Arterial impulse model for the BOLD response to brief neural activation
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[1] E. P. Vovenko,et al. Distribution of oxygen tension on the surface of arterioles, capillaries and venules of brain cortex and in tissue in normoxia: an experimental study on rats , 1999, Pflügers Archiv.
[2] Josef Pfeuffer,et al. Spatial dependence of the nonlinear BOLD response at short stimulus duration , 2002, NeuroImage.
[3] Thomas T. Liu,et al. Analysis and Design of Perfusion-Based Event-Related fMRI Experiments , 2002, NeuroImage.
[4] Karl J. Friston,et al. Nonlinear Responses in fMRI: The Balloon Model, Volterra Kernels, and Other Hemodynamics , 2000, NeuroImage.
[5] Johannes Reichold,et al. The microvascular system of the striate and extrastriate visual cortex of the macaque. , 2008, Cerebral cortex.
[6] D. Yablonskiy,et al. Water proton MR properties of human blood at 1.5 Tesla: Magnetic susceptibility, T1, T2, T *2 , and non‐Lorentzian signal behavior , 2001, Magnetic resonance in medicine.
[7] Richard B. Buxton,et al. Dynamic models of BOLD contrast , 2012, NeuroImage.
[8] R. Buxton,et al. A Model for the Coupling between Cerebral Blood Flow and Oxygen Metabolism during Neural Stimulation , 1997, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[9] R. Freeman,et al. Single-Neuron Activity and Tissue Oxygenation in the Cerebral Cortex , 2003, Science.
[10] M. Ducros,et al. Simultaneous two-photon imaging of oxygen and blood flow in deep cerebral vessels , 2011, Nature Medicine.
[11] Gary H. Glover,et al. Changes of Cerebral Blood Flow, Oxygenation, and Oxidative Metabolism during Graded Motor Activation , 2002, NeuroImage.
[12] G H du Boulay,et al. Measurement of regional cerebral blood volume by computerized axial tomography. , 1976, Journal of neurology, neurosurgery, and psychiatry.
[13] Marcos Intaglietta,et al. Oxygen gradients in the microcirculation. , 2003, Physiological reviews.
[14] S. Ogawa,et al. Biophysical and Physiological Origins of Blood Oxygenation Level-Dependent fMRI Signals , 2012, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[15] Anna Devor,et al. Oxygen advection and diffusion in a three- dimensional vascular anatomical network. , 2008, Optics express.
[16] Kamil Ugurbil,et al. An integrative model for neuronal activity-induced signal changes for gradient and spin echo functional imaging , 2009, NeuroImage.
[17] Ravi S. Menon,et al. Functional brain mapping by blood oxygenation level-dependent contrast magnetic resonance imaging. A comparison of signal characteristics with a biophysical model. , 1993, Biophysical journal.
[18] Ulrich Dirnagl,et al. Pericytes in capillaries are contractile in vivo, but arterioles mediate functional hyperemia in the mouse brain , 2010, Proceedings of the National Academy of Sciences.
[19] M. Raichle,et al. Focal physiological uncoupling of cerebral blood flow and oxidative metabolism during somatosensory stimulation in human subjects. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[20] Gregory G. Brown,et al. Measurement of cerebral perfusion with arterial spin labeling: Part 1. Methods , 2007, Journal of the International Neuropsychological Society.
[21] T. L. Davis,et al. Calibrated functional MRI: mapping the dynamics of oxidative metabolism. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[22] R. Buxton. The physics of functional magnetic resonance imaging (fMRI) , 2013, Reports on progress in physics. Physical Society.
[23] S. Kety,et al. THE NITROUS OXIDE METHOD FOR THE QUANTITATIVE DETERMINATION OF CEREBRAL BLOOD FLOW IN MAN: THEORY, PROCEDURE AND NORMAL VALUES. , 1948, The Journal of clinical investigation.
[24] P. Drew,et al. Neurovascular Coupling and Decoupling in the Cortex during Voluntary Locomotion , 2014, The Journal of Neuroscience.
[25] Iwao Kanno,et al. Database of normal human cerebral blood flow, cerebral blood volume, cerebral oxygen extraction fraction and cerebral metabolic rate of oxygen measured by positron emission tomography with 15O-labelled carbon dioxide or water, carbon monoxide and oxygen: a multicentre study in Japan , 2004, European Journal of Nuclear Medicine and Molecular Imaging.
[26] Richard B. Buxton,et al. A theoretical framework for estimating cerebral oxygen metabolism changes using the calibrated-BOLD method: Modeling the effects of blood volume distribution, hematocrit, oxygen extraction fraction, and tissue signal properties on the BOLD signal , 2011, NeuroImage.
