C. Gonzalez-Cabrera, R. Kayumova, E. Guatteo, N. Berretta, N. B. Mercuri, T. Montero, M. Vila, P. Henny, M. Prigge
Locomotor direction in mammals is implemented by descending circuits, yet how midbrain selection systems bias directional motor output remains unclear. Here we define a projection-defined inhibitory pathway from the ventral tegmental area to the oral pontine reticular nucleus (VTAPnO) whose activation is sufficient to drive backward locomotion. These TH- VTA neurons form monosynaptic GABAA synapses locally while projecting to PnO, establishing a dual local-projection inhibitory architecture. Somatic activation reliably induced backward locomotion, and selective stimulation of VTAPnO terminals reproduced the effect. Pathway recruitment produced a rapid transient increase in dopaminergic single-unit activity and frequency-dependent increases in dopaminergic population calcium signals in awake mice. During forced locomotion, chronically recorded VTAPnO neurons were preferentially engaged during reverse compared to forward rotations. Together, these findings reveal a projection-defined midbrain pathway that biases locomotor direction through coordinated local inhibition and distal engagement of a brainstem premotor node.