Blood pressure regulation IX: cerebral autoregulation under blood pressure challenges

被引:0
作者
Yu-Chieh Tzeng
Philip N. Ainslie
机构
[1] University of Otago,Cardiovascular Systems Laboratory, Centre for Translational Physiology
[2] University of British Columbia,Centre for Heart, Lung and Vascular Health, School of Health and Exercise Sciences
来源
European Journal of Applied Physiology | 2014年 / 114卷
关键词
Blood pressure; Blood pressure variability; Cerebral blood flow; Cerebral autoregulation; Circulation; Haemodynamics; Arterial;
D O I
暂无
中图分类号
学科分类号
摘要
Cerebral autoregulation (CA) is integral to the delicate process of maintaining stable cerebral perfusion and brain tissue oxygenation against changes in arterial blood pressure. The last four decades has seen dramatic advances in understanding CA physiology, and the role that CA might play in the causation and progression of disease processes that affect the cerebral circulation such as stroke. However, the translation of these basic scientific advances into clinical practice has been limited by the maintenance of old constructs and because there are persistent gaps in our understanding of how this vital vascular mechanism should be quantified. In this review, we re-evaluate relevant studies that challenge established paradigms about how the cerebral perfusion pressure and blood flow are related. In the context of blood pressure being a major haemodynamic challenge to the cerebral circulation, we conclude that: (1) the physiological properties of CA remain inconclusive, (2) many extant methods for CA characterisation are based on simplistic assumptions that can give rise to misleading interpretations, and (3) robust evaluation of CA requires thorough consideration not only of active vasomotor function, but also the unique properties of the intracranial environment.
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页码:545 / 559
页数:14
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