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Galetzka, C.

Publications and source records attributed to Galetzka, C..

2 recordsLinked to original sources

Precision in Motion: Reactive and Anticipatory Control of Mouse Tongue Movement for Interception

Object interception requires integrating prediction and sensory feedback, making it a powerful model for studying sensorimotor transformations. However, traditional head-fixed mouse paradigms reduce behavior to stereotyped stimulus-response associations and lack key features of natural interception. To address this limitation, we developed a behavioral task in which head-fixed mice use their tongue to intercept a food pellet moving at one of seven constant speeds randomly selected on each trial. We characterized the 3D kinematics of discrete tongue-reaching movements, their distinct motor phases, and learning-dependent changes in movement timing and kinematics. Mice adapted both tongue kinematics and movement onset to pellet speed, initially relying on reactive control and later adopting an anticipatory strategy. Anticipatory control depended largely on vision and intact lateral cerebellar circuits. This paradigm provides a powerful platform for investigating the neural mechanisms underlying predictive sensorimotor control and object interception in head-fixed mice. Significance StatementIn natural environments, interception requires seamless sensory-motor transformation, yet traditional paradigms like classical conditioning and virtual reality fall short of capturing this complex behavior. We introduce a behavioral paradigm in which trained mice intercept food pellets moving at constant speeds that vary randomly across trials, with discrete tongue licks. Remarkably, mice exhibit a shift from a reactive to a more anticipatory motor strategy, adaptively tuning lick initiation and projection speed in a learning-dependent manner. This work establishes a simplified interception-like framework for studying sensorimotor dynamics in head-fixed mice.

neuroscience↗

Persistent cerebellar molecular layer interneuron activity facilitates anticipatory control of tongue movements

Precise, anticipatory movements depend on the brains ability to generate motor commands in advance of immediate sensory input. Although the cerebellar cortex receives abundant sensory input via the mossy-fiber pathway, the mechanisms by which continuous sensory signals are transformed or gated remain poorly understood. Here, we show that molecular layer interneurons acquire persistent sensory-related Ca2+ activity in mice that develop anticipatory behavior. Employing a targeted lick-interception task, we found that interneurons in lobule Crus I, but much less in Crus II, exhibit enhanced Ca2+ activity up to five seconds before movement onset, locked to the spatial position of a continuously moving target, independent of body movement. In more anticipatory mice, movement onset becomes linked to the dynamics of this persistent activity, whereas less anticipatory mice adjust their movements based on immediate sensory-related input. Our results indicate that anticipation in sensorimotor tasks is supported by dynamic sensory representations encoded by interneurons.

neuroscience↗