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Updated: Jan 8, 2026

Automated Gait Analysis to Assess Functional Recovery in Rodents with Peripheral Nerve or Spinal Cord Contusion Injury
Published on: October 6, 2020
Role of the Medial Agranular Cortex in Sensory-Motor Integration During Walking: Insights From a Rodent Stroke Model
Daisuke Ishii1, Hironobu Osaki2, Arito Yozu3
1Department of Cognitive and Behavioral Neuroscience, Graduate School of Biomedical and Health Sciences, Hiroshima University, Hiroshima, JPN.
Abstract:
In the rodent motor cortex, limb movements are primarily governed by the lateral agranular cortex (AGl), whereas the medial agranular cortex (AGm) has been proposed to contribute to higher-order aspects of motor control. However, its independent contribution to sensory-motor integration has not been established. Previous studies have shown that infarcts encompassing both the AGl and AGm cause contralateral motor impairments, suggesting, but not proving, that the AGm might participate in movement control. In this study, we specifically tested whether focal lesions restricted to the AGm impair skilled locomotion. Using the ladder rung walking task, which requires precise paw placement based primarily on somatosensory cues with additional visual contributions, we examined mice with focal photothrombotic infarcts centered within the AGm at +2.0, +1.5, +1.0, or +0.5 mm anterior to bregma. To enable objective assessment, we developed an automated analysis pipeline using DeepLabCutTM (v2.2.0.4), a markerless pose-detection machine learning Python package, that computed forelimb and hindlimb foot-fault rates from multi-view videos. Foot-fault rates for both limbs did not increase under either regular or irregular rung patterns across pre- and postoperative sessions. By isolating the functional contribution of the AGm from that of the AGl, our results refine previous interpretations and demonstrate that AGm lesions alone do not impair visually and somatosensorily guided limb movements. Within the sensitivity of this assay, these findings indicate that the AGm is not required for executing such movements on this task. Together with prior evidence, these findings support the view that the AGm contributes primarily to the higher-order modulation of motor behavior, likely through spatial attention, rather than to direct motor execution.

