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Updated: May 8, 2026

Transretinal ERG Recordings from Mouse Retina: Rod and Cone Photoresponses
Published on: March 14, 2012
Optoretinography in R9AP-bradyopsia reveals the essential role of G-protein signaling in the human cone elongation
Connor E Weiss1,2, Teng Liu1, Vimal Prabhu Pandiyan1,3
1Department of Ophthalmology, University of Washington School of Medicine.
Abstract:
Human cone and rod outer segments exhibit a rapid shrinkage followed by a slower elongation in response to light, forming the basis of the optoretinogram. The molecular basis of this optical assay of photoreceptor function remains incompletely understood. In mouse rods, the elongation response requires transducin, the G-protein α-subunit activated in the initial amplifying step of the phototransduction cascade. Here, we measured human cone outer segment responses in subjects with bradyopsia arising from a triple-deletion mutation in R9AP, the anchor and transport protein for the GTPase-activating protein (GAP) RGS9. Immunoprecipitation showed that the mutant R9AP has greatly reduced affinity for RGS9, predictably reducing the level of RGS9 in the outer segment. The bradyopsia subjects' elongation responses had normal activation kinetics, amplitude and photosensitivity, but markedly slowed recovery. These results indicate that normal levels of RGS9 are required for deactivation of the cone elongation response, situating the underlying molecular mechanism within the G-protein cascade at or prior to formation of the GAP complex. The recovery of the cone elongation response, measured in a paired-flash paradigm for stimuli isomerizing up to 75% of opsin, revealed that elongation requires a substrate that is depleted and recovers in a bleach-dependent manner. In particular, recovery from the highest bleaching exposure (75%) tracked the time course of cone opsin regeneration, implying that unregenerated cone opsin produces "dark light", known in rods to arise from constitutive activation of G-protein. Taken together, the results from controls and bradyopsia identify the inactive (GDP-bound) transducin complex as the essential substrate for the human cone elongation response. Suppression of the elongation response in the paired-flash paradigm further revealed the complete profile of the initial fast cone outer segment shrinkage response and reinforced its origin in opsin structural changes. Overall, these results identify key mechanistic elements of the optoretinogram and enable its use as a molecularly interpretable, non-invasive assay of cone function in disease and therapeutic response.
Insights
Human cone outer segment elongation requires RGS9 for response deactivation. This study identifies inactive transducin as the key substrate, advancing understanding of the optoretinogram as a cone function assay.
Area of Science:
- Ophthalmology
- Molecular Biology
- Phototransduction
Background:
- Human cone and rod outer segments change shape in response to light, forming the basis of the optoretinogram.
- The molecular mechanisms underlying the optoretinogram, an optical assay of photoreceptor function, are not fully understood.
- In mouse rods, the elongation response depends on transducin, a key G-protein in phototransduction.
Purpose of the Study:
- To investigate the molecular basis of human cone outer segment elongation responses.
- To determine the role of RGS9-R9AP complex in cone phototransduction deactivation.
- To elucidate the substrate requirements for the cone elongation response.
Main Methods:
- Measured human cone outer segment responses in subjects with bradyopsia caused by R9AP mutation.
- Utilized immunoprecipitation to assess R9AP-RGS9 binding affinity and RGS9 levels.
- Employed a paired-flash paradigm to analyze response recovery kinetics and bleach dependence.
Main Results:
- Bradyopsia subjects showed normal cone elongation activation but significantly slowed recovery, indicating RGS9's role in deactivation.
- Cone elongation requires a substrate (inactive, GDP-bound transducin) that is depleted and regenerates dependently on opsin regeneration.
- Recovery kinetics at high bleaching levels mirrored cone opsin regeneration, suggesting unregenerated opsin causes 'dark light'.
Conclusions:
- Normal RGS9 levels are essential for deactivating the human cone elongation response, implicating the G-protein cascade.
- Inactive transducin complex is identified as the critical substrate for the human cone elongation response.
- These findings clarify optoretinogram mechanisms and support its use as a non-invasive assay for cone function.
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