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xiii | |
Preface |
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xvii | |
Acknowledgments |
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xix | |
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1 Locus Coeruleus Noradrenergic Neurons and Astroglia in Health and Disease |
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Locus Coeruleus: Anatomy and Pathophysiology |
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2 | (4) |
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Astroglia and Neurodegeneration |
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6 | (4) |
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Presymptomatic Stage of Neurodegeneration Involves Astrogliosis |
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10 | (2) |
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Dysregulation of Astrocytic Vesicle Dynamics in Neurodegeneration |
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12 | (3) |
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15 | (1) |
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16 | (1) |
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16 | (1) |
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16 | (10) |
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2 Astroglial Adrenergic Receptor Signaling in Brain Cortex |
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Astrocytic and Neuronal Adrenergic Receptor Expression |
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26 | (2) |
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β-Adrenergic Signaling Pathways |
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28 | (3) |
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Signaling Pathways for Astrocytic α-Adrenergic Receptor Subtypes |
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31 | (3) |
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Metabolic Effects of α- and β-Adrenergic Stimulation of Astrocytes |
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34 | (1) |
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34 | (1) |
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34 | (4) |
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38 | (3) |
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Importance of Glycogen Turnover for Brain Function |
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41 | (3) |
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βrAdrenergic Stimulation of the Astrocytic Na+, K+-ATPase |
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44 | (1) |
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Importance of Adrenergic Stimulation During Culturing of Astrocytes |
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44 | (3) |
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47 | (1) |
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47 | (1) |
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48 | (16) |
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3 White Matter Astrocytes: Adrenergic Mechanisms |
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64 | (1) |
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White Matter Glia Ensure Rapid Neuronal Signaling Over Long Distances |
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65 | (1) |
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Neuroglial Communication in White Matter: The "Nodal Synapse" |
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66 | (2) |
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Adrenergic Mechanisms in White Matter |
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68 | (2) |
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Adrenergic Signaling in White Matter Physiology |
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70 | (1) |
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Adrenergic Signaling in White Matter Pathology |
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71 | (1) |
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Adrenergic Signaling Regulates Blood Flow |
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72 | (1) |
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73 | (1) |
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73 | (1) |
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74 | (8) |
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4 Role for Astroglial α1-Adrenergic receptors in Glia-Neuron Communications and Aging-Related Metaplasticity in the Neocortex |
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82 | (1) |
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Role for Astroglia in Brain Signaling and Metaplasticity |
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83 | (1) |
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Astrocytic Ca2+ Signaling: Specific Role for Adrenergic Receptors |
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84 | (3) |
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Adrenergic Receptors Induce the Release of Gliotransmitters From Neocortical Astrocytes |
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87 | (2) |
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Age- and Environment-Related Alterations in Astroglial Adrenergic Signaling |
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89 | (2) |
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Astroglial α1-Adrenergic Receptors Modulate Synaptic Transmission and Plasticity in the Neocortex |
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91 | (8) |
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99 | (1) |
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99 | (1) |
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100 | (4) |
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5 Adrenergic Ca2+ and cAMP Excitability: Effects on Glucose Availability and Cell Morphology in Astrocytes |
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104 | (1) |
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Adrenergic Modulation of Cytosolic Ca2+ and cAMP Excitability in Cultured Astrocytes |
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105 | (1) |
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Adrenergic Activation Triggers Phasic Ca2+ and Tonic cAMP/PKA Responses in Cultured Astrocytes |
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106 | (2) |
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Simultaneous Activation of α- and β-ARs Potentiates Ca2+ and cAMP/PKA Responses in Astrocytes |
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108 | (1) |
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Characteristics of Adrenergic Ca2+ Signaling in Astrocytes In Situ and In Vivo |
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109 | (1) |
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Adrenergic Excitability and Availability of Glycogen-Derived Cytosolic Glucose in Astrocytes |
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110 | (3) |
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Adrenergic Excitability and Astrocyte Morphologic Plasticity |
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113 | (1) |
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β-Adrenergic Activation and Stellation of Astrocytes |
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114 | (3) |
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Adrenergic Activation and Astrocyte Morphology In Vivo: Prevention of CNS Cellular Edema |
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117 | (1) |
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118 | (1) |
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119 | (1) |
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120 | (8) |
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6 Adrenergic Receptors on Astrocytes Modulate Gap Junctions |
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Gap Junction Subtypes in Glia and Their Consensus Sites of Phosphorylation by Adrenergic Receptor---Mediated Processes |
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128 | (2) |
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Direct Effects of Adrenergic Receptors on Gap Junctions |
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130 | (3) |
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Gap Junction Formation and Degradation |
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133 | (3) |
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Indirect Effects of Adrenergic Signaling on Coupling Within the Astrocyte Network |
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136 | (1) |
