Feedback network controls photoreceptor output at the layer of first visual synapses in Drosophila

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Date

2006

Authors

Lei Zheng
Gonzalo García De Polavieja
Verena Wolfram
Musa Hakan Asyali
Roger C. Hardie
Mikko A. Juusola

Journal Title

Journal ISSN

Volume Title

Publisher

Rockefeller Univ Press

Open Access Color

Green Open Access

Yes

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Publicly Funded

No
Impulse
Top 10%
Influence
Top 10%
Popularity
Top 10%

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Journal Issue

Abstract

At the layer of first visual synapses information from photoreceptors is processed and transmitted towards the brain. In fly compound eye output from photoreceptors (R1-R6) that share the same visual field is pooled and transmitted via histaminergic synapses to two classes of interneuron large monopolar cells (LMCs) and amacrine cells (ACs). The interneurons also feed back to photoreceptor terminals via numerous ligand-gated synapses yet the significance of these connections has remained a mystery. We investigated the role of feedback synapses by comparing intracellular responses of photoreceptors and LMCs in wild-type Drosophila and in synaptic mutants to light and current pulses and to naturalistic light stimuli. The recordings were further subjected to rigorous statistical and information-theoretical analysis. We show that the feedback synapses form a negative feedback loop that controls the speed and amplitude of photoreceptor responses and hence the quality of the transmitted signals. These results highlight the benefits of feedback synapses for neural information processing and suggest that similar coding strategies could be used in other nervous systems. © The Rockefeller University Press. © 2008 Elsevier B.V. All rights reserved., MEDLINE® is the source for the MeSH terms of this document.

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Keywords

Animal Experiment, Article, Drosophila, Feedback System, Information, Light, Mutant, Nonhuman, Photoreceptor, Signal Transduction, Statistical Significance, Stimulus, Synapse, Visual System, Wild Type, Animals, Drosophila Melanogaster, Electrophysiology, Evoked Potentials Visual, Feedback, Interneurons, Light, Microelectrodes, Models Biological, Patch-clamp Techniques, Photoreceptors Invertebrate, Signal Transduction, Synaptic Transmission, Temperature, animal experiment, article, Drosophila, feedback system, information, light, mutant, nonhuman, photoreceptor, signal transduction, statistical significance, stimulus, synapse, visual system, wild type, Animals, Drosophila melanogaster, Electrophysiology, Evoked Potentials Visual, Feedback, Interneurons, Light, Microelectrodes, Models Biological, Patch-Clamp Techniques, Photoreceptors Invertebrate, Signal Transduction, Synaptic Transmission, Temperature, Patch-Clamp Techniques, Light, Temperature, Articles, Models, Biological, Synaptic Transmission, Feedback, Electrophysiology, Drosophila melanogaster, Interneurons, Animals, Evoked Potentials, Visual, Photoreceptor Cells, Invertebrate, Microelectrodes, Signal Transduction

Fields of Science

0301 basic medicine, 0303 health sciences, 03 medical and health sciences

Citation

WoS Q

Scopus Q

Source

The Journal of General Physiology

Volume

127

Issue

5

Start Page

495

End Page

510
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Citations

CrossRef : 84

Scopus : 82

PubMed : 53

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Mendeley Readers : 92

SCOPUS™ Citations

82

checked on Apr 08, 2026

Web of Science™ Citations

77

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