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Updated: Jul 15, 2026

In Vivo Optical Calcium Imaging of Learning-Induced Synaptic Plasticity in Drosophila melanogaster
Published on: October 8, 2019
Novel stimulus-induced calcium efflux in Drosophila mushroom bodies
1Institute of Neuroscience, Key Laboratory of Neurobiology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, 320 Yueyang Road, Shanghai 200031, China.
Abstract:
The mushroom body (MB) is an important part of the Drosophila brain, and is involved in many behaviors, including olfactory learning and memory and some visual cognition. However, the physiological properties of MB neurons remain elusive. Here we used a calcium-imaging technique to study calcium signals in Drosophila MB. We found that, rather than increasing calcium spread, electrical stimuli dramatically decreased calcium signals in the terminals of MB fibers. This novel calcium decrease occurred at all developmental stages from larvae to adults, but was specific for certain regions of the MB neurons. GABA receptor blockade promoted calcium propagation through the MB fibers, but did not disrupt the stimulus-induced decrease in calcium. Furthermore, this decrease in calcium was independent of extracellular calcium concentration and was not due to altered uptake by intracellular calcium stores and mitochondria. Rather, we found that inhibition of sodium-calcium exchangers significantly attenuated the stimulus-induced decrease in calcium, whereas the decrease persisted when membrane calcium pumps were blocked. Our findings indicate that MB neurons exhibit a novel stimulus-induced calcium efflux, which may be importantly regulated by sodium-calcium exchangers in the Drosophila MB.
Insights
Electrical stimulation of Drosophila mushroom bodies (MB) causes a unique decrease in calcium signals within MB neurons. This calcium efflux, regulated by sodium-calcium exchangers, offers new insights into MB physiology.
Area of Science:
- Neuroscience
- Insect neurobiology
- Calcium signaling
Background:
- The mushroom body (MB) in Drosophila is crucial for learning, memory, and visual cognition.
- Physiological properties of MB neurons are not well understood.
Purpose of the Study:
- To investigate calcium dynamics in Drosophila MB neurons using advanced imaging.
- To elucidate the mechanisms behind stimulus-induced calcium changes in MB.
Main Methods:
- Utilized calcium-imaging techniques to monitor MB neuron activity in Drosophila.
- Applied electrical stimuli and pharmacological manipulations (GABA receptor blockade, ion exchanger/pump inhibitors).
Main Results:
- Electrical stimuli induced a significant decrease, not an increase, in calcium signals in MB fiber terminals.
- This phenomenon was observed across all developmental stages and specific MB regions.
- The calcium decrease was independent of extracellular calcium and intracellular stores, but was attenuated by inhibiting sodium-calcium exchangers.
Conclusions:
- Drosophila MB neurons exhibit a novel, stimulus-induced calcium efflux mechanism.
- Sodium-calcium exchangers play a key role in regulating this calcium efflux in MB neurons.

