Optical recording of electrical activity from axons and glia of frog optic nerve: Potentiometric dye responses and morphometrics
- 1 January 1988
- Vol. 1 (3) , 225-232
- https://doi.org/10.1002/glia.440010308
Abstract
Voltage-sensitive dyes were used to study the changes in membrane potential in axons and glial cells of the frog optic nerve following electrical stimulation. The lack of a signal in the unstained nerve and the multiphasic action spectra after staining indicated that the optical responses were from the extrinsic dyes. Changes in dye absorption and fluorescence had rapid and slow phases. The rapid phases resulted from action potentials in myelinated and unmyelinated axons. The kinetics of the slow phase of the optical response were similar to the depolarization recorded from the glial cells with intracellular electrodes. The ratio of the amplitudes of the fast and slow phases was characteristic for each type of dye. Pharmacological analysis of the action potential of the unmyelinated axons revealed tetrodotoxin-sensitive sodium channels and 4-aminopyridine-sensitive potassium channels. Repeated exposure of the stained preparation to light led to photodynamic damage as shown by a block of recovery of the glial depolarization. An electron microscopic morphometric study of the nerve was carried out in an effort to understand the contribution of the various anatomical elements to the compound optical response. The ratio of unmyelinated axon membrane to glial membrane was much greater than was the ratio of the fast and slow components of the signal, suggesting that the dyes either had a higher affinity for glial membrane or did not penetrate the nerve uniformly.Keywords
This publication has 18 references indexed in Scilit:
- Optical recording of electrical activity from parallel fibres and other cell types in skate cerebellar slices in vitro.The Journal of Physiology, 1987
- Ca2+- and K+-dependent communication between central nervous system myelinated axons and oligodendrocytes revealed by voltage-sensitive dyes.Proceedings of the National Academy of Sciences, 1986
- Voltage-sensitive dyes measure potential changes in axons and glia of the frog optic nerveNeuroscience Letters, 1986
- Real-Time Optical Mapping of Neuronal Activity: From Single Growth Cones to the Intact Mammalian BrainAnnual Review of Neuroscience, 1985
- Activity-Dependent K + Accumulation in the Developing Rat Optic NerveScience, 1982
- Calcium ChannelAnnual Review of Neuroscience, 1981
- Optical probes of membrane potential in heart muscle.The Journal of Physiology, 1979
- The Fine Anatomy of the Optic Nerve of Anurans—An Electron Microscope StudyThe Journal of cell biology, 1960
- Number of Fibres in the Optic Nerve and the Number of Ganglion Cells in the Retina of AnuransNature, 1959
- FIBER GROUPS IN THE OPTIC NERVEAmerican Journal of Physiology-Legacy Content, 1933