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Serotonin-mushroom body circuit modulating the formation of anesthesia-resistant memory in Drosophila

  • Pei Tseng Lee
  • , Hsuan Wen Lin
  • , Yu Hsuan Chang
  • , Tsai Feng Fu
  • , Josh Dubnau
  • , Jay Hirsh
  • , Tzumin Lee
  • , Ann Shyn Chiang
  • National Tsing Hua University
  • National Chi Nan University
  • University of Virginia
  • Howard Hughes Medical Institute
  • Academia Sinica - Genomics Research Center
  • University of California at San Diego

Research output: Contribution to journalArticlepeer-review

124 Scopus citations

Abstract

Pavlovian olfactory learning in Drosophila produces two genetically distinct forms of intermediate-term memories: anesthesia-sensitive memory, which requires the amnesiac gene, and anesthesiaresistant memory (ARM), which requires the radish gene. Here, we report that ARM is specifically enhanced or inhibited in flies with elevated or reduced serotonin (5HT) levels, respectively. The requirement for 5HT was additive with the memory defect of the amnesiac mutation but was occluded by the radish mutation. This result suggests that 5HT and Radish protein act on the same pathway for ARM formation. Three supporting lines of evidence indicate that ARM formation requires 5HT released from only two dorsal paired medial (DPM) neurons onto the mushroom bodies (MBs), the olfactory learning and memory center in Drosophila: (i) DPM neurons were 5HT-antibody immunopositive; (ii) temporal inhibition of 5HT synthesis or release from DPM neurons, but not from other serotonergic neurons, impaired ARM formation; (iii) knocking down the expression of d5HT1A serotonin receptors in α/β MB neurons, which are innervated by DPM neurons, inhibited ARM formation. Thus, in addition to the Amnesiac peptide required for anesthesia-sensitive memory formation, the two DPM neurons also release 5HT acting on MB neurons for ARM formation.

Original languageEnglish
Pages (from-to)13794-13799
Number of pages6
JournalProceedings of the National Academy of Sciences of the United States of America
Volume108
Issue number33
DOIs
StatePublished - Aug 16 2011

Keywords

  • Aversive conditioning
  • Brain
  • Neurotransmitter
  • Olfaction

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