[27] Hiroshi Fukuda,et al. Changes in Cerebral Blood Flow and Cerebral Oxygen Metabolism during Neural Activation Measured by Positron Emission Tomography: Comparison with Blood Oxygenation Level-Dependent Contrast Measured by Functional Magnetic Resonance Imaging , 2005, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[28] R. Lewanczuk,et al. Vascular compliance is reduced in the early stages of type 1 diabetes. , 2001, Diabetes care.
[29] Céline Fouard,et al. A Novel Three‐Dimensional Computer‐Assisted Method for a Quantitative Study of Microvascular Networks of the Human Cerebral Cortex , 2006, Microcirculation.
[30] Anna Devor,et al. “Overshoot” of O2 Is Required to Maintain Baseline Tissue Oxygenation at Locations Distal to Blood Vessels , 2011, The Journal of Neuroscience.
[31] Thomas T. Liu,et al. Caffeine-induced uncoupling of cerebral blood flow and oxygen metabolism: A calibrated BOLD fMRI study , 2008, NeuroImage.
[32] Essa Yacoub,et al. The story of the initial dip in fMRI , 2012, NeuroImage.
[33] R. Buxton,et al. Modeling the hemodynamic response to brain activation , 2004, NeuroImage.
[34] J D Pickard,et al. Influence of baseline hematocrit on between-subject BOLD signal change using gradient echo and asymmetric spin echo EPI. , 2003, Magnetic resonance imaging.
[35] W. Erdmann,et al. Oxygen diffusion, conductivity and solubility coefficients in the microarea of the brain. (Measurements with noble metal microelectrodes). , 1977, Advances in experimental medicine and biology.
[36] A. Huk,et al. A Model for Transient Oxygen Delivery in Cerebral Cortex , 2009, Front. Neuroenerg..
[37] Peter C M van Zijl,et al. Oxygenation and hematocrit dependence of transverse relaxation rates of blood at 3T , 2007, Magnetic resonance in medicine.
[38] E. Leniger-Follert. Direct determination of local oxygen consumption of the brain cortex in vivo , 1977, Pflügers Archiv.
[39] Thomas T. Liu,et al. Caffeine alters the temporal dynamics of the visual BOLD response , 2004, NeuroImage.
[40] M. Raichle,et al. The Effects of Changes in PaCO2 Cerebral Blood Volume, Blood Flow, and Vascular Mean Transit Time , 1974, Stroke.
[41] Jack L. Lancaster,et al. CBF changes during brain activation: fMRI vs. PET , 2004, NeuroImage.
[42] N. Logothetis. The Underpinnings of the BOLD Functional Magnetic Resonance Imaging Signal , 2003, The Journal of Neuroscience.
[43] Phillip B. Jones,et al. A Multicompartment Vascular Model for Inferring Baseline and Functional Changes in Cerebral Oxygen Metabolism and Arterial Dilation , 2007, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[44] Norihiro Suzuki,et al. Control of Brain Capillary Blood Flow , 2012, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[45] Nozomi Nishimura,et al. Occlusion of cortical ascending venules causes blood flow decreases, reversals in flow direction, and vessel dilation in upstream capillaries , 2011, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[46] I Kanno,et al. Frequency dependence of local cerebral blood flow induced by somatosensory hind paw stimulation in rat under normo- and hypercapnia. , 2001, The Japanese journal of physiology.
[47] I Kanno,et al. Modulation of evoked cerebral blood flow under excessive blood supply and hyperoxic conditions. , 2000, The Japanese journal of physiology.
[48] 宁北芳,et al. 疟原虫var基因转换速率变化导致抗原变异[英]/Paul H, Robert P, Christodoulou Z, et al//Proc Natl Acad Sci U S A , 2005 .
[49] A. Dale,et al. Cortical depth-specific microvascular dilation underlies laminar differences in blood oxygenation level-dependent functional MRI signal , 2010, Proceedings of the National Academy of Sciences.
[50] Anna Devor,et al. Quantifying the Microvascular Origin of BOLD-fMRI from First Principles with Two-Photon Microscopy and an Oxygen-Sensitive Nanoprobe , 2015, The Journal of Neuroscience.
[51] Hanzhang Lu,et al. The BOLD post-stimulus undershoot, one of the most debated issues in fMRI , 2012, NeuroImage.
[52] N. Logothetis,et al. Neurophysiological investigation of the basis of the fMRI signal , 2001, Nature.
[53] D. Ts'o,et al. Cortical functional architecture and local coupling between neuronal activity and the microcirculation revealed by in vivo high-resolution optical imaging of intrinsic signals. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[54] Ying Zheng,et al. A Model of the Hemodynamic Response and Oxygen Delivery to Brain , 2002, NeuroImage.
