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May 1, 20260 citations

Rhodopsin 7 is Indispensable for Regulating the Firing Rates of Olfactory Sensory Neurons in Response to Extracellular Field Potential Changes in Drosophila melanogaster.

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MKMasaki KataokaKSKeisuke SaitoKIKazuaki Ikeda

Key Points

  • This research aims to determine the role of rhodopsin 7 in regulating olfactory sensory neuron firing rates in Drosophila melanogaster in response to extracellular field potential changes.
  • Investigated the effects of light stimulation on firing rates of olfactory sensory neurons
  • Analyzed octopaminergic neuron influence on extracellular field potential
  • Conducted structural analysis to determine rhodopsin 7's voltage-dependent gating mechanism
  • Rhodopsin 7 mediates firing rate changes in olfactory sensory neurons independent of light stimulation
  • Extracellular field potential changes are regulated by octopaminergic neurons in response to light
  • Findings imply that the nervous system actively modulates field potentials, affecting neural activity and behavior

Abstract

Although extracellular field potential changes are commonly observed in the nervous system, it remains controversial if extracellular electrical activity contributes to neural processing or whether it is an epiphenomenon associated with neural activity. We previously reported that the extracellular field potential change in compound eyes in response to light stimulation induces firing rate changes in olfactory sensory neurons in female Drosophila melanogaster. Through further investigation, we found that the extracellular field potential within the olfactory sensillum is regulated by octopaminergic neurons in response to light stimulation and that rhodopsin 7 mediates the firing rate changes in the olfactory sensory neurons in response to field potential changes in a light-independent manner. Structural analysis suggests a voltage-dependent gating mechanism for rhodopsin 7 to respond to the field potential change. This study reveals that the nervous system actively controls the field potential in response to sensory input, resulting in the alteration of behavioral patterns as well as neural firing patterns in a context-dependent manner.

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Cite This Study

Kataoka et al. (2026) studied this question.

synapsesocial.com/papers/69f443e8967e944ac55670cfhttps://doi.org/10.1111/ejn.70509
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1RHODOPSIN 7: An ancestral non-canonical photoreceptor shaping light-responsive behavior2025
  2. 2Genome-Wide Association Study and transcriptome analysis reveals a complex gene network that regulates opsin gene expression and cell fate determination in Drosophila R7 photoreceptor cells2024 · 1 citations
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  5. 5Horizontal-cell like Dm9 neurons in Drosophila modulate photoreceptor output to supply multiple functions in early visual processing2024 · 6 citations