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Research ArticleNew Research, Development

dSTIM- and Ral/Exocyst-Mediated Synaptic Release from Pupal Dopaminergic Neurons Sustains Drosophila Flight

Shlesha Richhariya, Siddharth Jayakumar, Sanjay Kumar Sukumar and Gaiti Hasan
eNeuro 22 May 2018, 5 (3) ENEURO.0455-17.2018; https://doi.org/10.1523/ENEURO.0455-17.2018
Shlesha Richhariya
National Centre for Biological Sciences, TIFR, Bangalore 560065, India
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Siddharth Jayakumar
National Centre for Biological Sciences, TIFR, Bangalore 560065, India
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Sanjay Kumar Sukumar
National Centre for Biological Sciences, TIFR, Bangalore 560065, India
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Gaiti Hasan
National Centre for Biological Sciences, TIFR, Bangalore 560065, India
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Abstract

Manifestation of appropriate behavior in adult animals requires developmental mechanisms that help in the formation of correctly wired neural circuits. Flight circuit development in Drosophila requires store-operated calcium entry (SOCE) through the STIM/Orai pathway. SOCE-associated flight deficits in adult Drosophila derive extensively from regulation of gene expression in pupal neurons, and one such SOCE-regulated gene encodes the small GTPase Ral. The cellular mechanism by which Ral helps in maturation of the flight circuit was not understood. Here, we show that knockdown of components of a Ral effector, the exocyst complex, in pupal neurons also leads to reduced flight bout durations, and this phenotype derives primarily from dopaminergic neurons. Importantly, synaptic release from pupal dopaminergic neurons is abrogated upon knockdown of dSTIM, Ral, or exocyst components. Ral overexpression restores the diminished synaptic release of dStim knockdown neurons as well as flight deficits associated with dSTIM knockdown in dopaminergic neurons. These results identify Ral-mediated vesicular release as an effector mechanism of neuronal SOCE in pupal dopaminergic neurons with functional consequences on flight behavior.

  • Exo84
  • Neural Circuit
  • SOCE
  • Synaptic Maturation

Footnotes

  • The authors declare no competing interests.

  • This study was supported by grants from National Center for Biological Sciences, Tata Institute for Fundamental Research, to G.H. S.R. and S.J were supported by fellowships from National Center for Biological Sciences and Council of Scientific and Industrial Research, respectively.

This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license, which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.

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eneuro: 5 (3)
eNeuro
Vol. 5, Issue 3
May/June 2018
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dSTIM- and Ral/Exocyst-Mediated Synaptic Release from Pupal Dopaminergic Neurons Sustains Drosophila Flight
Shlesha Richhariya, Siddharth Jayakumar, Sanjay Kumar Sukumar, Gaiti Hasan
eNeuro 22 May 2018, 5 (3) ENEURO.0455-17.2018; DOI: 10.1523/ENEURO.0455-17.2018

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dSTIM- and Ral/Exocyst-Mediated Synaptic Release from Pupal Dopaminergic Neurons Sustains Drosophila Flight
Shlesha Richhariya, Siddharth Jayakumar, Sanjay Kumar Sukumar, Gaiti Hasan
eNeuro 22 May 2018, 5 (3) ENEURO.0455-17.2018; DOI: 10.1523/ENEURO.0455-17.2018
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Keywords

  • Exo84
  • Neural Circuit
  • SOCE
  • Synaptic Maturation

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