将瞬时脱氧血红蛋白形成作为脑肿瘤患者灌注磁共振成像研究的对比剂:一项可行性研究

V. Stumpo, E. Sayin, J. Bellomo, O. Sobczyk, C. V. van Niftrik, M. Sebök, Michael Weller, Luca Regli, Z. Kulcsár, Athina Pangalu, A. Bink, James Duffin, David D. Mikulis, Joseph A. Fisher, Jorn Fierstra
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引用次数: 0

摘要

背景:最近的研究表明,瞬时缺氧诱导的脱氧血红蛋白(dOHb)与钆类造影剂的对比度相当,可用于生成健康受试者的静息灌注测量值。在此,我们研究了将这种无创方法应用于脑肿瘤患者的可行性:方法:在一组不同类型脑肿瘤患者(9 人)的回声平面成像采集过程中,使用计算机控制的气体搅拌器诱导瞬时精确等碳肺缺氧,从而诱导瞬时动脉血氧饱和度。我们采用标准模型分析法计算了相对脑血量(rCBV)、脑血流量(rCBF)和平均传输时间(MTT)。将瞬时缺氧诱导的dOHb MRI灌注图与现有的临床DSC-MRI进行了比较:结果:基于瞬时缺氧诱导-dOHb的静息灌注图显示出与潜在肿瘤组织学一致的灌注模式,并与基于钆的DSC MR灌注图显示出高度的空间一致性:无创瞬时缺氧诱导-dOHb对不同类型脑肿瘤患者的耐受性良好,生成的rCBV、rCBF和MTT图与钆基DSC磁共振灌注生成的灌注图显示出良好的一致性。
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Transient deoxyhemoglobin formation as a contrast for perfusion MRI studies in patients with brain tumors: a feasibility study
Background: Transient hypoxia-induced deoxyhemoglobin (dOHb) has recently been shown to represent a comparable contrast to gadolinium-based contrast agents for generating resting perfusion measures in healthy subjects. Here, we investigate the feasibility of translating this non-invasive approach to patients with brain tumors.Methods: A computer-controlled gas blender was used to induce transient precise isocapnic lung hypoxia and thereby transient arterial dOHb during echo-planar-imaging acquisition in a cohort of patients with different types of brain tumors (n = 9). We calculated relative cerebral blood volume (rCBV), cerebral blood flow (rCBF), and mean transit time (MTT) using a standard model-based analysis. The transient hypoxia induced-dOHb MRI perfusion maps were compared to available clinical DSC-MRI.Results: Transient hypoxia induced-dOHb based maps of resting perfusion displayed perfusion patterns consistent with underlying tumor histology and showed high spatial coherence to gadolinium-based DSC MR perfusion maps.Conclusion: Non-invasive transient hypoxia induced-dOHb was well-tolerated in patients with different types of brain tumors, and the generated rCBV, rCBF and MTT maps appear in good agreement with perfusion maps generated with gadolinium-based DSC MR perfusion.
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