Related Experiment Video
Updated: Dec 18, 2025

Transretinal ERG Recordings from Mouse Retina: Rod and Cone Photoresponses
Published on: March 14, 2012
A kinetic analysis of mouse rod and cone photoreceptor responses
Jürgen Reingruber1, Norianne T Ingram2,3, Khris G Griffis3
1Institut de Biologie de l'École Normale Supérieure, 46 rue d'Ulm, Paris, 75005, France.
Key Points:
Most vertebrate eyes have rods for dim-light vision and cones for brighter light and higher temporal sensitivity. Rods evolved from cone-like precursors through expression of different transduction genes or the same genes at different expression levels, but we do not know which molecular differences were most important. We approached this problem by analysing rod and cone responses with the same model but with different values for model parameters. We showed that, in addition to outer-segment volume, the most important differences between rods and cones are: (1) decreased transduction gain, reflecting smaller amplification in the G-protein cascade; (2) a faster rate of turnover of the second messenger cGMP in darkness; and (3) an accelerated rate of decay of the effector enzyme phosphodiesterase and perhaps also of activated visual pigment. We believe our analysis has identified the principal alterations during evolution responsible for the duplex retina.
Abstract:
Most vertebrates have rod and cone photoreceptors, which differ in their sensitivity and response kinetics. We know that rods evolved from cone-like precursors through the expression of different transduction genes or the same genes at different levels, but we do not know which molecular differences were most important. We have approached this problem in mouse retina by analysing the kinetic differences between rod flash responses and recent voltage-clamp recordings of cone flash responses, using a model incorporating the principal features of photoreceptor transduction. We apply a novel method of analysis using the log-transform of the current, and we ask which of the model's dynamic parameters need be changed to transform the flash response of a rod into that of a cone. The most important changes are a decrease in the gain of the response, reflecting a reduction in amplification of the transduction cascade; an increase in the rate of turnover of cGMP in darkness; and an increase in the rate of decay of activated phosphodiesterase, with perhaps also an increase in the rate of decay of light-activated visual pigment. Although we cannot exclude other differences, and in particular alterations in the Ca2+ economy of the photoreceptors, we believe that we have identified the kinetic parameters principally responsible for the differences in the flash responses of the two kinds of photoreceptors, which were likely during evolution to have resulted in the duplex retina.
Insights
Rods evolved from cones, with key differences in transduction gain, cyclic GMP turnover, and enzyme decay rates driving this evolution. These molecular changes explain the development of the duplex retina in vertebrates.
Area of Science:
- Vision science
- Evolutionary biology
- Molecular biology
Background:
- Vertebrate eyes utilize rods for dim light and cones for bright light vision.
- Rods evolved from cone-like precursors, but the critical molecular differences remain unclear.
Purpose of the Study:
- To identify the key molecular parameters differentiating rod and cone photoreceptors.
- To understand the evolutionary alterations leading to the duplex retina.
Main Methods:
- Analysis of rod and cone responses using a biophysical model.
- Comparative analysis of kinetic parameters in mouse retina.
- Application of a novel log-transform method for current analysis.
Main Results:
- Decreased transduction gain in rods compared to cones.
- Faster turnover rate of cyclic guanosine monophosphate (cGMP) in rods in darkness.
- Accelerated decay rate of phosphodiesterase in rods.
Conclusions:
- Reduced amplification, altered cGMP dynamics, and faster enzyme decay are principal factors in rod evolution.
- These kinetic parameter changes likely drove the evolution of the duplex retina.
Related Concept Videos
Anatomy of the Eyeball
The Retina
Photoreceptors and Visual Pathways

