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Double-Edge Sword of Sustained ROCK Activation in Prion Diseases through Neuritogenesis Defects and Prion Accumulation

机译:通过神经发生缺陷和Pri病毒积累在Pri病毒疾病中持续激活岩石的双刃剑

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摘要

In prion diseases, synapse dysfunction, axon retraction and loss of neuronal polarity precede neuronal death. The mechanisms driving such polarization defects, however, remain unclear. Here, we examined the contribution of RhoA-associated coiled-coil containing kinases (ROCK), key players in neuritogenesis, to prion diseases. We found that overactivation of ROCK signaling occurred in neuronal stem cells infected by pathogenic prions (PrPSc) and impaired the sprouting of neurites. In reconstructed networks of mature neurons, PrPSc-induced ROCK overactivation provoked synapse disconnection and dendrite/axon degeneration. This overactivation of ROCK also disturbed overall neurotransmitter-associated functions. Importantly, we demonstrated that beyond its impact on neuronal polarity ROCK overactivity favored the production of PrPSc through a ROCK-dependent control of 3-phosphoinositide-dependent kinase 1 (PDK1) activity. In non-infectious conditions, ROCK and PDK1 associated within a complex and ROCK phosphorylated PDK1, conferring basal activity to PDK1. In prion-infected neurons, exacerbated ROCK activity increased the pool of PDK1 molecules physically interacting with and phosphorylated by ROCK. ROCK-induced PDK1 overstimulation then canceled the neuroprotective α-cleavage of normal cellular prion protein PrPC by TACE α-secretase, which physiologically precludes PrPSc production. In prion-infected cells, inhibition of ROCK rescued neurite sprouting, preserved neuronal architecture, restored neuronal functions and reduced the amount of PrPSc. In mice challenged with prions, inhibition of ROCK also lowered brain PrPSc accumulation, reduced motor impairment and extended survival. We conclude that ROCK overactivation exerts a double detrimental effect in prion diseases by altering neuronal polarity and triggering PrPSc accumulation. Eventually ROCK emerges as therapeutic target to combat prion diseases.
机译:在病毒疾病中,突触功能障碍,轴突收缩和神经元极性丧失先于神经元死亡。然而,驱动这种极化缺陷的机制仍不清楚。在这里,我们检查了与RhoA相关的卷曲螺旋蛋白激酶(ROCK)(在神经形成中的关键作用因子)对病毒疾病的贡献。我们发现,ROCK信号的过度激活发生在被致病性ions病毒(PrP Sc )感染的神经元干细胞中,并损害了神经突的发芽。在重建的成熟神经元网络中,PrP Sc 诱导的ROCK过度激活引起突触断开和枝晶/轴突变性。 ROCK的这种过度激活也干扰了与神经递质相关的整体功能。重要的是,我们证明了ROCK过度活跃除了对神经元极性的影响外,还通过ROCK依赖的3-磷酸肌醇依赖性激酶1(PDK1)活性控制了PrP Sc 的产生。在非感染性条件下,ROCK和PDK1在复杂的物质中结合并且ROCK磷酸化了PDK1,从而赋予PDK1基础活性。在病毒感染的神经元中,加剧的ROCK活性增加了与ROCK物理相互作用并被ROCK磷酸化的PDK1分子库。 ROCK诱导的PDK1过度刺激随后取消了TACEα-分泌酶对正常细胞病毒蛋白PrP C 的神经保护性α切割,这在生理上阻止了PrP Sc 的产生。在病毒感染的细胞中,ROCK的抑制可挽救神经突发芽,保留神经元结构,恢复神经元功能并减少PrP Sc 的量。在受到病毒攻击的小鼠中,ROCK的抑制作用还降低了脑PrP Sc 的积累,减少了运动障碍并延长了生存期。我们得出结论,ROCK过度激活通过改变神经元极性和触发PrP Sc 积累而在病毒疾病中产生双重有害作用。最终,ROCK成为对抗病毒疾病的治疗靶标。

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