Rodrigues Eduardo Mello, Isolan Gustavo Rassier, Becker Lia Grub, Dini Leandro Infantini, Vaz Marco Antônio Schlindwein, Frigeri Thomas More
Department of Neurosurgery, The Center For Advanced Neurology and Neurosurgery, Brazil (CEANNE).
Department of Neurosurgery, Hospital São Lucas - PUCRS, Porto Alegre, Brazil.
Surg Neurol Int. 2022 Jul 22;13:309. doi: 10.25259/SNI_1157_2021. eCollection 2022.
Knowledge of the anatomical course of the optic radiations and its relationship to medial temporal lobe structures is of great relevance in preoperative planning for surgery involving the temporal lobe to prevent damage that may result in postsurgical visual field deficits.
In this anatomical study, we reviewed the literature on this topic and applied the information to practical anatomical dissection. The three-dimensional relationship between the course of the optic radiations and structures accessed in the main microneurosurgical approaches to the medial temporal lobe was examined by applying Klingler's white matter fiber dissection technique to five formalin-fixed human brains. The dissections were performed with an operating microscope at magnifications of ×3-×40. High-resolution images were acquired during dissection for identification of the anatomical structures, focusing on the characterization of the course of the optic radiations in relation to medial temporal lobe structures.
In all five dissected brains, we could expose and clearly define the relationship between the optic radiations and medial temporal lobe structures, improving our understanding of these complex structures.
The knowledge gained by studying these relationships will help neurosurgeons to develop risk-adjusted approaches to prevent damage to the optic radiations in the medial temporal region, which may result in a disabling visual field deficit.
了解视辐射的解剖走行及其与颞叶内侧结构的关系,对于涉及颞叶的手术术前规划具有重要意义,可预防可能导致术后视野缺损的损伤。
在这项解剖学研究中,我们回顾了关于该主题的文献,并将这些信息应用于实际的解剖 dissection。通过对五具福尔马林固定的人类大脑应用克林格勒白质纤维 dissection 技术,研究视辐射走行与颞叶内侧主要显微神经外科手术入路中所涉及结构之间的三维关系。 dissection 在手术显微镜下以×3 - ×40 的放大倍数进行。 dissection 过程中采集高分辨率图像以识别解剖结构,重点关注视辐射与颞叶内侧结构相关走行的特征。
在所有五具解剖的大脑中,我们能够暴露并清晰界定视辐射与颞叶内侧结构之间的关系,增进了我们对这些复杂结构的理解。
通过研究这些关系所获得的知识将有助于神经外科医生制定风险调整策略,以预防颞叶内侧区域对视辐射的损伤,这种损伤可能导致致残性视野缺损。