Caveolae in the CNS arterioles mediate neurovascular coupling
暂无分享,去创建一个
Bernardo L. Sabatini | Chenghua Gu | B. Sabatini | Chenghua Gu | Karina Bistrong | B. Chow | Adam J. Granger | Brian W. Chow | Vicente Nuñez | Luke Kaplan | Karina Bistrong | Hannah L. Zucker | Payal Kumar | Luke Kaplan | H. Zucker | Vicente Nuñez | Payal Kumar
[1] Stefan R. Pulver,et al. Ultra-sensitive fluorescent proteins for imaging neuronal activity , 2013, Nature.
[2] D. Ginty,et al. Blood-Brain Barrier Permeability Is Regulated by Lipid Transport-Dependent Suppression of Caveolae-Mediated Transcytosis , 2017, Neuron.
[3] B. Rippe,et al. Transvascular protein transport in mice lacking endothelial caveolae. , 2006, American journal of physiology. Heart and circulatory physiology.
[4] M. Drab,et al. Loss of Caveolae, Vascular Dysfunction, and Pulmonary Defects in Caveolin-1 Gene-Disrupted Mice , 2001, Science.
[5] Richard G. W. Anderson,et al. Altered mitochondrial function and metabolic inflexibility associated with loss of caveolin-1. , 2012, Cell metabolism.
[6] T. Murphy,et al. In vivo Large-Scale Cortical Mapping Using Channelrhodopsin-2 Stimulation in Transgenic Mice Reveals Asymmetric and Reciprocal Relationships between Cortical Areas , 2012, Front. Neural Circuits.
[7] Prakash Kara,et al. Improved blood velocity measurements with a hybrid image filtering and iterative Radon transform algorithm , 2013, Front. Neurosci..
[8] C. S. Raymond,et al. High-Efficiency FLP and ΦC31 Site-Specific Recombination in Mammalian Cells , 2007, PloS one.
[9] Allan R. Jones,et al. A robust and high-throughput Cre reporting and characterization system for the whole mouse brain , 2009, Nature Neuroscience.
[10] Xiaoqin Zhu,et al. NG2 cells generate both oligodendrocytes and gray matter astrocytes , 2007, Development.
[11] Ping Lu,et al. Endothelial NMDA receptors mediate activity-dependent brain hemodynamic responses in mice , 2019, Proceedings of the National Academy of Sciences.
[12] P. Kara,et al. Neural correlates of single vessel hemodynamic responses in vivo , 2016, Nature.
[13] R. Harris,et al. Generation of a conditional allele for the mouse endothelial nitric oxide synthase gene , 2012, Genesis.
[14] M. Bitzer,et al. Caveolin-1 Regulates Transforming Growth Factor (TGF)-β/SMAD Signaling through an Interaction with the TGF-β Type I Receptor* , 2001, The Journal of Biological Chemistry.
[15] D. Roote,et al. Status Report , 2006, Journal of periodontology.
[16] G. Garcı́a-Cardeña,et al. Dissecting the Interaction between Nitric Oxide Synthase (NOS) and Caveolin , 1997, The Journal of Biological Chemistry.
[17] Nathan R. Tykocki,et al. Capillary K+-sensing initiates retrograde hyperpolarization to locally increase cerebral blood flow , 2017, Nature Neuroscience.
[18] Matthew B. Bouchard,et al. A Critical Role for the Vascular Endothelium in Functional Neurovascular Coupling in the Brain , 2014, Journal of the American Heart Association.
[19] P. Wong,et al. Mfsd2a is a transporter for the essential omega-3 fatty acid docosahexaenoic acid , 2014, Nature.
[20] C. Iadecola. The Neurovascular Unit Coming of Age: A Journey through Neurovascular Coupling in Health and Disease , 2017, Neuron.
[21] Robert G. Parton,et al. Cells Respond to Mechanical Stress by Rapid Disassembly of Caveolae , 2011, Cell.