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136 | (1) |
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137 | (1) |
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138 | (2) |
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140 | (1) |
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140 | (1) |
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141 | (5) |
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7 Fluxes of Lactate Into, From, and Among Gap Junction-Coupled Astroglia and Their Interaction With Noradrenaline |
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146 | (1) |
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146 | (2) |
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Lactate Release vs Lactate Shuttling-Oxidation |
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148 | (1) |
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149 | (1) |
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Lactate Fluxes During Brain Activation |
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149 | (1) |
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Parallel Glucose Utilization Assays Reveal Increased Glycolysis During Brain Activation |
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149 | (2) |
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Lactate is the Predominant Labeled Metabolite of Glucose Released From Brain |
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151 | (1) |
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Impact of Lactate Spreading and Release on Functional Imaging of Brain Activation |
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151 | (1) |
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Astrocytic Lactate Trafficking Via Gap Junctions |
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152 | (1) |
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152 | (2) |
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Selectivity of Gap Junctional Trafficking of Molecules Involved in Glycolysis |
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154 | (1) |
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Lactate Uptake and Shuttling |
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155 | (2) |
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157 | (1) |
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157 | (1) |
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Perivascular Routes for Metabolite Discharge From Activated Brain Structures |
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158 | (1) |
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Influence of Noradrenaline on Astrocytic Lactate Fluxes |
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158 | (1) |
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Adrenergic Signaling and Aerobic Glycolysis |
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158 | (1) |
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β2-Adrenergic Vagus Nerve Signaling by Adrenaline and Noradrenaline in Blood |
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159 | (1) |
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Excitatory and Inhibitory Effects of Lactate and Influence on Brain Noradrenaline Release |
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159 | (2) |
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Influence of Noradrenaline on Astrocytic Metabolism |
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161 | (1) |
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162 | (1) |
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163 | (1) |
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163 | (5) |
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8 Dialogue Between Astrocytes and Noradrenergic Neurons Via L-Lactate |
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The Noradrenaline-to-Astrocyte Signaling Axis |
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168 | (1) |
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L-Lactate Release by Astrocytes |
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169 | (3) |
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L-Lactate as a Gliotransmitter Feed Forward Signal to Noradrenergic Neurons? |
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172 | (2) |
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Further Potential Signaling Roles of L-Lactate in the Brain |
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174 | (4) |
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178 | (1) |
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178 | (1) |
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178 | (1) |
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178 | (6) |
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9 Noradrenergic System and Memory: The Role of Astrocytes |
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184 | (1) |
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Brain Noradrenergic System and its Weight on Cerebral Energy Metabolism |
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184 | (1) |
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Noradrenergic Pathways and Receptors |
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184 | (3) |
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The Specific Action of Noradrenaline on Glycogen Metabolism |
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187 | (1) |
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188 | (1) |
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Noradrenaline Action on Synaptic Plasticity: Neurons as Targets |
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188 | (1) |
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Noradrenaline Action on Synaptic Plasticity: Astrocytes as Targets |
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189 | (1) |
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Role of Noradrenaline in Memory Paradigms |
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189 | (1) |
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Modulation of Astrocytic Energy Metabolism by Noradrenaline: Impact on Memory |
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190 | (1) |
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Brain Energy Metabolism and Memory |
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190 | (1) |
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The Central Role of Glycogen |
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191 | (2) |
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Influence of the Sleep---Wake Cycle |
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193 | (1) |
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194 | (1) |
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194 | (1) |
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195 | (7) |
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10 Hippocampal Noradrenaline Regulates Spatial Working Memory in the Rat |
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202 | (1) |
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203 | (1) |
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Subjects and Experimental Design |
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203 | (1) |
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Lesion and Transplantation Surgery |
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204 | (1) |
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204 | (1) |
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205 | (1) |
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206 | (1) |
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Microscopic Analysis and Quantitative Evaluation |
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207 | (1) |
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208 | (1) |
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208 | (1) |
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209 | (3) |
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212 | (1) |
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Effects of the Lesion and of Transplants |
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212 | (2) |
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214 | (1) |
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Effects of the Anti-DBH-Saporin Lesion |
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214 | (1) |
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215 | (1) |
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216 | (1) |
