Synaptic Plasticity Regulation of Nogo-A and Development of Related Neurological Diseases (review)

  • HE Mei ,
  • MAO Min ,
  • ZHAO Guo-yan ,
  • TANG Jun-jie ,
  • FENG Shuang ,
  • LU Xiu-min ,
  • WANG Yong-tang
Expand
  • 1. College of Pharmacy and Biological Engineering, Chongqing University of Technology, Chongqing 400054, China
    2. State Key Laboratory of Trauma, Burns and Combined Injury, Institute of Surgery Research, Daping Hospital, Third Military Medical University, Chongqing 400042, China

Received date: 2018-10-01

  Revised date: 2018-10-18

  Online published: 2019-04-01

Supported by

National Natural Science Foundation of China (No. 81671903; No. 81772064; No. 81372040),

Abstract

Axonal damage leads to permanent defects in the adult mammals central nervous system. As an important axonal growth inhibitor, Nogo-A and its receptors involve in the regulation of synaptic plasticity in mature neurons of the central nervous system, and play a role in the related neurological diseases, such as spinal cord injury, multiple sclerosis, Alzheimer's disease and posttraumatic stress disorder.

Cite this article

HE Mei , MAO Min , ZHAO Guo-yan , TANG Jun-jie , FENG Shuang , LU Xiu-min , WANG Yong-tang . Synaptic Plasticity Regulation of Nogo-A and Development of Related Neurological Diseases (review)[J]. Chinese Journal of Rehabilitation Theory and Practice, 2019 , 25(2) : 196 -200 . DOI: 10.3969/j.issn.1006-9771.2019.02.012

