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Implementing Dynamic Clamp with Synaptic and Artificial Conductances in Mouse Retinal Ganglion Cells
Authors:Jin Y. Huang  Klaus M. Stiefel  Dario A. Protti
Affiliation:Discipline of Biomedical Science, School of Medical Sciences, Sydney Medical School and Bosch Institute, University of Sydney;The MARCS Institute, University of Western Sydney;Discipline of Physiology, School of Medical Sciences, Sydney Medical School and Bosch Institute, University of Sydney
Abstract:Ganglion cells are the output neurons of the retina and their activity reflects the integration of multiple synaptic inputs arising from specific neural circuits. Patch clamp techniques, in voltage clamp and current clamp configurations, are commonly used to study the physiological properties of neurons and to characterize their synaptic inputs. Although the application of these techniques is highly informative, they pose various limitations. For example, it is difficult to quantify how the precise interactions of excitatory and inhibitory inputs determine response output. To address this issue, we used a modified current clamp technique, dynamic clamp, also called conductance clamp 1, 2, 3 and examined the impact of excitatory and inhibitory synaptic inputs on neuronal excitability. This technique requires the injection of current into the cell and is dependent on the real-time feedback of its membrane potential at that time. The injected current is calculated from predetermined excitatory and inhibitory synaptic conductances, their reversal potentials and the cell''s instantaneous membrane potential. Details on the experimental procedures, patch clamping cells to achieve a whole-cell configuration and employment of the dynamic clamp technique are illustrated in this video article. Here, we show the responses of mouse retinal ganglion cells to various conductance waveforms obtained from physiological experiments in control conditions or in the presence of drugs. Furthermore, we show the use of artificial excitatory and inhibitory conductances generated using alpha functions to investigate the responses of the cells.
Keywords:Neuroscience   Issue 75   Neurobiology   Biomedical Engineering   Anatomy   Physiology   Molecular Biology   Cellular Biology   Neurons   Retinal Neurons   Retinal Ganglion Cells   Eye   Retina   Neurosciences   retina   ganglion cells   synaptic conductance   artificial conductance   tetrodotoxin (TTX)   patch clamp   dynamic clamp   conductance clamp   electrophysiology   mouse   animal model
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