Chemical excitation and inactivation in photoreceptors of the fly mutants trp and nss.
Open Access
- 1 September 1989
- journal article
- research article
- Published by Rockefeller University Press in The Journal of general physiology
- Vol. 94 (3) , 465-491
- https://doi.org/10.1085/jgp.94.3.465
Abstract
The Drosophila and Lucilia photoreceptor mutants, trp and nss, respond like wild-type flies to a short pulse of intense light or prolonged dim light; however, upon continuous intense illumination, the trp and nss mutants are unable to maintain persistent excitation. This defect manifests itself by a decline of the receptor potential toward baseline during prolonged intense illumination with little change in the shape or amplitude of the quantal responses to single photons (quantum bumps). Previous work on the trp and nss mutants suggests that a negative feedback loop may control the rate of bump production. Chemical agents affecting different steps of the phototransduction cascade were used in conjunction with light to identify a possible branching point of the feedback loop and molecular stages which are affected by the mutation. Fluoride ions, which in the dark both excite and adapt the photoreceptors of wild-type flies, neither excite nor adapt the photoreceptors of the trp and nss mutants. The hydrolysis-resistant analogue, GTP gamma S, which excites the photoreceptors of wild-type flies, resulting in noisy depolarization, markedly reduces the light response of both mutant flies. Intracellular recordings revealed, however, that the inhibitory effect of GTP gamma S on the nss mutant was accompanied neither by any significant depolarization nor by an increase in the noise, and thus was very different from the effect of a dim background light. The combination of inositol trisphosphate and diphosphoglycerate (InsP3 + DPG), which efficiently excites the photoreceptors of wild-type Lucilia, also excites the photoreceptors of nss Lucilia mutant. The InsP3 + DPG together act synergistically with light to accelerate the decline of the response to light in the mutant flies. These results suggest that the fly phototransduction pathway involves a feedback regulatory loop, which branches subsequent to InsP3 production and regulates guanine nucleotide-binding protein (G protein)-phospholipase C activity. A defect in this regulatory loop, which may cause an unusually low level of intracellular Ca2+, severely reduces the triggering of bumps in the mutants during intense prolonged illumination.This publication has 55 references indexed in Scilit:
- Inositol trisphosphatase and bisphosphatase activities in the retina of crabFEBS Letters, 1988
- Blockade of Visual Excitation and Adaptation in Limulus Photoreceptor by GDP-β-SScience, 1986
- Rescue of the Drosophila Phototransduction Mutation trp by Germline TransformationScience, 1985
- Fluoroaluminates activate transducin‐GDP by mimicking the γ‐phosphate of GTP in its binding siteFEBS Letters, 1985
- A direct demonstration that inositol-trisphosphate induces an increase in intracellular calcium in limulus photoreceptorsBiochemical and Biophysical Research Communications, 1984
- A light‐stimulated increase of cyclic GMP in squid photoreceptorsFEBS Letters, 1984
- Light-induced reduction in excitation efficiency in the trp mutant of Drosophila.The Journal of general physiology, 1982
- Light-induced pigment granule migration in the retinular cells of Drosophila melanogaster. Comparison of wild type with ERG-defective mutants.The Journal of general physiology, 1981
- A light-activated GTPase from octopus photoreceptorsBiochemical and Biophysical Research Communications, 1980
- Voltage Noise in Limulus Visual CellsScience, 1968