1 Biomedical Research Imaging Center and Department of Radiology, University of North Carolina at Chapel Hill, Chapel Hill, NC, USA.
2 Department of Neurology, University of North Carolina at Chapel Hill, Chapel Hill, NC, USA.
J Cereb Blood Flow Metab. 2018 Sep;38(9):1481-1499. doi: 10.1177/0271678X17722095. Epub 2017 Aug 9.
Gaining insights into brain oxygen metabolism has been one of the key areas of research in neurosciences. Extensive efforts have been devoted to developing approaches capable of providing measures of brain oxygen metabolism not only under normal physiological conditions but, more importantly, in various pathophysiological conditions such as cerebral ischemia. In particular, quantitative measures of cerebral metabolic rate of oxygen using positron emission tomography (PET) have been shown to be capable of discerning brain tissue viability during ischemic insults. However, the complex logistics associated with oxygen-15 PET have substantially hampered its wide clinical applicability. In contrast, magnetic resonance imaging (MRI)-based approaches have provided quantitative measures of cerebral oxygen metabolism similar to that obtained using PET. Given the wide availability, MRI-based approaches may have broader clinical impacts, particularly in cerebral ischemia, when time is a critical factor in deciding treatment selection. In this article, we review the pathophysiological basis of altered cerebral hemodynamics and oxygen metabolism in cerebral ischemia, how quantitative measures of cerebral metabolism were obtained using the Kety-Schmidt approach, the physical concepts of non-invasive oxygen metabolism imaging approaches, and, finally, clinical applications of the discussed imaging approaches.
深入了解脑氧代谢一直是神经科学研究的重点领域之一。研究人员致力于开发各种方法,不仅能够在正常生理条件下,而且能够在各种病理生理条件下(如脑缺血)提供脑氧代谢的测量。特别是使用正电子发射断层扫描(PET)对脑氧代谢率进行定量测量,已被证明能够在缺血性损伤期间辨别脑组织的活力。然而,与氧-15 PET 相关的复杂物流极大地阻碍了其广泛的临床应用。相比之下,基于磁共振成像(MRI)的方法已经提供了类似于使用 PET 获得的脑氧代谢的定量测量。鉴于 MRI 方法的广泛可用性,当时间是决定治疗选择的关键因素时,它可能会在脑缺血等情况下产生更广泛的临床影响。在本文中,我们回顾了脑缺血中脑血流动力学和氧代谢改变的病理生理基础,以及如何使用 Kety-Schmidt 方法获得脑代谢的定量测量,非侵入性氧代谢成像方法的物理概念,以及所讨论的成像方法的临床应用。