[55] David Ress,et al. Model of the Transient Neurovascular Response Based on Prompt Arterial Dilation , 2013, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[56] S. Ogawa,et al. BOLD Based Functional MRI at 4 Tesla Includes a Capillary Bed Contribution: Echo‐Planar Imaging Correlates with Previous Optical Imaging Using Intrinsic Signals , 1995, Magnetic resonance in medicine.
[57] Thomas T. Liu,et al. Coupling of cerebral blood flow and oxygen consumption during physiological activation and deactivation measured with fMRI , 2004, NeuroImage.
[58] Nozomi Nishimura,et al. In vivo two-photon excited fluorescence microscopy reveals cardiac- and respiration-dependent pulsatile blood flow in cortical blood vessels in mice. , 2012, American journal of physiology. Heart and circulatory physiology.
[59] Kazuto Masamoto,et al. Changes in Cerebral Arterial, Tissue and Venous Oxygenation with Evoked Neural Stimulation: Implications for Hemoglobin-Based Functional Neuroimaging , 2010, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[60] P Cerretelli,et al. Human calf microvascular compliance measured by near-infrared spectroscopy. , 2000, Journal of applied physiology.
[61] A. Kleinschmidt,et al. Dynamic MRI sensitized to cerebral blood oxygenation and flow during sustained activation of human visual cortex , 1996, Magnetic resonance in medicine.
[62] J. R. Baker,et al. The intravascular contribution to fmri signal change: monte carlo modeling and diffusion‐weighted studies in vivo , 1995, Magnetic resonance in medicine.
[63] D. Kleinfeld,et al. Fluctuating and sensory-induced vasodynamics in rodent cortex extend arteriole capacity , 2011, Proceedings of the National Academy of Sciences.
[64] R. Buxton,et al. Dynamics of blood flow and oxygenation changes during brain activation: The balloon model , 1998, Magnetic resonance in medicine.
[65] A M Dale,et al. Measuring the thickness of the human cerebral cortex from magnetic resonance images. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[66] Thomas T. Liu,et al. Discrepancies between BOLD and flow dynamics in primary and supplementary motor areas: application of the balloon model to the interpretation of BOLD transients , 2004, NeuroImage.
[67] Junjie Liu,et al. Laminar profiles of functional activity in the human brain , 2007, NeuroImage.
[68] John E. W. Mayhew,et al. A time-invariant visco-elastic windkessel model relating blood flow and blood volume , 2009, NeuroImage.
[69] M. Mintun,et al. Nonoxidative glucose consumption during focal physiologic neural activity. , 1988, Science.
[70] John A. Detre,et al. The effects of graded hypercapnia on the activation flow coupling response due to forepaw stimulation in α-chloralose anesthetized rats , 2001, Brain Research.
[71] M. Singh,et al. A mathematical model for the computation of the oxygen dissociation curve in human blood. , 1989, Bio Systems.
[72] D. Yablonskiy,et al. Quantitative BOLD: Mapping of human cerebral deoxygenated blood volume and oxygen extraction fraction: Default state , 2007, Magnetic resonance in medicine.
[73] Stephen A. Billings,et al. A three-compartment model of the hemodynamic response and oxygen delivery to brain , 2005, NeuroImage.
[74] Kazuto Masamoto,et al. Oxygen transport in brain tissue. , 2009, Journal of biomechanical engineering.
[75] M E Phelps,et al. Validation of tomographic measurement of cerebral blood volume with C-11-labeled carboxyhemoglobin. , 1979, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[76] N. Logothetis,et al. Neurophysiology of the BOLD fMRI Signal in Awake Monkeys , 2008, Current Biology.
[77] D. Noll,et al. Nonlinear Aspects of the BOLD Response in Functional MRI , 1998, NeuroImage.
[78] Anders M. Dale,et al. Depth-resolved optical imaging and microscopy of vascular compartment dynamics during somatosensory stimulation , 2007, NeuroImage.
[79] J. Mayhew,et al. A Model of the Dynamic Relationship between Blood Flow and Volume Changes during Brain Activation , 2004, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[80] David A. Boas,et al. A temporal comparison of BOLD, ASL, and NIRS hemodynamic responses to motor stimuli in adult humans , 2006, NeuroImage.
[81] Thomas T. Liu,et al. A signal processing model for arterial spin labeling functional MRI , 2005, NeuroImage.
[82] B. Rosen,et al. Evidence of a Cerebrovascular Postarteriole Windkessel with Delayed Compliance , 1999, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.