Selective presynaptic inhibition of leg proprioception in behaving Drosophila.

Dallmann, Chris J; Luo, Yichen; Agrawal, Sweta; Mamiya, Akira; Chou, Grant M; Cook, Andrew; Sustar, Anne; Brunton, Bingni W et al. · Nature · 2025

basic_science · Level V

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Abstract

Controlling arms and legs requires feedback from the proprioceptive sensory neurons that detect joint position and movement<sup>1,2</sup>. Proprioceptive feedback must be tuned for different behavioural contexts<sup>3-6</sup>, but the underlying circuit mechanisms remain poorly understood. Here, using calcium imaging in behaving Drosophila, we find that the axons of position-encoding leg proprioceptors are active across a range of behaviours, whereas the axons of movement-encoding leg proprioceptors are suppressed during walking and grooming. Using connectomics<sup>7-9</sup>, we identify a specific class of interneurons that provide GABAergic presynaptic inhibition to the axons of movement-encoding proprioceptors. These interneurons receive input from parallel excitatory and inhibitory descending pathways that are positioned to drive the interneurons in a context-specific and leg-specific manner. Calcium imaging from both the interneurons and their descending inputs confirms that their activity is correlated with self-generated but not passive leg movements. Taken together, our findings reveal a neural circuit that suppresses specific proprioceptive feedback signals during self-generated movements.

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