A neural circuit for context-dependent multimodal signaling in Drosophila
Steinfath, E.; Khalili, A.; Stenger, M.; Schultze, B. L.; Ravindran, S. N.; Alizadeh, K.; Clemens, J.
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Many animals, including humans, produce multimodal displays by combining acoustic with visual or vibratory signals [1-4]. However, the neural circuits that coordinate the production of multiple signals in a context-dependent manner are unknown. Multimodal behaviors could be produced by parallel circuits that independently integrate the external cues that trigger each signal. We find that multimodal signals in Drosophila are driven by a single circuit that integrates external sensory cues with internal motivational state and circuit dynamics. Drosophila males produce air-borne song and substrate-borne vibration during courtship and previous studies have identified neurons that drive courtship and singing, but the contexts and circuits that drive vibrations and coordinate multimodal signaling were not known [5-11]. We show that males produce song and vibration in distinct, largely non-overlapping contexts and that brain neurons that drive song also drive vibrations with cell-type specific dynamics and via separate pre-motor pathways. This circuit also coordinates multimodal signaling with ongoing behavior, namely locomotion, to drive vibrations only when the males vibrations can reach the female. A shared circuit facilitates the control of signal dynamics by external cues and motivational state through shared mechanisms like recurrence and mutual inhibition. A proof-of-concept circuit model shows that these motifs are sufficient to explain the behavioral dynamics. Our work shows how simple motifs can be combined in a single neural circuit to select and coordinate multiple behaviors.
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