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Ichinose, S.

Publications and source records attributed to Ichinose, S..

2 recordsLinked to original sources

Integrated Profiling of Synaptic E/I Balance Reveals Altered Synaptic Organization and Phenotypic Variability in a Prenatal ASD Model

Proper regulation of excitation and inhibition (E/I balance) is essential for maintaining stable neural circuit function and flexible behavior. Disruptions of E/I balance have been implicated in a variety of neurodevelopmental and psychiatric disorders, including autism spectrum disorder (ASD). However, despite advances in connectomics and molecular neuroscience, how localized disruptions in E/I balance within cortical laminar architectures contribute to behavioral abnormalities remains to be elucidated. Here, we developed a standardized analysis pipeline that combines depth-aligned synaptic mapping, perspective and logarithmic transformations, and multivariate behavioral profiling. Applying this approach to a prenatal valproic acid (VPA) exposure model of ASD, we identified depth-specific disruptions of excitatory and inhibitory synaptic organization within the anterior cingulate cortex (ACC), alongside impairments in social behavior. Principal component analysis (PCA) integrating synaptic and behavioral parameters revealed convergent abnormalities that robustly distinguished VPA-exposed mice from wild-type (WT) controls. Furthermore, although still at an exploratory stage, our findings demonstrate that the robustness of this pipeline enables both the identification of resilient individuals and the quantification of intervention effects. Together, our findings establish a new cross-level analytical framework linking synaptic organization to organismal behavior and provide insights into circuit-level mechanisms underlying ASD-related phenotypes.

neuroscience↗

Teneurin-2 at the Synapse Construction Site is a Signpost for Cargo Unloading from Motor Proteins

In mature neurons, excitatory synapses are formed on the dendritic spine, whereas inhibitory synapses are formed on the dendritic shaft. Thus, it is primarily the accumulation of synaptic proteins that characterizes inhibitory synapses as distinct from non-synaptic regions. Protein accumulation is achieved by a combination of microtubule (MT)-based transport by kinesins and lateral diffusion across the plasma membrane; however, how and when proteins are released from kinesins remains unclear. Using primary cultured hippocampal neurons, we found that Teneurin-2 (TEN2) promotes synaptic protein accumulation by recruiting MTs via the representative MT plus end-tracking protein, EB1. MTs recruitment was enhanced when the extracellular domain of TEN2 successfully chose partners, and the lateral diffusion of TEN2 was inhibited. Conversely, if TEN2 partner choice is not achieved, MTs are not recruited, and thus synaptogenesis is not followed. Our study revealed that cargo release from kinesins through TEN2-MTs interactions supports the continuity from partner choice to synaptogenesis, which is a critical step in synaptic maturation.

cell biology↗