Search bioRxiv⌕ Search

Biology subjects

Fukaya, R.

Publications and source records attributed to Fukaya, 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↗

Twinfilin-1 phosphorylation in reelin signaling regulates actin dynamics and spine development

Reelin is an extracellular glycoprotein essential for neuronal migration, spine development, and synaptic plasticity. Impaired reelin signaling is linked to neurological disorders, including schizophrenia and autism. While reelin mutant (reeler) mice exhibit behavioral deficits associated with impaired spine formation, the underlying molecular mechanisms remain unclear. We identified Twinfilin-1 (Twf1) as a downstream effector of reelin signaling via phosphoproteomic analysis, based on its reduced tyrosine phosphorylation in reeler mice. We found that Src regulated Twf1 phosphorylation at tyrosine 309, and reelin stimulation increased Twf1 phosphorylation in neurons, an effect blocked by the Src inhibitor PP2. A phospho-resistant Twf1 mutant (Twf1 Y309F) showed reduced capping protein binding and a lower F/G-actin ratio. Twf1Y309F mice exhibited cognitive deficits, reduced spine density, smaller spine head size, and a decreased F/G-actin ratio in synaptosomes. These findings highlight Twf1 phosphorylation as a key component of reelin signaling involved in actin remodeling and spine development.

neuroscience↗