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2
Myelin-associated glycoprotein reduces axonal branching and enhances functional recovery after sciatic nerve transection in rats.髓鞘相关糖蛋白可减少大鼠坐骨神经横断后的轴突分支并促进功能恢复。
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J Neurosci Res. 1996 Nov 15;46(4):404-14. doi: 10.1002/(SICI)1097-4547(19961115)46:4<404::AID-JNR2>3.0.CO;2-K.
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Myelin-associated glycoprotein in myelin and expressed by Schwann cells inhibits axonal regeneration and branching.髓鞘中以及由施万细胞表达的髓鞘相关糖蛋白会抑制轴突再生和分支。
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Resistance of interleukin-6 to the extracellular inhibitory environment promotes axonal regeneration and functional recovery following spinal cord injury.白细胞介素-6对细胞外抑制环境的抗性促进脊髓损伤后的轴突再生和功能恢复。
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IL-6 promotes regeneration and functional recovery after cortical spinal tract injury by reactivating intrinsic growth program of neurons and enhancing synapse formation.白细胞介素-6 通过重新激活神经元内在的生长程序和增强突触形成,促进皮质脊髓束损伤后的再生和功能恢复。
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C1q as a target molecule to treat human disease: What do mouse studies teach us?C1q 作为治疗人类疾病的靶标分子:小鼠研究给我们带来了哪些启示?
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本文引用的文献

1
Complement and spinal cord injury: traditional and non-traditional aspects of complement cascade function in the injured spinal cord microenvironment.补体与脊髓损伤:脊髓损伤微环境中补体级联反应功能的传统与非传统方面
Exp Neurol. 2014 Aug;258:35-47. doi: 10.1016/j.expneurol.2014.04.028.
2
Complement anaphylatoxin C3a is a potent inducer of embryonic chick retina regeneration.补体过敏毒素 C3a 是胚胎鸡视网膜再生的有效诱导剂。
Nat Commun. 2013;4:2312. doi: 10.1038/ncomms3312.
3
Glial scar borders are formed by newly proliferated, elongated astrocytes that interact to corral inflammatory and fibrotic cells via STAT3-dependent mechanisms after spinal cord injury.胶质瘢痕边界由新增殖的、伸长的星形胶质细胞形成,这些细胞通过 STAT3 依赖的机制相互作用,在脊髓损伤后隔离炎症和纤维细胞。
J Neurosci. 2013 Jul 31;33(31):12870-86. doi: 10.1523/JNEUROSCI.2121-13.2013.
4
C1q-induced LRP1B and GPR6 proteins expressed early in Alzheimer disease mouse models, are essential for the C1q-mediated protection against amyloid-β neurotoxicity.在阿尔茨海默病小鼠模型中,C1q 诱导的 LRP1B 和 GPR6 蛋白早期表达,对于 C1q 介导的对抗淀粉样β神经毒性的保护作用至关重要。
J Biol Chem. 2013 Jan 4;288(1):654-65. doi: 10.1074/jbc.M112.400168. Epub 2012 Nov 13.
5
Reduced removal of synaptic terminals from axotomized spinal motoneurons in the absence of complement C3.在缺乏补体 C3 的情况下,被切断的脊髓运动神经元突触末端的去除减少。
Exp Neurol. 2012 Sep;237(1):8-17. doi: 10.1016/j.expneurol.2012.06.008. Epub 2012 Jun 19.
6
Microglia sculpt postnatal neural circuits in an activity and complement-dependent manner.小胶质细胞以活动和补体依赖性的方式塑造出生后的神经回路。
Neuron. 2012 May 24;74(4):691-705. doi: 10.1016/j.neuron.2012.03.026.
7
Acetyl-L-carnitine treatment following spinal cord injury improves mitochondrial function correlated with remarkable tissue sparing and functional recovery.脊髓损伤后乙酰左旋肉碱治疗可改善线粒体功能,与显著的组织保护和功能恢复相关。
Neuroscience. 2012 May 17;210:296-307. doi: 10.1016/j.neuroscience.2012.03.006. Epub 2012 Mar 15.
8
Combined delivery of Nogo-A antibody, neurotrophin-3 and the NMDA-NR2d subunit establishes a functional 'detour' in the hemisected spinal cord.Nogo-A 抗体、神经营养因子-3 和 NMDA-NR2d 亚基联合递呈在脊髓半切损伤中建立功能性“旁路”。
Eur J Neurosci. 2011 Oct;34(8):1256-67. doi: 10.1111/j.1460-9568.2011.07862.x. Epub 2011 Oct 13.
9
Inflammation and axon regeneration.炎症与轴突再生。
Curr Opin Neurol. 2011 Dec;24(6):577-83. doi: 10.1097/WCO.0b013e32834c208d.
10
Rehabilitative training following unilateral pyramidotomy in adult rats improves forelimb function in a non-task-specific way.成年大鼠单侧锥体切开术后的康复训练以非任务特异性方式改善前肢功能。
Exp Neurol. 2011 Nov;232(1):81-9. doi: 10.1016/j.expneurol.2011.08.006. Epub 2011 Aug 16.

