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Kaneko, R.

Publications and source records attributed to Kaneko, R..

3 recordsLinked to original sources

Visualization of trans homophilic interaction of clustered protocadherin in neurons

Clustered protocadherin (Pcdh) functions as a cell recognition molecule through the homophilic interaction in CNS. However, its interactions have yet not been visualized in neurons. We previously reported Pcdh{gamma}B2-FRET probes to be applicable only for cell lines. Herein, we newly designed Pcdh{gamma}B2-FRET probes by fusing FRET donor and acceptor fluorescent proteins to a single Pcdh{gamma}B2 molecule and succeeded in visualizing Pcdh{gamma}B2 homophilic interaction in cultured hippocampal neurons. The {gamma}B2-FRET probe localized in the soma and neurites, and FRET signals were observed at contact sites between neurites and eliminated by EGTA addition. Live imaging revealed that the FRET-negative {gamma}B2 signals were rapidly moving along neurites and soma, whereas the FRET-positive signals remained in place. We observed that the {gamma}B2 proteins at synapses rarely interact homophilically. The {gamma}B2-FRET probe would allow us to elucidate the function of the homophilic interaction and the cell recognition mechanism. Significance StatementWe visualize the Pcdh homophilic interaction using a novel FRET-based probe, and reveal that the homophilically interacting Pcdh proteins are found at contact sites between the neurites and roots of neurites from the soma, and are stable at a location. Additionally, in neurons, Pcdh proteins are located at synapses but rarely interact homophilically.

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↗

In vitro generation of human embryonic stem cell-derived heart organoids possessing physiological ion currents

Recently, methods for in vitro organogenesis have been broadly developed due to their strong potential for human applications in medicine. In the present study, we optimized the culturing method of human heart organoids (hHOs) from embryonic stem cells (ESCs) in the presence of the highly concentrated laminin-entactin and fibroblast growth factor 4. The resulting hHOs showed distinctive cardiac morphology with atrium- and ventricle-like chambers composed of cardiac cells as well as expressed the integral proteins of gap junctions and ion channels. In fact, isolated cardiomyocytes from these hHOs exhibited Na and Ca currents by patch clamp analysis. These results indicated that the present method will provide a powerful tool for cardiac safety assessment of newly developed drugs as an in vitro human ESC-derived test system. One-Sentence SummaryFGF4 and ECM contribute to the generation of human HOs with heart compartments and electrophysiological properties.

bioengineering↗