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Egawa, R.

Publications and source records attributed to Egawa, R..

2 recordsLinked to original sources

CRISPR/Cas9-based knockout screening revealed GSK3β as a key regulator for structural plasticity of axon initial segment

The axon initial segment (AIS) undergoes structural plasticity to tune neuronal excitability, yet the underlying molecular mechanisms remain unclear. Here we developed an in vivo CRISPR/Cas9 knockout platform using an all-in-one triple-guide RNA vector introduced via electroporation and employed this approach to identify molecules that regulate developmental AIS shortening in the chicken nucleus magnocellularis. We targeted fourteen molecules associated with microtubules and found that knockout of either glycogen synthase kinase 3{beta} (GSK3{beta}) or Tau impaired the AIS shortening. Conversely, overexpression of a constitutively active form of GSK3{beta} facilitated the AIS shortening in vivo. This GSK3{beta}-induced shortening was reproduced in slice cultures and suppressed by microtubule stabilization. Together, these findings identify GSK3{beta}-dependent microtubule remodeling as a mechanism underlying developmental AIS shortening and establish an in vivo genetic approach for molecular screening in chick embryos.

neuroscience↗

Regional heterogeneities of oligodendrocytes determine biased distribution pattern of Ranvier nodes along single axons in sound localization circuit

Spacing of Ranvier nodes along myelinated axons is a critical determinant of conduction velocity, influencing spike arrival timing and hence neural circuit function. In the chick brainstem auditory circuit, the pattern of nodal spacing varies regionally along single axons, enabling precise binaural integration for sound localization. Using this model, we investigated the potential factors underlying the biased nodal spacing pattern. 3D morphometry revealed that these axons were almost fully myelinated by oligodendrocytes exhibiting distinct morphologies and cell densities across regions after hearing onset. The structure of axons did not affect internodal length. Inhibiting vesicular release from the axons did not affect internodal length or oligodendrocyte morphology, but caused unmyelinated segments on the axons by suppressing oligodendrogenesis near the presynaptic terminals. These results suggest that the regional heterogeneity in the intrinsic properties of oligodendrocytes is a prominent determinant of the biased nodal spacing pattern in the sound localization circuit, while activity-dependent signaling supports the pattern by ensuring adequate oligodendrocyte density. Our findings highlight the importance of oligodendrocyte heterogeneity in fine-tuning neural circuit function.

neuroscience↗