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Updated: Jul 15, 2026

Transretinal ERG Recordings from Mouse Retina: Rod and Cone Photoresponses
Published on: March 14, 2012
Temporal response properties of the primary and secondary rod-signaling pathways in normal and Gnat2 mutant mice
S Nusinowitz1, W H Ridder, J Ramirez
1Jules Stein Eye Institute, UCLA School of Medicine, Los Angeles, CA, USA. nusinowitz@jsei.ucla.edu
Abstract:
Multiple signaling pathways have been proposed for rod vision in the mammalian retina. The primary and secondary rod pathways have been characterized in humans with the scotopic 15-Hz flicker electroretinogram (ERG). The purpose of this study was to determine whether the response properties of these pathways in the mouse are similar to those of humans. C57BL/6J and Gnat2(cpfl3) mutant mice lacking functional cones were used in these experiments. Standard ERG recording techniques were employed. Response functions were obtained for a range of flash intensities (-4.7logcd-s/m(2) to -0.2logcd-s/m(2)) and temporal modulation frequencies (1-30Hz). The mouse intensity-response functions to 15-Hz flickering stimuli possessed the same features as that of humans - a local amplitude minimum and a rapid phase change in the intensity region where the primary and secondary pathways are mutually inhibitory. However, the secondary pathway in the mouse did not achieve the same level of sensitivity as previously shown for humans, suggesting inter-species differences in post-receptoral signal processing. In Gnat2(cpfl3) mutant mice, the secondary pathway was completely abolished. Measurements of temporal acuity indicated that the primary and secondary rod pathways could mediate temporal frequencies as high as 30 and 50Hz, respectively. The response functions for mice are similar to those of humans, although the evidence suggests that the primary rod pathway dominates all rod-mediated signal processing in the mouse. Nevertheless, these results demonstrate the feasibility of measuring non-invasively the performance characteristics of the primary and secondary rod retinal pathways in the mouse and provide a mechanism for testing hypotheses about the action of disease where post-receptoral cells are differentially affected.
Insights
Mouse and human rod vision pathways share similarities, but mice show lower sensitivity in the secondary pathway, indicating inter-species differences in retinal signal processing.
Area of Science:
- Neuroscience
- Ophthalmology
- Vision Science
Background:
- Rod vision in mammals involves multiple signaling pathways.
- Primary and secondary rod pathways are characterized in humans using the scotopic 15-Hz flicker electroretinogram (ERG).
Purpose of the Study:
- To compare the response properties of primary and secondary rod pathways in mice with those in humans.
- To investigate inter-species differences in post-receptoral signal processing.
Main Methods:
- Utilized C57BL/6J and Gnat2(cpfl3) mutant mice (lacking functional cones).
- Employed standard electroretinogram (ERG) recording techniques.
- Obtained response functions across a range of flash intensities and temporal modulation frequencies (1-30 Hz).
Main Results:
- Mouse intensity-response functions to 15-Hz stimuli mirrored human features, including a local amplitude minimum and phase change.
- The secondary rod pathway in mice exhibited lower sensitivity than in humans, with complete abolition in Gnat2(cpfl3) mutants.
- Primary and secondary rod pathways mediated temporal frequencies up to 30 Hz and 50 Hz, respectively.
Conclusions:
- Mouse rod vision pathways are largely similar to humans, with the primary pathway dominating.
- Demonstrated non-invasive measurement of rod pathway performance in mice.
- Provides a model for studying diseases affecting post-receptoral retinal cells.

