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本文引用的文献

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A dual-tuned O/ H head array for direct brain oximetry at 3 Tesla.用于3特斯拉直接脑血氧饱和度测量的双调谐O/H头部阵列。
Magn Reson Med. 2020 Apr;83(4):1512-1518. doi: 10.1002/mrm.28005. Epub 2019 Oct 8.
2
The "inflammatory penumbra" in ischemic stroke: From clinical data to experimental evidence.缺血性卒中的“炎症半暗带”:从临床数据到实验证据
Eur Stroke J. 2016 Mar;1(1):20-27. doi: 10.1177/2396987316630249. Epub 2016 Mar 1.
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Cerebral MR oximetry during acetazolamide augmentation: Beyond cerebrovascular reactivity in hemodynamic failure.乙酰唑胺增强期脑磁共振氧饱和度检测:在血流动力学衰竭中超越脑血管反应性。
J Magn Reson Imaging. 2019 Jul;50(1):175-182. doi: 10.1002/jmri.26546. Epub 2018 Nov 3.
4
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5
Apparent brain temperature imaging with multi-voxel proton magnetic resonance spectroscopy compared with cerebral blood flow and metabolism imaging on positron emission tomography in patients with unilateral chronic major cerebral artery steno-occlusive disease.单侧慢性大脑主要动脉狭窄闭塞性疾病患者的表观脑温成像与多体素质子磁共振波谱成像及正电子发射断层扫描脑血流和代谢成像的比较
Neuroradiology. 2017 Sep;59(9):923-935. doi: 10.1007/s00234-017-1890-3. Epub 2017 Aug 3.
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Referenceless MR thermometry-a comparison of five methods.无参考物磁共振温度测量法——五种方法的比较
Phys Med Biol. 2017 Jan 7;62(1):1-16. doi: 10.1088/1361-6560/62/1/1. Epub 2016 Dec 14.
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Acetazolamide-augmented dynamic BOLD (aczBOLD) imaging for assessing cerebrovascular reactivity in chronic steno-occlusive disease of the anterior circulation: An initial experience.乙酰唑胺增强动态脑血氧水平依赖性功能磁共振成像(aczBOLD)用于评估前循环慢性狭窄闭塞性疾病的脑血管反应性:初步经验
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AJNR Am J Neuroradiol. 2017 Jan;38(1):46-51. doi: 10.3174/ajnr.A4969. Epub 2016 Oct 6.

磁共振测温在脑血管病中的应用:生理基础、血流动力学依赖性及卒中影像的新领域。

MR Thermometry in Cerebrovascular Disease: Physiologic Basis, Hemodynamic Dependence, and a New Frontier in Stroke Imaging.

机构信息

From the Department of Radiology (S.D.), New York University Langone Health, New York, New York

Department of Radiology (D.Q.), Emory University Hospital, Atlanta, Georgia.

出版信息

AJNR Am J Neuroradiol. 2020 Apr;41(4):555-565. doi: 10.3174/ajnr.A6455. Epub 2020 Mar 5.

DOI:10.3174/ajnr.A6455
PMID:32139425
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7144635/
Abstract

The remarkable temperature sensitivity of the brain is widely recognized and has been studied for its role in the potentiation of ischemic and other neurologic injuries. Pyrexia frequently complicates large-vessel acute ischemic stroke and develops commonly in critically ill neurologic patients; the profound sensitivity of the brain even to minor intraischemic temperature changes, together with the discovery of brain-to-systemic as well as intracerebral temperature gradients, has thus compelled the exploration of cerebral thermoregulation and uncovered its immutable dependence on cerebral blood flow. A lack of pragmatic and noninvasive tools for spatially and temporally resolved brain thermometry has historically restricted empiric study of cerebral temperature homeostasis; however, MR thermometry (MRT) leveraging temperature-sensitive nuclear magnetic resonance phenomena is well-suited to bridging this long-standing gap. This review aims to introduce the reader to the following: 1) fundamental aspects of cerebral thermoregulation, 2) the physical basis of noninvasive MRT, and 3) the physiologic interdependence of cerebral temperature, perfusion, metabolism, and viability.

摘要

大脑的显著温度敏感性已被广泛认识,并因其在增强缺血性和其他神经损伤中的作用而得到研究。发热经常使大血管急性缺血性中风复杂化,并在重病神经患者中常见;大脑对轻微的缺血性温度变化的敏感性,以及脑到全身和脑内温度梯度的发现,迫使人们探索脑体温调节,并揭示了其对脑血流的不可改变的依赖性。由于缺乏用于空间和时间分辨脑测温的实用和非侵入性工具,历史上限制了对脑体温动态平衡的经验研究;然而,利用温度敏感磁共振现象的磁共振测温(MRT)非常适合弥补这一长期存在的差距。本综述旨在向读者介绍以下内容:1)脑体温调节的基本方面,2)非侵入性 MRT 的物理基础,以及 3)脑温度、灌注、代谢和活力的生理相互依存关系。