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在体内小鼠皮层中,驱动蛋白家族成员5B(KIF5B)在树突棘可塑性以及突触后密度蛋白95(PSD95)和脆性X智力低下蛋白(FMRP)的树突定位中发挥重要作用。

KIF5B plays important roles in dendritic spine plasticity and dendritic localization of PSD95 and FMRP in the mouse cortex in vivo.

作者信息

Fok Albert Hiu Ka, Huang Yuhua, So Beth Wing Lam, Zheng Qiyu, Tse Chun Sing Carlos, Li Xiaoyang, Wong Kenneth Kin-Yip, Huang Jiandong, Lai Kwok-On, Lai Cora Sau Wan

机构信息

School of Biomedical Sciences, The University of Hong Kong, Hong Kong SAR, China.

School of Biomedical Sciences, The University of Hong Kong, Hong Kong SAR, China; Advanced Biomedical Instrumentation Centre, Hong Kong Science Park, Shatin, New Territories, Hong Kong SAR, China.

出版信息

Cell Rep. 2024 Mar 26;43(3):113906. doi: 10.1016/j.celrep.2024.113906. Epub 2024 Mar 7.

Abstract

Kinesin 1 (KIF5) is one major type of motor protein in neurons, but its members' function in the intact brain remains less studied. Using in vivo two-photon imaging, we find that conditional knockout of Kif5b (KIF5B cKO) in CaMKIIα-Cre-expressing neurons shows heightened turnover and lower stability of dendritic spines in layer 2/3 pyramidal neurons with reduced spine postsynaptic density protein 95 acquisition in the mouse cortex. Furthermore, the RNA-binding protein fragile X mental retardation protein (FMRP) is translocated to the proximity of newly formed spines several hours before the spine formation events in vivo in control mice, but this preceding transport of FMRP is abolished in KIF5B cKO mice. We further find that FMRP is localized closer to newly formed spines after fear extinction, but this learning-dependent localization is disrupted in KIF5B cKO mice. Our findings provide the crucial in vivo evidence that KIF5B is involved in the dendritic targeting of synaptic proteins that underlies dendritic spine plasticity.

摘要

驱动蛋白1(KIF5)是神经元中一种主要的运动蛋白类型,但其成员在完整大脑中的功能仍鲜少被研究。利用体内双光子成像技术,我们发现,在表达CaMKIIα-Cre的神经元中条件性敲除Kif5b(KIF5B条件性敲除,KIF5B cKO)会导致小鼠皮层第2/3层锥体神经元的树突棘更新加快、稳定性降低,同时树突棘突触后致密蛋白95的获取减少。此外,在对照小鼠体内,RNA结合蛋白脆性X智力低下蛋白(FMRP)在树突棘形成事件发生前数小时就会转移到新形成的树突棘附近,但在KIF5B cKO小鼠中,FMRP的这种提前转运被消除。我们进一步发现,恐惧消退后FMRP更靠近新形成的树突棘,但这种依赖学习的定位在KIF5B cKO小鼠中受到破坏。我们的研究结果提供了关键的体内证据,表明KIF5B参与了作为树突棘可塑性基础的突触蛋白的树突靶向作用。

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