补体蛋白C1q在体外调节神经突生长,在体内调节脊髓轴突再生。

Complement protein C1q modulates neurite outgrowth in vitro and spinal cord axon regeneration in vivo.

作者信息

Peterson Sheri L, Nguyen Hal X, Mendez Oscar A, Anderson Aileen J

机构信息

Sue and Bill Gross Stem Cell Center, Institute for Memory Impairments and Neurological Disorders, Department of Anatomy and Neurobiology, and.

Sue and Bill Gross Stem Cell Center, Institute for Memory Impairments and Neurological Disorders.

出版信息

J Neurosci. 2015 Mar 11;35(10):4332-49. doi: 10.1523/JNEUROSCI.4473-12.2015.

DOI:10.1523/JNEUROSCI.4473-12.2015
PMID:25762679
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4355202/
Abstract

Traumatic injury to CNS fiber tracts is accompanied by failure of severed axons to regenerate and results in lifelong functional deficits. The inflammatory response to CNS trauma is mediated by a diverse set of cells and proteins with varied, overlapping, and opposing effects on histological and behavioral recovery. Importantly, the contribution of individual inflammatory complement proteins to spinal cord injury (SCI) pathology is not well understood. Although the presence of complement components increases after SCI in association with axons and myelin, it is unknown whether complement proteins affect axon growth or regeneration. We report a novel role for complement C1q in neurite outgrowth in vitro and axon regrowth after SCI. In culture, C1q increased neurite length on myelin. Protein and molecular assays revealed that C1q interacts directly with myelin associated glycoprotein (MAG) in myelin, resulting in reduced activation of growth inhibitory signaling in neurons. In agreement with a C1q-outgrowth-enhancing mechanism in which C1q binding to MAG reduces MAG signaling to neurons, complement C1q blocked both the growth inhibitory and repulsive turning effects of MAG in vitro. Furthermore, C1q KO mice demonstrated increased sensory axon turning within the spinal cord lesion after SCI with peripheral conditioning injury, consistent with C1q-mediated neutralization of MAG. Finally, we present data that extend the role for C1q in axon growth and guidance to include the sprouting patterns of descending corticospinal tract axons into spinal gray matter after dorsal column transection SCI.

摘要

中枢神经系统纤维束的创伤性损伤伴随着切断的轴突无法再生,并导致终身功能缺陷。对中枢神经系统创伤的炎症反应由多种细胞和蛋白质介导,它们对组织学和行为恢复具有不同、重叠和相反的作用。重要的是,个体炎症补体蛋白对脊髓损伤(SCI)病理的贡献尚未得到充分了解。尽管脊髓损伤后补体成分与轴突和髓磷脂相关联地增加,但其是否影响轴突生长或再生尚不清楚。我们报告了补体C1q在体外神经突生长和脊髓损伤后轴突再生中的新作用。在培养中,C1q增加了髓磷脂上的神经突长度。蛋白质和分子分析表明,C1q与髓磷脂中的髓磷脂相关糖蛋白(MAG)直接相互作用,导致神经元中生长抑制信号的激活减少。与C1q结合MAG减少MAG向神经元发出信号的C1q促进生长机制一致,补体C1q在体外阻断了MAG的生长抑制和排斥转向作用。此外,C1q基因敲除小鼠在脊髓损伤后伴有周围条件性损伤时,脊髓损伤部位内的感觉轴突转向增加,这与C1q介导的MAG中和作用一致。最后,我们提供的数据扩展了C1q在轴突生长和导向中的作用,包括在背柱横断性脊髓损伤后,下行皮质脊髓束轴突向脊髓灰质的发芽模式。