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216 | (1) |
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217 | (1) |
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217 | (5) |
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11 Enteric Astroglia and Noradrenergic/Purinergic Signaling |
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222 | (1) |
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Innervation of the Gut Wall |
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222 | (2) |
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Enteric Glia---Essentials |
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224 | (2) |
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Enteric Glia Cells Respond to the Direct Sympathetic Input: Ca2+ Excitability |
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226 | (1) |
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Enteric Glial Ca2+ Responses Regulate Gut Motility |
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227 | (1) |
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Other Selected Roles of Sympathetic Innervation and Enteric Glia in the Gut |
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228 | (3) |
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Sympathetic Nervous System and Enteric Glia in GI Disorders/Diseases |
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231 | (2) |
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233 | (1) |
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234 | (1) |
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234 | (1) |
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234 | (8) |
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12 Noradrenaline Drives Structural Changes in Astrocytes and Brain Extracellular Space |
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The Noradrenergic System---General Remarks |
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242 | (1) |
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Diversity of Noradrenergic Receptor Expression Underlies Diversity of Astrocytic Responses |
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242 | (1) |
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Noradrenergic System Relates to Function of Astrocytes |
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243 | (2) |
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Noradrenergic System's Effects on Astrocytes In Vitro |
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245 | (1) |
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Noradrenergic System's Effects on Astrocytes In Situ |
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245 | (2) |
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Brain Extracellular Space |
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247 | (2) |
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Noradrenergic System's Effects on Extracellular Space Structure |
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249 | (2) |
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251 | (1) |
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252 | (1) |
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252 | (1) |
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252 | (6) |
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13 Signaling Pathway of ß-Adrenergic Receptor in Astrocytes and its Relevance to Brain Edema |
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258 | (1) |
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259 | (3) |
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Extracellular Ions During Ischemia and/or Reperfusion |
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262 | (1) |
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MAPK/ERK1/2 Signaling Pathway During Ischemia and/or Reperfusion |
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263 | (1) |
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Effect of β-Adrenergic Receptor Antagonist on Brain Edema During Ischemia/Reperfusion |
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264 | (2) |
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266 | (1) |
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267 | (1) |
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268 | (1) |
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268 | (6) |
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14 Noradrenaline, Astroglia, and Neuroinflammation |
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274 | (1) |
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Astrocytes and Neuroinflammation |
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274 | (1) |
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Noradrenaline Depletion in Neurodegenerative Diseases |
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275 | (1) |
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Astrocyte Activation in Neurodegenerative Diseases |
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276 | (1) |
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Noradrenaline Regulation of Astrogliosis |
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277 | (3) |
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Noradrenaline Regulation of Astroglial Chemokines |
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280 | (2) |
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282 | (1) |
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282 | (1) |
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283 | (7) |
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15 Astrocytic β2-Adrenergic Receptors and Multiple Sclerosis |
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290 | (1) |
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Downregulation of Astrocytic β2-Adrenergic Receptors in Multiple Sclerosis |
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291 | (1) |
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β2-Adrenergic Receptors in Multiple Sclerosis and Progressive Multifocal Leukoencephalopathy |
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292 | (1) |
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Underlying Mechanism of Astrocytic β2-Adrenergic Receptor Downregulation |
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293 | (1) |
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Pathophysiological Role in Focal Inflammatory Lesions |
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294 | (1) |
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Pathophysiological Role in Axonal Degeneration |
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294 | (1) |
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Pathophysiological Role in Both Axonal Degeneration and Oligodendrogliopathy |
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295 | (1) |
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296 | (1) |
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296 | (1) |
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296 | (6) |
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16 Potentiation of β-Amyloid-Induced Cortical Inflammation by Noradrenaline and Noradrenergic Depletion: Implications for Alzheimer's Disease |
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Introduction: The Locus Coeruleus and Noradrenaline Function in Alzheimer's Disease |
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302 | (1) |
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Neuroinflammation in Alzheimer's Disease |
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302 | (1) |
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Antiinflammatory Actions of Noradrenaline |
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303 | (2) |
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Locus Coeruleus Damage in Alzheimer's Disease |
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305 | (1) |
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Locus Coeruleus Damage in Mouse Models of Alzheimer's Disease |
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305 | (1) |
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Clinical Trials to Modulate Noradrenaline Levels in Alzheimer's Disease Patients |
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306 | (1) |
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307 | (1) |
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307 | (1) |
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307 | (1) |
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308 | (5) |
Index |
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313 | |