Depth-Specific Hypoxic Responses to Spreading Depolarizations in Gyrencephalic Swine Cortex Unveiled by Photoacoustic Imaging

IF 3.8 2区 医学 Q1 CLINICAL NEUROLOGY
Edgar Santos, Juan M. Lopez-Navarro, Marcos Alejandro Suarez-Gutierrez, Niklas Holzwarth, Pablo Albiña-Palmarola, Thomas Kirchner, Adrian Hernandez-Aguilera, Jose Antonio Fernandez-Amador, Farzam Vazifehdan, Johannes Woitzik, Lena Maier-Hein, Renan Sanchez-Porras
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Abstract

Spreading depolarizations (SDs) are a marker of brain injury and have a causative effect on ischemic lesion progression. The hemodynamic responses elicited by SDs are contingent upon the metabolic integrity of the affected tissue, with vasoconstrictive reactions leading to pronounced hypoxia often indicating poor outcomes. The stratification of hemodynamic responses within different cortical layers remains poorly characterized. This pilot study sought to elucidate the depth-specific hemodynamic changes in response to SDs within the gray matter of the gyrencephalic swine brain. Employing a potassium chloride–induced SD model, we utilized multispectral photoacoustic imaging (PAI) to estimate regional cerebral oxygen saturation (rcSO2%) changes consequent to potassium chloride–induced SDs. Regions of interest were demarcated at three cortical depths covering up to 4 mm. Electrocorticography (ECoG) strips were placed to validate the presence of SDs. Through PAI, we detected 12 distinct rcSO2% responses, which corresponded with SDs detected in ECoG. Notably, a higher frequency of hypoxic responses was observed in the deeper cortical layers compared to superficial layers, where hyperoxic and mixed responses predominated (p < 0.001). This data provides novel insights into the differential oxygenation patterns across cortical layers in response to SDs, underlining the complexity of cerebral hemodynamics post-injury.

Abstract Image

光声成像揭示猪脑皮层对扩展性去极化的深度特异性缺氧反应
扩展性去极化(SD)是脑损伤的一个标志,对缺血性病变的进展有诱因作用。SDs引起的血流动力学反应取决于受影响组织的代谢完整性,导致明显缺氧的血管收缩反应往往预示着不良后果。不同皮质层内血液动力学反应的分层特征仍不十分明确。这项试验性研究旨在阐明猪脑灰质内特定深度的血液动力学变化对自毁性脑损伤的反应。我们采用氯化钾诱导的SD模型,利用多谱段光声成像(PAI)估算氯化钾诱导的SD引起的区域脑氧饱和度(rcSO2%)变化。感兴趣区域在三个皮层深度划定,覆盖范围达 4 毫米。我们放置了皮层电图(ECoG)条,以验证是否存在 SDs。通过 PAI,我们检测到了 12 个不同的 rcSO2% 反应,这些反应与 ECoG 中检测到的 SD 相对应。值得注意的是,与浅层相比,皮质深层出现低氧反应的频率更高,而浅层则以高氧和混合反应为主(p < 0.001)。这些数据为了解大脑皮层对自毁性损伤的不同氧合模式提供了新的视角,凸显了损伤后脑血流动力学的复杂性。
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来源期刊
Translational Stroke Research
Translational Stroke Research CLINICAL NEUROLOGY-NEUROSCIENCES
CiteScore
13.80
自引率
4.30%
发文量
130
审稿时长
6-12 weeks
期刊介绍: Translational Stroke Research covers basic, translational, and clinical studies. The Journal emphasizes novel approaches to help both to understand clinical phenomenon through basic science tools, and to translate basic science discoveries into the development of new strategies for the prevention, assessment, treatment, and enhancement of central nervous system repair after stroke and other forms of neurotrauma. Translational Stroke Research focuses on translational research and is relevant to both basic scientists and physicians, including but not restricted to neuroscientists, vascular biologists, neurologists, neuroimagers, and neurosurgeons.
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