References

[1] Zagrebelsky M, Korte M. Maintaining stable memory engrams: new roles for Nogo-A in the CNS [J]. Neuroscience, 2014, 283: 17-25.
[2] Huber A B, Weinmann O, Br?samle C, et al. Patterns of Nogo mRNA and protein expression in the developing and adult rat and after CNS lesions [J]. J Neurosci, 2002, 22(9): 3553-3567.
[3] Schwab M E, Strittmatter S M. Nogo limits neural plasticity and recovery from injury [J]. Curr Opin Neurobiol, 2014, 27: 53-60.
[4] Voeltz G K, Prinz W A, Shibata Y, et al. A class of membrane proteins shaping the tubular endoplasmic reticulum [J]. Cell, 2006, 130(4): 573-586.
[5] Mcdonald C L, Bandtlow C, Reindl M. Targeting the Nogo receptor complex in diseases of the central nervous system [J]. Curr Med Chem, 2011, 18(2): 234-244.
[6] Sun Z, Dai X, Li Y, et al. A novel Nogo-66 receptor antagonist peptide promotes neurite regeneration in vitro [J]. Mol Cell Neurosci, 2016, 71: 80-91.
[7] Iobbi C, Korte M, Zagrebelsky M. Nogo-66 restricts synaptic strengthening via Lingo1 and the ROCK2-Cofilin pathway to control actin dynamics [J]. Cereb Cortex, 2017, 27(5): 2779-2792.
[8] Peng W S, Qi C, Zhang H, et al. Distribution of paired immunoglobulin-like receptor B in the nervous system related to regeneration dififculties after unilateral lumbar spinal cord injury [J]. Neural Regen Res, 2015, 10(7): 1139-1146.
[9] Kempf A, Tews B, Arzt M E, et al. The sphingolipid receptor S1PR2 is a receptor for Nogo-A repressing synaptic plasticity [J]. PLoS Biol, 2014, 12(1): e1001763.
[10] Caroni P, Donato F, Muller D. Structural plasticity upon learning: regulation and functions [J]. Nat Rev Neurosci, 2012, 13(7): 478-490.
[11] Toda T, Gage F H. Review: adult neurogenesis contributes to hippocampal plasticity [J]. Cell Tissue Res, 2018, 373(3): 693-709.
[12] Wills Z P, Mandelbrehm C, Mardinly A R, et al. The Nogo receptor family restricts synapse number in the developing hippocampus [J]. Neuron, 2012, 73(3): 466-481.
[13] Petrinovic M M, Hourez R, Aloy E M, et al. Neuronal Nogo-A negatively regulates dendritic morphology and synaptic transmission in the cerebellum [J]. Proc Natl Acad Sci U S A, 2013, 110(3): 1083-1088.
[14] Akbik F V, Bhagat S M, Patel P R, et al. Anatomical plasticity of adult brain is titrated by Nogo Receptor 1 [J]. Neuron, 2013, 77(5): 859-866.
[15] Zemmar A, Weinmann O, Kellner Y, et al. Neutralization of Nogo-A enhances synaptic plasticity in the rodent motor cortex and improves motor learning in vivo [J]. J Neurosci, 2014, 34(26): 8685-8698.
[16] Guzik-Kornacka A, van der Bouga A, Vajda F, et al. Nogo-A deletion increases the plasticity of the optokinetic response and changes retinal projection organization in the adult mouse visual system [J]. Brain Struct Funct, 2016, 221(1): 1-13.
[17] Djurisic M, Vidal G S, Mann M, et al. PirB regulates a structural substrate for cortical plasticity [J]. Proc Natl Acad Sci U S A, 2013, 110(51): 20771-20776.
[18] Tews B, Kai S, Arzt M E, et al. Synthetic microRNA-mediated downregulation of Nogo-A in transgenic rats reveals its role as regulator of synaptic plasticity and cognitive function [J]. Proc Natl Acad Sci U S A, 2013, 110(16): 6583-6588.
[19] Lee H, Raiker S J, Venkatesh K, et al. Synaptic function for the Nogo-66 receptor NgR1: regulation of dendritic spine morphology and activity-dependent synaptic strength [J]. J Neurosci, 2008, 28(11): 2753-2765.
[20] Meeker R, Williams K. Dynamic nature of the p75 neurotrophin receptor in response to injury and disease [J]. J Neuroimmune Pharmacol, 2014, 9(5): 615-628.
[21] Raiker S J, Lee H, Baldwin K T, et al. Oligodendrocyte-myelin glycoprotein and Nogo negatively regulate activity-dependent synaptic plasticity [J]. J Neurosci, 2010, 30(37): 12432-12445.
[22] Joset A, Dodd D A, Halegoua S, et al. Pincher-generated Nogo-A endosomes mediate growth cone collapse and retrograde signaling [J]. J Cell Biol, 2010, 188(2): 271-285.
[23] Tong J, Liu W, Wang X, et al. Inhibition of Nogo-66 receptor 1 enhances recovery of cognitive function after traumatic brain injury in mice [J]. J Neurotrauma, 2013, 30(4): 247-258.
[24] Karlsson T E, Smedfors G, Brodin A T, et al. NgR1: a tunable sensor regulating memory formation, synaptic, and dendritic plasticity [J]. Cereb Cortex, 2016, 26(4): 1804-1817.
[25] Gu H, Yu S P, Gutekunst C A, et al. Inhibition of the Rho signaling pathway improves neurite outgrowth and neuronal differentiation of mouse neural stem cells [J]. Int J Physiol Pathophysiol Pharmacol, 2013, 5(1): 11-20.
[26] Wu B Q, Bi Z G, Qi Q. Inactivation of the Rho-ROCK signaling pathway to promote neurologic recovery after spinal cord injuries in rats [J]. Chin Med J (Engl), 2013, 126(19): 3723-3727.
[27] Chaudhuri A. Multiple sclerosis is primarily a neurodegenerative disease [J]. J Neural Transm (Vienna), 2013, 120(10): 1463-1466.
[28] Petratos S, Ozturk E, Azari M F, et al. Limiting multiple sclerosis related axonopathy by blocking Nogo receptor and CRMP-2 phosphorylation [J]. Brain, 2012, 135(Pt 6): 1794-1818.
[29] Yang Y, Liu Y, Wei P, et al. Silencing Nogo-A promotes functional recovery in demyelinating disease [J]. Ann Neurol, 2010, 67(4): 498-507.
[30] Ineichen B V, Kapitza S, Bleul C, et al. Nogo-A antibodies enhance axonal repair and remyelination in neuro-inflammatory and demyelinating pathology [J]. Acta Neuropathol, 2017, 134(3): 423-440.
[31] Li X, Zhang Y, Yan Y, et al. LINGO-1-Fc-transduced neural stem cells are effective therapy for chronic stage experimental autoimmune encephalomyelitis [J]. Mol Neurobiol, 2017, 54(6): 4365-4378.
[32] Gil V, Nicolas O, Mingorance A, et al. Nogo-A expression in the human hippocampus in normal aging and in Alzheimer disease [J]. J Neuropathol Exp Neurol, 2006, 65(5): 433-444.
[33] Zhou X D, Hu X Y, He W X, et al. Interaction between amyloid precursor protein and Nogo receptors regulates amyloid deposition [J]. FASEB J, 2011, 25(9): 3146-3156.
[34] Zhu H Y, Guo H F, Hou H L, et al. Increased expression of the Nogo receptor in the hippocampus and its relation to the neuropathology in Alzheimer's disease [J]. Hum Pathol, 2007, 38(3): 426-434.
[35] Kim T, Vidal G S, Djurisic M, et al. Human lilrB2 is a β-amyloid receptor and its murine homolog PirB regulates synaptic plasticity in an Alzheimer's model [J]. Science, 2013, 341(6152): 1399-1404.
[36] Asle-Rousta M, Oryan S, Ahmadiani A, et al. Activation of sphingosine 1-phosphate receptor-1 by SEW2871 improves cognitive function in Alzheimer's disease model rats [J]. EXCLI J, 2013, 12: 449-461.
[37] Schroeder B W, Shinnick-Gallagher P. Fear memories induce a switch in stimulus response and signaling mechanisms for long-term potentiation in the lateral amygdale [J]. Eur J Neurosci, 2015, 20(2): 549-556.
[38] Huang C C, Chen C C, Liang Y C, et al. Long-term potentiation at excitatory synaptic inputs to the intercalated cell masses of the amygdale [J]. Int J Neuropsychopharmacol, 2014, 17(8): 1233-1242.
[39] Collingridge G L, Peineau S, Howland J G, et al. Long-term depression in the CNS [J]. Nat Rev Neurosci, 2010, 11(7): 459-473.
[40] Dong Z F, Bai Y R, Wu X Y, et al. Hippocampal long-term depression mediates spatial reversal learning in the Morris water maze [J]. Neuropharmacology, 2013, 64: 65-73.
[41] Bhagat S M, Butler S S, Taylor J R, et al. Erasure of fear memories is prevented by Nogo receptor 1 in adulthood [J]. Mol Psychiatry, 2016, 21(9): 1281-1289.
Outlines

/