Exploring the Role of Vascular Factors and Tissue Properties in Pulsatile Brain Deformation.

IF 2.7 4区 医学 Q2 BIOPHYSICS
Marius Burman Ingeberg, Elijah Van Houten, Andrej Shoykhet, Jaco J M Zwanenburg
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Abstract

Strain tensor imaging (STI) provides precise measurements of brain tissue deformation caused by cerebral arterial pulsations (CAPs). This CAP-related brain tissue deformation is expressed in rotation-invariant strain metrics, such as volumetric strain and octahedral shear strain, which hold promise as quantitative markers of the (mechanical) properties of both the intracerebral vasculature and the intervascular tissue components. However, the extent to which these strain metrics can be specifically linked to the underlying anatomical, vascular, and tissue properties remains largely unknown. This study aims to explore the relationship between STI metrics and independent markers of pulse pressure (arterial transit time, ATT), vascular function (cerebral blood volume, CBV; cerebral blood flow, CBF; mean transit time, MTT), and tissue properties (shear stiffness). Volumetric and octahedral shear strain were computed from previously obtained 7T displacement data (approximately 2-mm isotropic resolution) of eight healthy subjects (27 ± 7 years). Shear stiffness maps were generated from the same displacement data set using poroviscoelastic intrinsic MR elastography. Regional values of CBV, CBF, MTT, and ATT were obtained from standard-space atlases. Linear mixed-effects models were used to investigate potential regional relationships between specific strain metrics and the corresponding tissue, pulse pressure, or vascular markers. Volumetric strain showed significant positive correlations with CBV (globally and in cortical gray and white matters) and significant negative correlations with ATT (globally and in cortical gray and white matters), but not with shear stiffness. Octahedral shear strain showed a significant negative correlation with shear stiffness (globally and in subcortical gray and white matters) and also with ATT (globally and in cortical gray matter). Volumetric strain reflects mainly vascular properties (pulse pressure and blood volume), whereas octahedral shear strain is more sensitive to tissue properties. These findings provide a foundation for future studies that investigate the physiological characteristics reflected by these strain metrics and their intricate interplay.

探讨血管因子和组织特性在脉动性脑变形中的作用。
应变张量成像(STI)提供了脑动脉搏动(CAPs)引起的脑组织变形的精确测量。这种与cap相关的脑组织变形以旋转不变应变指标表示,如体积应变和八面体剪切应变,它们有望作为脑内血管和血管间组织成分(机械)特性的定量标记。然而,这些应变指标在多大程度上可以与潜在的解剖学、血管和组织特性具体联系起来,这在很大程度上仍然是未知的。本研究旨在探讨STI指标与脉搏压(动脉传递时间,ATT)、血管功能(脑血容量,CBV,脑血流量,CBF,平均传递时间,MTT)和组织特性(剪切刚度)等独立指标之间的关系。根据先前获得的8名健康受试者(27±7岁)的7T位移数据(约2毫米各向同性分辨率)计算体积和八面体剪切应变。剪切刚度图是利用孔隙粘弹性内禀磁共振弹性图从相同的位移数据集生成的。CBV、CBF、MTT和ATT的区域值来自标准空间地图集。线性混合效应模型用于研究特定应变指标与相应组织、脉压或血管标记物之间的潜在区域关系。体积应变与CBV(整体和皮质灰质)呈显著正相关,与ATT(整体和皮质灰质)呈显著负相关,但与剪切刚度不相关。八面体剪切应变与剪切刚度(整体和皮层下灰质)以及ATT(整体和皮层灰质)呈显著负相关。体积应变主要反映血管特性(脉压和血容量),而八面体剪切应变对组织特性更为敏感。这些发现为未来研究这些应变指标所反映的生理特征及其复杂的相互作用提供了基础。
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来源期刊
NMR in Biomedicine
NMR in Biomedicine 医学-光谱学
CiteScore
6.00
自引率
10.30%
发文量
209
审稿时长
3-8 weeks
期刊介绍: NMR in Biomedicine is a journal devoted to the publication of original full-length papers, rapid communications and review articles describing the development of magnetic resonance spectroscopy or imaging methods or their use to investigate physiological, biochemical, biophysical or medical problems. Topics for submitted papers should be in one of the following general categories: (a) development of methods and instrumentation for MR of biological systems; (b) studies of normal or diseased organs, tissues or cells; (c) diagnosis or treatment of disease. Reports may cover work on patients or healthy human subjects, in vivo animal experiments, studies of isolated organs or cultured cells, analysis of tissue extracts, NMR theory, experimental techniques, or instrumentation.
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