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PMID: 7381424 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Heterogenic components of a fast electrical potential in Drosophila compound eye and their relation to visual pigment photoconversion.

The Journal of general physiology ·Vol. 75 ·No. 4 ·1980-04-00 ·Pages 353-79

Stephenson RS, Pak WL

Abstract

The electroretinogram of the dipteran compound eye in response to an intense flash contains an early, diphasic potential that has been termed the M potential. Both phases of the M potential arise from the photostimulation of metarhodopsin. The early, corneal-negative component, the M1, can be recorded intracellularly in the photoreceptors and has properties similar to the classical early receptor potential (ERP). The M1 is resistant to cold, anaesthesia, and anoxia and has no detectable latency. It depends on flash intensity and metarhodopsin fraction in the manner predicted for a closed, two-state pigment system, and its saturation is shown to correspond to the establishment of a photoequilibrium in the visual pigment. On the other hand, the dominant, corneal-positive component, the M2, does not behave like an ERP. It arises, not in the photoreceptors, but deeper in the retina at the level of the lamina, and resembles the on-transient of the electroretinogram in its reversal depth and sensitivity to cooling or CO2. The on-transient, which is present over a much wider range of stimulus intensity than the M potential, has been shown to arise from neurons in the lamina ganglionaris. Visual mutants in which the on-transient is absent or late are also defective in the M2. It is proposed that the M2 and the on-transient arise from the same or similar groups of second-order neurons, and that the M2 is a fast laminar response to the depolarizing M1 in the photoreceptors, just as the on-transient is a fast laminar response to the depolarizing late receptor potential. Unlike the M1, the M2 is not generally proportional to the amount of metarhodopsin photoconverted, and the M2 amplitude is influenced by factors, such as a steady depolarization of the photoreceptor, which do not affect the M1.

MeSH Terms
Action Potentials Animals Drosophila/genetics,metabolism,physiology Eye/metabolism In Vitro Techniques Light Mathematics Mutation Ocular Physiological Phenomena Retinal Pigments/metabolism,physiology
Chemicals
Retinal Pigments
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Stephenson R S
Pak W L
References (18)
18 references, click to expand
  1. Electrophysiological measurement of the number of rhodopsin molecules in single Limulus photoreceptors.
    J Gen Physiol. 1977 Nov;70(5):621-33 PMID: 591915
  2. Separation of receptor and lamina potentials in the electroretinogram of normal and mutant Drosophila.
    J Exp Biol. 1971 Aug;55(1):85-100 PMID: 5001616
  3. Analysis of the rhodopsin cycle in limulus ventral photoreceptors using the early receptor potential.
    J Gen Physiol. 1976 Nov;68(5):487-501 PMID: 11271
  4. Rapid dark recovery of the invertebrate early receptor potential.
    J Gen Physiol. 1973 Jul;62(1):77-86 PMID: 4713724
  5. On-transient of insect electroretinogram: its cellular origin.
    Science. 1971 Jun 4;172(3987):1055-7 PMID: 5573957
  6. The contribution of a sensitizing pigment to the photosensitivity spectra of fly rhodopsin and metarhodopsin.
    J Gen Physiol. 1979 May;73(5):517-40 PMID: 458418
  7. Vitamin A deprivation and Drosophila photopigments.
    Nature. 1977 Apr 14;266(5603):648-50 PMID: 404571
  8. A NEW RECEPTOR POTENTIAL OF THE MONKEY RETINA WITH NO DETECTABLE LATENCY.
    Nature. 1964 Feb 8;201:626-8 PMID: 14160664
  9. The kinetics of visual pigment systems. I. Mathematical analysis.
    Biol Cybern. 1978 Jul 14;30(1):23-32 PMID: 687687
  10. EARLY RECEPTOR POTENTIAL OF THE VERTEBRATE RETINA.
    Nature. 1964 Nov 21;204:736-9 PMID: 14235662
  11. Early receptor potential: photoreversible charge displacement in rhodopsin.
    Science. 1967 Mar 3;155(3766):1128-31 PMID: 6021913
  12. The kinetics of formation of metarhodopsin in intact photoreceptors of the fly.
    Z Naturforsch C. 1978 Nov-Dec;33(11-12):1009-10 PMID: 154219
  13. Desensitisation of peripheral photoreceptors shown by blue-induced decrease in transmittance of Drosophila rhabdomeres.
    Nature. 1978 Jun 29;273(5665):772-4 PMID: 96353
  14. Fast electrical potential from a long-lived, long-wavelength photoproduct of fly visual pigment.
    J Gen Physiol. 1974 Jun;63(6):740-56 PMID: 4829527
  15. Rapid photoresponses in the retina and their relevance to vision research.
    Photochem Photobiol. 1968 Nov;8(5):495-503 PMID: 5718052
  16. Rhodopsin: responses from transient intermediates formed during its bleaching.
    Science. 1967 Mar 3;155(3766):1131-3 PMID: 6021914
  17. The effects of some common cations on neuromuscular transmission in insects.
    J Physiol. 1955 Jan 28;127(1):90-103 PMID: 14354630
  18. Phototransduction mutants of Drosophila melanogaster.
    Adv Exp Med Biol. 1972;24(0):1-21 PMID: 4137105
Article Info
Journal
The Journal of general physiology
Abbr.
J Gen Physiol
ISSN
0022-1295
Published
1980-04-00
Pages
353-79
Language
English
Region
United States
NLM ID
2985110R
PMCID
PMC2215748
Subset
IM
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