Influence of CO2 on neurovascular coupling: interaction with dynamic cerebral autoregulation and cerebrovascular reactivity
暂无分享,去创建一个
Paola Maggio | Ronney B. Panerai | Thompson G. Robinson | R. Panerai | P. Maggio | T. Robinson | A. Salinet | Angela S. M. Salinet
[1] R. Panerai,et al. Multivariate modeling of cognitive-motor stimulation on neurovascular coupling: transcranial Doppler used to characterize myogenic and metabolic influences. , 2012, American journal of physiology. Regulatory, integrative and comparative physiology.
[2] R. Panerai,et al. Effects of active, passive and motor imagery paradigms on cerebral and peripheral hemodynamics in older volunteers: a functional TCD study. , 2012, Ultrasound in medicine & biology.
[3] B. Levine,et al. Transfer function analysis of dynamic cerebral autoregulation in humans. , 1998, American journal of physiology. Heart and circulatory physiology.
[4] R. Panerai,et al. Cerebral blood flow response to neural activation after acute ischemic stroke: a failure of myogenic regulation? , 2013, Journal of Neurology.
[5] Rong Zhang,et al. Cerebral hemodynamics during orthostatic stress assessed by nonlinear modeling. , 2006, Journal of applied physiology.
[6] R. Panerai,et al. Spontaneous fluctuations in cerebral blood flow regulation: contribution of PaCO2. , 2010, Journal of applied physiology.
[7] R. Panerai,et al. Active, passive, and motor imagery paradigms: component analysis to assess neurovascular coupling. , 2013, Journal of applied physiology.
[8] Ronney B Panerai,et al. Cerebral and systemic hemodynamic changes during cognitive and motor activation paradigms. , 2005, American journal of physiology. Regulatory, integrative and comparative physiology.
[9] T G Robinson,et al. Continuous estimates of dynamic cerebral autoregulation during transient hypocapnia and hypercapnia. , 2010, Journal of applied physiology.
[10] Manfred Kaps,et al. Control system analysis of visually evoked blood flow regulation in humans under normocapnia and hypercapnia. , 2003, European journal of ultrasound : official journal of the European Federation of Societies for Ultrasound in Medicine and Biology.
[11] N. Secher,et al. Dynamic cerebral autoregulation during exhaustive exercise in humans. , 2005, American journal of physiology. Heart and circulatory physiology.
[12] Bernhard Rosengarten,et al. Hypocapnia induced vasoconstriction significantly inhibits the neurovascular coupling in humans , 2011, Journal of the Neurological Sciences.
[13] R. Hughson,et al. Two-breath CO(2) test detects altered dynamic cerebrovascular autoregulation and CO(2) responsiveness with changes in arterial P(CO(2)). , 2004, American journal of physiology. Regulatory, integrative and comparative physiology.
[14] Georgios D. Mitsis,et al. Nonlinear modeling of the dynamic effects of arterial pressure and CO2 variations on cerebral blood flow in healthy humans , 2004, IEEE Trans. Biomed. Eng..
[15] J. E. Brian,et al. Carbon Dioxide and the Cerebral Circulation , 1998, Anesthesiology.
[16] C. Iadecola,et al. Neurovascular coupling in the normal brain and in hypertension, stroke, and Alzheimer disease. , 2006, Journal of applied physiology.
[17] I Kanno,et al. Regional Differences in Cerebral Vascular Response to Paco2 Changes in Humans Measured by Positron Emission Tomography , 2000, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[18] R. Panerai,et al. Cerebral blood flow velocity during mental activation: interpretation with different models of the passive pressure-velocity relationship. , 2005, Journal of applied physiology.
[19] C. Giller,et al. Cerebral arterial diameters during changes in blood pressure and carbon dioxide during craniotomy. , 1993, Neurosurgery.
[20] B K Rutt,et al. MRI measures of middle cerebral artery diameter in conscious humans during simulated orthostasis. , 2000, Stroke.
[21] Farzaneh A. Sorond,et al. Autoregulation in the Posterior Circulation Is Altered by the Metabolic State of the Visual Cortex , 2009, Stroke.
[22] Kojiro Ide,et al. Relationship between middle cerebral artery blood velocity and end-tidal PCO2 in the hypocapnic-hypercapnic range in humans. , 2003, Journal of applied physiology.
