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Ito-Ishida, A.

Publications and source records attributed to Ito-Ishida, A..

2 recordsLinked to original sources

Structure-Function Coupling Aligns with a Unimodal-to-Transmodal Gradient in the Mouse Cortex

Understanding how anatomical connectivity shapes brain activity is essential for clarifying brain function and disorders. In the human brain, the regional heterogeneity in structure-function (S-F) coupling is well characterized by measuring correlations between structural and functional connectivity. However, it remains unclear whether the same principles apply to the mouse cortex, where biological mechanisms can be studied directly. Here, we mapped S-F coupling across the mouse cortex by combining high-resolution structural connectivity derived from axonal tracing with resting-state functional connectivity measured by wide-field calcium imaging. Our findings revealed that structural connectivity imposes a robust yet regionally variable constraint on functional connectivity. As in humans, the S-F coupling was strong in primary sensorimotor areas and weaker in association areas, demonstrating a gradient from unimodal-to-transmodal cortical organization. This spatial variation covaried with intrinsic cellular properties, including myelination, excitation-inhibition balance, synaptic density, and gene expression profiles, but did not align with the anatomically defined cortical hierarchy. Our findings highlight graded S-F coupling as a common organizational principle in both the mouse and human cortex, providing a framework for future mechanistic studies using mouse models.

neuroscience↗

Operant House: A Versatile Open-Source Platform for Automated Operant Conditioning Testing of Mice in Home Cages

Operant conditioning is a valuable method for studying cognitive functions, yet its adoption is limited by low throughput, labor intensity, and high costs. Here, we developed "Operant House," a low-cost, programmable device featuring a touchscreen, retractable levers, and a water reward port, designed for flexible, automated operant conditioning tasks. To validate its utility, we implemented two protocols to assess working memory in mice: a delayed non-match-to-position test and a two-choice spatial discrimination test. Using these protocols, we examined a mouse model of Alzheimers disease carrying familial Alzheimers disease-associated amyloid precursor protein mutations. Results revealed significant working memory deficits as early as 5 months of age. These findings highlight the Operant House as a cost-effective, high-throughput platform for evaluating higher cognitive functions in mice, offering an accessible tool for investigating models of neurological and neuropsychiatric disorders.

neuroscience↗