Iobbi Cristina, Korte Martin, Zagrebelsky Marta
Zoological Institute, Division of Cellular Neurobiology, TU Braunschweig, 38106, Braunschweig, Germany.
Helmholtz Centre for Infection Research, AG NIND, 38124, Braunschweig, Germany.
Cereb Cortex. 2017 May 1;27(5):2779-2792. doi: 10.1093/cercor/bhw122.
Nogo-A restricts long-term potentiation (LTP) at the Schaffer collateral-CA1 pathway in the adult hippocampus via 2 extracellular domains: Nogo-A-Δ20 and Nogo-66. Nogo-66 signals via Nogo Receptor 1 (NgR1) to regulate synaptic function. Whether the NgR1 coreceptors Lingo1 and p75NTR are involved in the signaling in this context is still not known. Moreover, the intracellular cascade mediating the activity of Nogo-66 in restricting LTP is unexplored. We combine electrophysiology and biochemistry in acute hippocampal slices and demonstrate that a loss of function for Lingo1 results in a significant increase in LTP levels at the Schaffer collateral-CA1 pathway, and that Lingo1 is the NgR1 coreceptor mediating the role of Nogo-66 in restricting LTP. Our data show that p75NTR is not involved in mediating the Nogo-66 effect on LTP. Moreover, loss of function for p75NTR and NgR1 equally attenuate LTD, suggesting that p75NTR might mediate the NgR1-dependent regulation of LTD, independently of Nogo-66. Finally, our results indicate that Nogo-66 signaling limits LTP via the ROCK2-Cofilin pathway to control the dynamics of the actin cytoskeleton. The present results elucidate the signaling pathway activated by Nogo-66 to control LTP and contribute to the understanding of how Nogo-A stabilizes the neural circuits to limit activity-dependent plasticity events in the mature hippocampus.
Nogo-A通过两个细胞外结构域:Nogo-A-Δ20和Nogo-66,限制成年海马体中沙费尔侧支-CA1通路的长时程增强(LTP)。Nogo-66通过Nogo受体1(NgR1)发出信号来调节突触功能。在这种情况下,NgR1共受体Lingo1和p75NTR是否参与信号传导尚不清楚。此外,介导Nogo-66在限制LTP中活性的细胞内级联反应尚未得到探索。我们在急性海马切片中结合了电生理学和生物化学方法,证明Lingo1功能丧失会导致沙费尔侧支-CA1通路的LTP水平显著增加,并且Lingo1是介导Nogo-66在限制LTP中作用的NgR1共受体。我们的数据表明p75NTR不参与介导Nogo-66对LTP的影响。此外,p75NTR和NgR1功能丧失同样会减弱长时程抑制(LTD),这表明p75NTR可能独立于Nogo-66介导NgR1依赖的LTD调节。最后,我们的结果表明,Nogo-66信号通过ROCK2-丝切蛋白通路限制LTP,以控制肌动蛋白细胞骨架的动力学。目前的结果阐明了Nogo-66激活的控制LTP的信号通路,并有助于理解Nogo-A如何稳定神经回路以限制成熟海马体中依赖活动的可塑性事件。