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CD44: a novel synaptic cell adhesion molecule regulating structural and functional plasticity of dendritic spines

机译:CD44:一种新型的突触细胞粘附分子,调节树突棘的结构和功能可塑性

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摘要

Synaptic cell adhesion molecules regulate signal transduction, synaptic function, and plasticity. However, their role in neuronal interactions with the extracellular matrix (ECM) is not well understood. Here we report that the CD44, a transmembrane receptor for hyaluronan, modulates synaptic plasticity. High-resolution ultrastructural analysis showed that CD44 was localized at mature synapses in the adult brain. The reduced expression of CD44 affected the synaptic excitatory transmission of primary hippocampal neurons, simultaneously modifying dendritic spine shape. The frequency of miniature excitatory postsynaptic currents decreased, accompanied by dendritic spine elongation and thinning. These structural and functional alterations went along with a decrease in the number of presynaptic Bassoon puncta, together with a reduction of PSD-95 levels at dendritic spines, suggesting a reduced number of functional synapses. Lack of CD44 also abrogated spine head enlargement upon neuronal stimulation. Moreover, our results indicate that CD44 contributes to proper dendritic spine shape and function by modulating the activity of actin cytoskeleton regulators, that is, Rho GTPases (RhoA, Rac1, and Cdc42). Thus CD44 appears to be a novel molecular player regulating functional and structural plasticity of dendritic spines.
机译:突触细胞粘附分子调节信号传导,突触功能和可塑性。但是,它们在与细胞外基质(ECM)的神经元相互作用中的作用尚不清楚。在这里我们报告说,透明质酸的跨膜受体CD44调节突触可塑性。高分辨率超微结构分析表明,CD44定位于成年大脑的成熟突触中。 CD44表达的降低影响了原代海马神经元的突触兴奋性传递,同时改变了树突棘的形状。微型兴奋性突触后电流的频率降低,并伴有树突棘的伸长和变薄。这些结构和功能的改变与突触前巴松管子的数量减少,以及树突棘的PSD-95水平降低,表明功能性突触的数量减少。 CD44的缺乏还消除了神经元刺激后脊柱头部的肿胀。此外,我们的结果表明,CD44通过调节肌动蛋白细胞骨架调节剂,即Rho GTPases(RhoA,Rac1和Cdc42)的活性,有助于适当的树突棘形状和功能。因此,CD44似乎是调节树突棘的功能和结构可塑性的新型分子。

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