮质的位置存在很大差异。SSS 分支的平均数量从 11 到 45 不等。最常报告的皮质上静脉是 Trolard 静脉,其平均直径从 2.1 毫米到 3.3 毫米不等。特罗拉德静脉的平均直径位于中央沟后方。一项研究发现皮质静脉直径的变化与年龄密切相关,另一项研究则在皮质静脉底部发现了肌内皮括约肌。皮质静脉解剖数据有限且不一致。特罗拉静脉是 SSS 的最大支流静脉,但其与下层皮质的关系却不尽相同。皮质静脉解剖结构的差异可能需要对血管内生物识别的训练和神经解码进行个性化的术前规划。未来需要重点关注与下层皮质、沟血管和血管壁解剖的关系。
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来源期刊
CiteScore
9.50
自引率
14.60%
发文量
291
审稿时长
4-8 weeks
期刊介绍: The Journal of NeuroInterventional Surgery (JNIS) is a leading peer review journal for scientific research and literature pertaining to the field of neurointerventional surgery. The journal launch follows growing professional interest in neurointerventional techniques for the treatment of a range of neurological and vascular problems including stroke, aneurysms, brain tumors, and spinal compression.The journal is owned by SNIS and is also the official journal of the Interventional Chapter of the Australian and New Zealand Society of Neuroradiology (ANZSNR), the Canadian Interventional Neuro Group, the Hong Kong Neurological Society (HKNS) and the Neuroradiological Society of Taiwan.
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