[22] David Kleinfeld,et al. A Guide to Delineate the Logic of Neurovascular Signaling in the Brain , 2010, Front. Neuroenerg..
[23] J. Baur,et al. Purinergic glio-endothelial coupling during neuronal activity: role of P2Y1 receptors and eNOS in functional hyperemia in the mouse somatosensory cortex. , 2015, American journal of physiology. Heart and circulatory physiology.
[24] Stefan Offermanns,et al. G12-G13–LARG–mediated signaling in vascular smooth muscle is required for salt-induced hypertension , 2008, Nature Medicine.
[25] I. Grgic,et al. Evidence for functional and dynamic microcompartmentation of Cav-1/TRPV4/K(Ca) in caveolae of endothelial cells. , 2015, European journal of cell biology.
[26] N. Simionescu,et al. The cerebral microvasculature of the rat: structure and luminal surface properties during early development. , 1988, Journal of submicroscopic cytology and pathology.
[27] M. Gannon,et al. Deficiency of endothelial nitric-oxide synthase confers susceptibility to diabetic nephropathy in nephropathy-resistant inbred mice. , 2007, The American journal of pathology.
[28] Chenghua Gu,et al. Gradual Suppression of Transcytosis Governs Functional Blood-Retinal Barrier Formation , 2017, Neuron.
[29] Koji Ando,et al. A molecular atlas of cell types and zonation in the brain vasculature , 2018, Nature.
[30] E. Hillman. Coupling mechanism and significance of the BOLD signal: a status report. , 2014, Annual review of neuroscience.
[31] Carsten Steger,et al. An Unbiased Detector of Curvilinear Structures , 1998, IEEE Trans. Pattern Anal. Mach. Intell..
[32] H. S. Kim,et al. Elevated blood pressures in mice lacking endothelial nitric oxide synthase. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[33] Jaime Grutzendler,et al. Regional Blood Flow in the Normal and Ischemic Brain Is Controlled by Arteriolar Smooth Muscle Cell Contractility and Not by Capillary Pericytes , 2015, Neuron.
[34] Allan R. Jones,et al. A toolbox of Cre-dependent optogenetic transgenic mice for light-induced activation and silencing , 2012, Nature Neuroscience.
[35] W. Sessa,et al. Distinction between signaling mechanisms in lipid rafts vs. caveolae , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[36] R. Parton. Caveolae: Structure, Function, and Relationship to Disease. , 2018, Annual review of cell and developmental biology.
[37] G. Christ,et al. Caveolin-1 null mice are viable but show evidence of hyperproliferative and vascular abnormalities. , 2001, The Journal of biological chemistry.
[38] Berislav V. Zlokovic,et al. Blood–brain barrier breakdown in Alzheimer disease and other neurodegenerative disorders , 2018, Nature Reviews Neurology.
[39] T. Kamp,et al. Caveolae, ion channels and cardiac arrhythmias. , 2008, Progress in biophysics and molecular biology.
[40] R. Adams,et al. Notch controls retinal blood vessel maturation and quiescence , 2013, Development.
[41] Yoav Mayshar,et al. Mfsd2a is critical for the formation and function of the blood–brain barrier , 2014, Nature.
[42] Gr Li. Ion channels and cardiac arrhythmias , 2007 .
[43] Kathy O. Lui,et al. Mfsd2a+ hepatocytes repopulate the liver during injury and regeneration , 2016, Nature Communications.
[44] P. Pedersen,et al. Nucleotide domains in transport ATPases: structure-function and relationship to disease. , 1995, Society of General Physiologists series.
[45] Julie A. Harris,et al. Specific connections of the interpeduncular subnuclei reveal distinct components of the habenulopeduncular pathway , 2017, The Journal of comparative neurology.
[46] P. Kara,et al. An artery-specific fluorescent dye for studying neurovascular coupling , 2012, Nature Methods.