Blood pressure regulation IX: cerebral autoregulation under blood pressure challenges

被引:158
作者
Tzeng, Yu-Chieh [1 ]
Ainslie, Philip N. [2 ]
机构
[1] Univ Otago, Ctr Translat Physiol, Cardiovasc Syst Lab, Wellington, New Zealand
[2] Univ British Columbia, Sch Hlth & Exercise Sci, Ctr Heart Lung & Vasc Hlth, Vancouver, BC V5Z 1M9, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Blood pressure; Blood pressure variability; Cerebral blood flow; Cerebral autoregulation; Circulation; Haemodynamics; Arterial; FLOW VELOCITY RELATIONSHIPS; SYMPATHETIC-NERVE ACTIVITY; AUTONOMIC NEURAL-CONTROL; NITRIC-OXIDE SYNTHASE; MECHANICAL-PROPERTIES; BAROREFLEX SENSITIVITY; COGNITIVE IMPAIRMENT; TRANSCRANIAL DOPPLER; ARTERIAL WINDKESSEL; ACUTE HYPOTENSION;
D O I
10.1007/s00421-013-2667-y
中图分类号
Q4 [生理学];
学科分类号
071003 ;
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.
引用
收藏
页码:545 / 559
页数:15
相关论文
共 106 条
[1]   Dynamic pressure-flow velocity relationships in the human cerebral circulation [J].
Aaslid, R ;
Lash, SR ;
Bardy, GH ;
Gild, WH ;
Newell, DW .
STROKE, 2003, 34 (07) :1645-1649
[2]   ASSESSMENT OF CEREBRAL AUTOREGULATION DYNAMICS FROM SIMULTANEOUS ARTERIAL AND VENOUS TRANSCRANIAL DOPPLER RECORDINGS IN HUMANS [J].
AASLID, R ;
NEWELL, DW ;
STOOSS, R ;
SORTEBERG, W ;
LINDEGAARD, KF .
STROKE, 1991, 22 (09) :1148-1154
[3]   CEREBRAL AUTO-REGULATION DYNAMICS IN HUMANS [J].
AASLID, R ;
LINDEGAARD, KF ;
SORTEBERG, W ;
NORNES, H .
STROKE, 1989, 20 (01) :45-52
[4]   Dynamic cerebral autoregulation and baroreflex sensitivity during modest and severe step changes in arterial PCO2 [J].
Ainslie, Philip N. ;
Celi, Leo ;
McGrattan, Ken ;
Peebles, Karen ;
Ogoh, Shigehiko .
BRAIN RESEARCH, 2008, 1230 :115-124
[5]  
Alperin Noam, 2012, Acta Neurochir Suppl, V114, P201, DOI 10.1007/978-3-7091-0956-4_39
[6]  
[Anonymous], 1999, CHEM FAC PUBL
[7]  
Bayliss WM, 1902, J PHYSIOL-LONDON, V28, P220
[8]   Longitudinal changes in cerebral blood flow in the older hypertensive brain [J].
Beason-Held, Lori L. ;
Moghekar, Abhay ;
Zonderman, Alan B. ;
Kraut, Michael A. ;
Resnick, Susan M. .
STROKE, 2007, 38 (06) :1766-1773
[9]   The effect of Ventricular Assist Devices on cerebral autoregulation: A preliminary study [J].
Bellapart, Judith ;
Chan, Gregory S. ;
Tzeng, Yu-Chieh ;
Ainslie, Philip ;
Barnett, Adrian G. ;
Dunster, Kimble R. ;
Boots, Rob ;
Fraser, John F. .
BMC ANESTHESIOLOGY, 2011, 11
[10]   Weakness of sympathetic neural control of human pial compared with superficial temporal arteries reflects low innervation density and poor sympathetic responsiveness [J].
Bevan, RD ;
Dodge, J ;
Nichols, P ;
Penar, PL ;
Walters, CL ;
Wellman, T ;
Bevan, JA .
STROKE, 1998, 29 (01) :212-221