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脑干安全入路区域的虚拟探索:手术入路的全面定义与分析

Virtual Exploration of Safe Entry Zones in the Brainstem: Comprehensive Definition and Analysis of the Operative Approach.

作者信息

Tayebi Meybodi Ali, Hendricks Benjamin K, Witten Andrew J, Hartman Jerome, Tomlinson Samuel B, Cohen-Gadol Aaron A

机构信息

The Neurosurgical Atlas, Indianapolis, Indiana, USA; Department of Neurosurgery, Rutgers University Medical School, Newark, New Jersey, USA.

The Neurosurgical Atlas, Indianapolis, Indiana, USA.

出版信息

World Neurosurg. 2020 Aug;140:499-508. doi: 10.1016/j.wneu.2020.05.207. Epub 2020 May 29.

Abstract

BACKGROUND

A detailed and accurate understanding of the intrinsic brainstem anatomy and the interrelationship between its internal tracts and nuclei and external landmarks is of paramount importance for safe and effective brainstem surgery. Using anatomical models can be an important step in increasing such understanding. In the present study, we have shown the applicability of our developed virtual 3-dimensional (3D) model in depicting the safe entry zones (SEZs) to the brainstem.

METHODS

Accurate 3D virtual models of brainstem elements were created using high-resolution magnetic resonance imaging and computed tomography to depict the brainstem SEZs.

RESULTS

All the described SEZs to different parts of the brainstem were successfully depicted using our 3D virtual models.

CONCLUSIONS

The virtual models provide an immersive experience of brainstem anatomy, allowing users to understand the intricacies of the microdissection that is necessary to appropriately work through the brainstem nuclei and tracts toward a particular target. The models provide an unparalleled learning environment to understand the SEZs into the brainstem that can be used for training and research.

摘要

背景

对脑干的内在解剖结构及其内部神经束、神经核与外部标志之间的相互关系有详细而准确的了解,对于安全有效的脑干手术至关重要。使用解剖模型可能是增进这种理解的重要一步。在本研究中,我们展示了我们开发的虚拟三维(3D)模型在描绘脑干安全进入区(SEZ)方面的适用性。

方法

使用高分辨率磁共振成像和计算机断层扫描创建脑干元素的精确3D虚拟模型,以描绘脑干SEZ。

结果

使用我们的3D虚拟模型成功描绘了所有描述的脑干不同部位的SEZ。

结论

虚拟模型提供了一种身临其境的脑干解剖体验,让用户了解为通过脑干神经核和神经束朝向特定目标进行适当操作所需的显微解剖的复杂性。这些模型提供了一个无与伦比的学习环境,以了解进入脑干的SEZ,可用于培训和研究。

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