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Principles of Cerebral Oxygenation and Blood Flow in the Neurological Critical Care Unit

Overview
Journal Neurocrit Care
Specialty Critical Care
Date 2006 Feb 25
PMID 16498199
Citations 2
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Abstract

Cerebrovascular disease and trauma are leading causes of death in the United States. In addition to the initial insult to the brain, disturbances of cerebral oxygenation and metabolism underlie many of the secondary pathophysiological processes that increase both morbidity and mortality. Therefore, researchers and clinicians have sought to obtain a more thorough understanding of the physiological and biochemical principles of cerebral oxygenation and metabolism. New technologies capable of offering continuous and quantitative assessment of cerebral oxygenation may improve clinical outcomes. In this article, we review the physiological principles of cerebral metabolism, cerebral blood flow and their metabolic coupling, and cerebral oxygenation, with particular emphasis on variables that could be monitored and managed in an intensive care unit setting.

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References
1.
KETY S . The circulation, metabolism, and functional activity of the human brain. Neurochem Res. 1991; 16(9):1073-8. DOI: 10.1007/BF00965853. View

2.
Engelborghs K, Haseldonckx M, Van Reempts J, van Rossem K, Wouters L, Borgers M . Impaired autoregulation of cerebral blood flow in an experimental model of traumatic brain injury. J Neurotrauma. 2000; 17(8):667-77. DOI: 10.1089/089771500415418. View

3.
Doppenberg E, Zauner A, Bullock R, Ward J, Fatouros P, Young H . Correlations between brain tissue oxygen tension, carbon dioxide tension, pH, and cerebral blood flow--a better way of monitoring the severely injured brain?. Surg Neurol. 1998; 49(6):650-4. DOI: 10.1016/s0090-3019(97)00355-8. View

4.
Zauner A, Daugherty W, Ross Bullock M, Warner D . Brain oxygenation and energy metabolism: part I-biological function and pathophysiology. Neurosurgery. 2002; 51(2):289-301; discussion 302. View

5.
Fox P, Raichle M, Mintun M, Dence C . Nonoxidative glucose consumption during focal physiologic neural activity. Science. 1988; 241(4864):462-4. DOI: 10.1126/science.3260686. View