Elementary response triggered by transducin in retinal rods.
basic_science · Level V
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- Record sourced from PubMed, PMID 30796193.
- Also identified by DOI 10.1073/pnas.1817781116 and PMC identifier 6421417.
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Abstract
G protein-coupled receptor (GPCR) signaling is crucial for many physiological processes. A signature of such pathways is high amplification, a concept originating from retinal rod phototransduction, whereby one photoactivated rhodopsin molecule (Rho*) was long reported to activate several hundred transducins (G<sub>T</sub>*s), each then activating a cGMP-phosphodiesterase catalytic subunit (G<sub>T</sub>*·PDE*). This high gain at the Rho*-to-G<sub>T</sub>* step has been challenged more recently, but estimates remain dispersed and rely on some nonintact rod measurements. With two independent approaches, one with an extremely inefficient mutant rhodopsin and the other with WT bleached rhodopsin, which has exceedingly weak constitutive activity in darkness, we obtained an estimate for the electrical effect from a single G<sub>T</sub>*·PDE* molecular complex in intact mouse rods. Comparing the single-G<sub>T</sub>*·PDE* effect to the WT single-photon response, both in <i>Gcaps</i><sup>-/-</sup> background, gives an effective gain of only ∼12-14 G<sub>T</sub>*·PDE*s produced per Rho*. Our findings have finally dispelled the entrenched concept of very high gain at the receptor-to-G protein/effector step in GPCR systems.
Medical subject headings
- Retinal Rod Photoreceptor Cells
- Transducin