figure 18.1 motor components of the human basal ganglia

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Figure 18.1 Motor components of the human basal ganglia

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Figure 18.1 Motor components of the human basal ganglia. Figure 18.1 Motor components of the human basal ganglia (Part 1). Figure 18.1 Motor components of the human basal ganglia (Part 2). Figure 18.2 Anatomical organization of the inputs to the basal ganglia. - PowerPoint PPT Presentation

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Page 1: Figure 18.1  Motor components of the human basal ganglia

Figure 18.1 Motor components of the human basal ganglia

Page 2: Figure 18.1  Motor components of the human basal ganglia

Figure 18.1 Motor components of the human basal ganglia (Part 1)

Page 3: Figure 18.1  Motor components of the human basal ganglia

Figure 18.1 Motor components of the human basal ganglia (Part 2)

Page 4: Figure 18.1  Motor components of the human basal ganglia

Figure 18.2 Anatomical organization of the inputs to the basal ganglia

Page 5: Figure 18.1  Motor components of the human basal ganglia

Figure 18.3 Neurons and circuits of the basal ganglia

Page 6: Figure 18.1  Motor components of the human basal ganglia

Figure 18.3 Neurons and circuits of the basal ganglia (Part 1)

Page 7: Figure 18.1  Motor components of the human basal ganglia

Figure 18.3 Neurons and circuits of the basal ganglia (Part 2)

Page 8: Figure 18.1  Motor components of the human basal ganglia

Figure 18.4 Regions of the cerebral cortex that project to the corpus striatum

Page 9: Figure 18.1  Motor components of the human basal ganglia

Figure 18.5 Functional organization of intrinsic circuitry and outputs of basal ganglia

Page 10: Figure 18.1  Motor components of the human basal ganglia

Figure 18.5 Functional organization of intrinsic circuitry and outputs of basal ganglia (Part 1)

Page 11: Figure 18.1  Motor components of the human basal ganglia

Figure 18.5 Functional organization of intrinsic circuitry and outputs of the basal ganglia (Part 2)

Page 12: Figure 18.1  Motor components of the human basal ganglia

Figure 18.6 A chain of nerve cells arranged in a disinhibitory circuit

Page 13: Figure 18.1  Motor components of the human basal ganglia

Figure 18.6 A chain of nerve cells arranged in a disinhibitory circuit (Part 1)

Page 14: Figure 18.1  Motor components of the human basal ganglia

Figure 18.6 A chain of nerve cells arranged in a disinhibitory circuit (Part 2)

Page 15: Figure 18.1  Motor components of the human basal ganglia

Figure 18.7 Basal ganglia disinhibition and the generation of saccadic eye movements

Page 16: Figure 18.1  Motor components of the human basal ganglia

Figure 18.7 Basal ganglia disinhibition and the generation of saccadic eye movements (Part 1)

Page 17: Figure 18.1  Motor components of the human basal ganglia

Figure 18.7 Basal ganglia disinhibition and the generation of saccadic eye movements (Part 2)

Page 18: Figure 18.1  Motor components of the human basal ganglia

Figure 18.8 Disinhibition in the direct and indirect pathways through the basal ganglia

Page 19: Figure 18.1  Motor components of the human basal ganglia

Figure 18.8 Disinhibition in the direct and indirect pathways through the basal ganglia (Part 1)

Page 20: Figure 18.1  Motor components of the human basal ganglia

Figure 18.8 Disinhibition in the direct and indirect pathways through the basal ganglia (Part 2)

Page 21: Figure 18.1  Motor components of the human basal ganglia

Figure 18.9 Center-surround functional organization of the direct and indirect pathways

Page 22: Figure 18.1  Motor components of the human basal ganglia

Figure 18.10 Neurological diseases provide insights into function of the basal ganglia

Page 23: Figure 18.1  Motor components of the human basal ganglia

Figure 18.11 Hypo- and hyperkinetic disorders alter the balance of inhibitory signals in the direct and indirect pathways

Page 24: Figure 18.1  Motor components of the human basal ganglia

Figure 18.11 Hypo- and hyperkinetic disorders alter the balance of inhibitory signals in the direct and indirect pathways (Part 1)

Page 25: Figure 18.1  Motor components of the human basal ganglia

Figure 18.11 Hypo- and hyperkinetic disorders alter the balance of inhibitory signals in the direct and indirect pathways (Part 2)

Page 26: Figure 18.1  Motor components of the human basal ganglia

Box 18C Deep Brain Stimulation

Page 27: Figure 18.1  Motor components of the human basal ganglia

Box 18C Deep Brain Stimulation (Part 1)

Page 28: Figure 18.1  Motor components of the human basal ganglia

Box 18C Deep Brain Stimulation (Part 2)

Page 29: Figure 18.1  Motor components of the human basal ganglia

Figure 18.12 Inactivation of tonically active cells of substantia nigra pars reticulata causes saccades

Page 30: Figure 18.1  Motor components of the human basal ganglia

Box 18D Basal Ganglia Loops and Non-Motor Brain Functions

Page 31: Figure 18.1  Motor components of the human basal ganglia

Box 18D Basal Ganglia Loops and Non-Motor Brain Functions (Part 1)

Page 32: Figure 18.1  Motor components of the human basal ganglia

Box 18D Basal Ganglia Loops and Non-Motor Brain Functions (Part 2)