Related Experiment Video
Updated: Aug 27, 2026

A Procedure for Implanting Organized Arrays of Microwires for Single-unit Recordings in Awake, Behaving Animals
Published on: February 14, 2014
Neural correlates of licking behavior modulated by target position in the striatal matrix compartment
Taishi Kimoto1, Tomohiko Yoshizawa2, Yuta Ishimaru1
1Oral Physiology, Department of Oral Functional Science, Faculty of Dental Medicine and Graduate School of Dental Medicine, Hokkaido University, Hokkaido, Japan; Dentistry for Children and Disabled Persons, Department of Oral Functional Science, Faculty of Dental Medicine and Graduate School of Dental Medicine, Hokkaido University, Hokkaido, Japan.
Abstract:
The striatum is a major cortical input site of the basal ganglia and plays a critical role in the control of orofacial movements such as licking. However, how striatal activity relates to the spatial features of licking behavior remains unclear. In this study, we examined whether neural activity in the striatal matrix and striosomal compartments is associated with the spatial position of a licking target during an operant task. Head-fixed male mice performed a licking task in which the target positions were varied across three spatial dimensions. Using fiber photometry in Calb1-IRES-Cre (n = 7) and Pdyn-IRES-Cre (n = 6) mice, we recorded calcium signals from matrix and striosomal neurons. Associations between neural activity, target position, and behavioral variables were quantified using linear mixed-effects modeling with cross-validation. Matrix activity prior to the first detected lick was associated with reaction time and the dorsal-ventral target position. During licking, matrix activity was associated with the anterior-posterior and medial-lateral positions, independent of reaction time and lick count, whereas striosomal activity was associated with the dorsal-ventral position. These associations were correlational and differed in strength. The association between matrix activity and the anterior-posterior and medial-lateral positions was the most robust. The present findings are limited to male mice and to the hemisphere ipsilateral to the spout.