[23] J Duffin,et al. The cerebrovascular response to carbon dioxide in humans , 2011, The Journal of physiology.
[24] R. Panerai,et al. Dynamic Cerebral Autoregulation Changes during Sub-Maximal Handgrip Maneuver , 2013, PloS one.
[25] M. Poulin,et al. Dynamics of the cerebral blood flow response to step changes in end-tidal PCO2 and PO2 in humans. , 1996, Journal of applied physiology.
[26] D H Evans,et al. Effect of CO2 on dynamic cerebral autoregulation measurement , 1999, Physiological measurement.
[27] Frans N van de Vosse,et al. A lumped parameter model of cerebral blood flow control combining cerebral autoregulation and neurovascular coupling. , 2012, American journal of physiology. Heart and circulatory physiology.
[28] Y. Tzeng,et al. Regional brain blood flow in man during acute changes in arterial blood gases , 2012, The Journal of physiology.
[29] David M. Simpson,et al. Multivariate dynamic analysis of cerebral blood flow regulation in humans , 2000, IEEE Transactions on Biomedical Engineering.
[30] D. Newell,et al. Comparison of static and dynamic cerebral autoregulation measurements. , 1995, Stroke.
[31] J F Potter,et al. Cerebral blood flow velocity response to induced and spontaneous sudden changes in arterial blood pressure. , 2001, American journal of physiology. Heart and circulatory physiology.
[32] R. Aaslid,et al. Dependency of Blood Flow Velocity in the Middle Cerebral Artery on End-Tidal Carbon Dioxide Partial Pressure—A Transcranial Ultrasound Doppler Study , 1984, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[33] R. Panerai,et al. Reproducibility of cerebral and peripheral haemodynamic responses to active, passive and motor imagery paradigms in older healthy volunteers: A fTCD study , 2012, Journal of Neuroscience Methods.
[34] Daniel Gallichan,et al. Flow‐metabolism coupling in human visual, motor, and supplementary motor areas assessed by magnetic resonance imaging , 2007, Magnetic resonance in medicine.
[35] Rong Zhang,et al. Transcranial Doppler estimation of cerebral blood flow and cerebrovascular conductance during modified rebreathing. , 2007, Journal of applied physiology.
[36] Mario Zuccarello,et al. pCO2 and pH regulation of cerebral blood flow , 2012, Front. Physio..
[37] R. Hughson,et al. Two-breath CO2 test detects altered dynamic cerebrovascular autoregulation and CO2 responsiveness with changes in arterial Pco2 , 2004 .
[38] R. C. Oldfield. The assessment and analysis of handedness: the Edinburgh inventory. , 1971, Neuropsychologia.
[39] L. Boorman,et al. Early and Late Stimulus-Evoked Cortical Hemodynamic Responses Provide Insight into the Neurogenic Nature of Neurovascular Coupling , 2012, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[40] R. Panerai,et al. Does hypercapnia-induced impairment of cerebral autoregulation affect neurovascular coupling? A functional TCD study. , 2013, Journal of applied physiology.
[41] J. Skatrud,et al. Baroreflex‐induced sympathetic activation does not alter cerebrovascular CO2 responsiveness in humans , 2003, The Journal of physiology.
[42] R. Panerai,et al. Detection of Impaired Cerebral Autoregulation Improves by Increasing Arterial Blood Pressure Variability , 2013, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[43] R. Aaslid,et al. Cerebral autoregulation dynamics in humans. , 1989, Stroke.
[44] Feng Xu,et al. The Influence of Carbon Dioxide on Brain Activity and Metabolism in Conscious Humans , 2011, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[45] R. Panerai,et al. Can cerebrovascular reactivity be assessed without measuring blood pressure in patients with carotid artery disease? . , 1998, Stroke.
[46] P M Rossini,et al. Outcome of carotid artery occlusion is predicted by cerebrovascular reactivity. , 1999, Stroke.
[47] Y. Tzeng,et al. Sympathetic regulation of the human cerebrovascular response to carbon dioxide. , 2012, Journal of applied physiology.
[48] R. Panerai,et al. Contribution of arterial blood pressure and PaCO2 to the cerebrovascular responses to motor stimulation. , 2012, American journal of physiology. Heart and circulatory physiology.
[49] R. Panerai,et al. Variability of time-domain indices of dynamic cerebral autoregulation. , 2003, Physiological measurement.