NADPH‐diaphorase neurons in the retina of the hamster
- 22 December 1994
- journal article
- research article
- Published by Wiley in Journal of Comparative Neurology
- Vol. 350 (4) , 550-558
- https://doi.org/10.1002/cne.903500404
Abstract
NADPH-diaphorase-positive neurons have been demonstrated in the inner nuclear layer and ganglion cell layer of the retina of different mammalian species, but so far no experiments have been conducted to identify whether these cells are amacrine cells and/or retinal ganglion cells. We attempted to solve this problem by studying the NADPH-diaphorase-positive neurons in the hamster retina. From the NADPH-diaphorase histochemical reaction, two distinct types of neurons in the hamster retina were identified. They were named ND(g) and ND(i) cells. The ND(g) cells were cells with larger somata, ranging from 10 to 21 μm in diameter with a mean of 15.58 μm (S.D.= 2.59). They were found in the ganglion cell layer only. The ND(i) cells were smaller, with the somata ranging from 7 to 11 μm and having the mean diameter of 8.77 μm (S.D. = 1.24). Most of the ND(i) cells were found in the inner nuclear layer, and only very few could be observed in the inner plexiform layer. On average, there were 8,033 ND(g) and 5,051 ND(i) cells in the ganglion cell layer and inner nuclear layer, respectively. Two experiments were performed to clarify whether any of the NADPH-diaphorase neurons were retinal ganglion cells. Following unilateral optic nerve section, which leads to the retrograde degeneration of retinal ganglion cells, the numbers of both ND(g) and ND(i) cells did not change significantly for up to 4 months. In addition, when retinal ganglion cells were prelabeled retrogradely (horseradish peroxidase of flurescent microspheres) and retinas were then stained for NADPH diaphorase, no double-labeled neurons were detected. These results indicated that the NADPH-diaphorase neurons in the hamster retina were the amacrine cells in the inner nuclear layer and displaced amacrine cells in the ganglion cell layer. Dendrites of the ND(g) and ND(i) cells were found to stratify in sublaminae 1, 3, and 5 of the inner plexiform layer, with a prominent staining in the sublamina 5. The possible importance of this arrangement in the rod pathway is also discussed.Keywords
This publication has 44 references indexed in Scilit:
- Mechanisms of nitric oxide-mediated neurotoxicity in primary brain culturesJournal of Neuroscience, 1993
- Characterization of the sprouting response of axon-like processes from retinal ganglion cells after axotomy in adult hamsters: a model using intravitreal implantation of a peripheral nerveJournal of Neurocytology, 1992
- Nitric oxide, a novel neuronal messengerNeuron, 1992
- Nitric oxide synthase and neuronal NADPH diaphorase are identical in brain and peripheral tissues.Proceedings of the National Academy of Sciences, 1991
- Nitric oxide mediates glutamate neurotoxicity in primary cortical cultures.Proceedings of the National Academy of Sciences, 1991
- Possible involvement of nitric oxide in long-term potentiationEuropean Journal of Pharmacology, 1991
- Regenerated retinal ganglion cell axons can form well-differentiated synapses in the superior colliculus of adult hamstersJournal of Neuroscience, 1989
- Distinct patterns of distribution among NADPH-diaphorase neurones of the guinea pig retinaNeuroscience Letters, 1989
- Glutamate neurotoxicity and diseases of the nervous systemNeuron, 1988
- Replication of the neurochemical characteristics of Huntington's disease by quinolinic acidNature, 1986