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1.
Nogo在中枢神经损伤再生中的作用机制   总被引:1,自引:0,他引:1  
Nogo是中枢神经系统(CNS)少突胶质细胞分泌的一种髓磷脂蛋白,它的主要功能是抑制损伤后轴突的再生,它含有两个完全独立的具有抑制活性的结构域:位于细胞内的amino—Nogo和位于细胞表面的Nogo-66。Nogo-66是通过与受体复合体NgR/p75/Lingo—1结合,触发Rho信号通路来发挥作用。Nogo及其信号转导机制日益成为CNS损伤再生的研究热点,就Nogo在CNS损伤再生中的作用机制作一综述。  相似文献   

2.
中枢神经系统损伤后其再生能力较弱已被人们所熟知,原因在于髓磷脂抑制物如Nogo、MAG、Omgp等抑制因子的作用,这些抑制因子通过与神经元上的Nogo受体(NgR)特异性结合,发挥对神经轴突再生的抑制作用。Nogo是一种存在于中枢神经系统少突胶质细胞上的髓磷脂蛋白,其作用主要在于神经细胞损伤后抑制其突触再生,这同时也是对损伤部位其他细胞免于进一步损伤的保护作用。存在于细胞表面的Nogo-66结构是与NgR特异性结合的功能域。NgR是一种存在于神经元表面,传递抑制轴突生长信号的复合共受体。近年来随着对NgR、Nogo及其下游信号通路其他相关蛋白研究的深入,提示多种神经系统疾病与之相关。我们简要综述近年来关于NgR的研究进展。  相似文献   

3.
脊髓损伤(spinal cord injury,SCI)往往导致患者下肢活动功能受限,甚至瘫痪,降低患者生活质量,且治愈率低。髓磷脂相关抑制因子(myelin associated inhibitors,MAIs)是抑制受损中枢神经系统(central nervous system,CNS)再生修复的一个重要因素。对MAIs及其信号通路的干扰能有效逆转CNS神经再生抑制信号,促进脊髓损伤后轴突的再生。MAIs抑制轴突再生信号通路的发现及其深入研究为损伤脊髓的免疫治疗提供了充分的理论依据和研究靶点。将对抑制神经再生信号通路中MAIs及其受体的生物学功能新进展以及以此为治疗靶点设计的脊髓损伤免疫治疗策略作一综述。  相似文献   

4.
LINGO-1:新发现的脑内神经再生抑制因子   总被引:1,自引:0,他引:1  
在成年动物和人中枢神经系统 ,髓鞘内的神经再生抑制因子 (MAG、OMgp、Nogo等 )通过与神经元上的特异性受体复合体相互作用 ,启动对神经轴突再生的抑制 ;“Nogo 6 6受体”(Nogo 6 6receptor,即Nogoreceptor 1,NgR1)和“p75神经生长因子受体”是组成此受体复合体的两个关键亚单位 ;被Nogo等激活的受体复合体能活化“胞内骨架调节因子”———RhoA ,RhoA最终实现对轴突延长的抑制。美国学者最近发现 ,在转染后成功表达NgR1和p75的非神经细胞 (COS 7细胞 ) ,神经再生抑制因子OMgp不能激活NgR1和p75复合体、亦不能活化RhoA ,暗示神经…  相似文献   

5.
雪旺氏细胞与中枢神经再生   总被引:8,自引:0,他引:8  
雪旺氏细胞是周围神经系统的胶质细胞,具有非常活跃的生理功能,它能表达数种神经营养因子,防止受损神经元胞体的死亡,为轴突再生提供先决条件;SC分泌细胞外基质成分和细胞粘着分子,为轴突提供良好的再生环境,支持轴突再生并引导再生的轴突重新支配靶组织。离体实验表明,SCs本身及其分泌的生物活性物质能支持中枢神经突起的生长,将SCs作为移植材料进行移植能促进视神经、脊髓、隔-海马通路等再生。由于雪旺氏细胞有可能从自体获得,将为中枢神经损伤的修复开辟一条新途径。  相似文献   

6.
髓鞘相关糖蛋白与神经系统的髓鞘发育和轴突生长   总被引:1,自引:0,他引:1  
Gu WL  Lu PH 《生理科学进展》2006,37(3):243-246
髓鞘相关糖蛋白(myelin-associated glycoprotein,MAG)是免疫球蛋白超家族成员,它由中枢神经系统的少突胶质细胞和外周神经系统的施万细胞表达。MAG定位于直接和轴突相接触的髓鞘膜的最里层,它通过介导胶质细胞与轴突的相互作用参与髓鞘的形成及其完整性的维持。同时MAG也是髓鞘来源的神经生长抑制因子的主要成分。在神经系统发育的不同阶段,MAG显示不同的功能:即发育期促进轴突生长,成熟期抑制轴突生长。其抑制作用主要由髓鞘来源的抑制分子的共同受体NgR介导,在神经营养因子受体p75NTR以及小GTP酶Rho等信号分子的共同参与下完成。  相似文献   

7.
神经轴突生长抑制因子Nogo 家族的研究进展*   总被引:1,自引:0,他引:1       下载免费PDF全文
Nogo家族是一类神经轴突生长抑制因子家族,目前成员包括Nogo-A,Nogo-B,Nogo-C三个亚型。Nogo家族成员因C末端具有保守的RHD结构域而归属于RTNs家族,表明它们的分布和功能与内质网密切相关。Nogo家族C末端还具有一个进化保守的66氨基酸的功能段称为Nogo-66,体外表达的Nogo-66片段具有抑制神经突生长的作用。Nogo家族成员结构上的区别主要表现在不同剪切长短的N末端序列。Nogo-A主要在中枢和外周神经系统中广泛分布,Nogo-C主要分布在骨骼肌,而Nogo-B则几乎遍布于各种组织与细胞之中。目前,发现可介导Nogo胞内信号转导通路的受体主要是膜外糖蛋白偶联的NgR和跨膜受体p75NTR组成的共受体,但NgR与Nogo-A在胚胎发育中时空表达并不同步提示可能还有其它受体存在。虽然Nogo家族作为神经轴突生长抑制因子被发现,但越来越多的研究表明其可能在胚胎发育、细胞凋亡或神经退行性变等重大事件中扮演重要角色。本文拟就Nogo家族迄今为止突出的研究进展作一综述,旨在为下一步的功能研究工作提供理论参考和依据。  相似文献   

8.
中枢神经系统轴突再生抑制蛋白   总被引:1,自引:0,他引:1  
Hu JG  Lu PH  Xu XM 《生理科学进展》2004,35(4):311-315
中枢神经系统 (CNS)轴突再生的主要障碍之一是存在抑制再生的蛋白 ,迄今 ,已在少突胶质细胞 /髓鞘中相继发现至少三个重要的轴突再生抑制蛋白 ,即髓鞘相关糖蛋白 (MAG)、Nogo A和少突胶质细胞 /髓鞘糖蛋白 (OMgp)。最近的研究又证实 ,这三个不同的抑制成分可能主要通过与一个共同的受体Nogo6 6受体 (NgR)结合而发挥作用。这些研究成果扩充了对CNS损伤后轴突再生障碍的理解 ,也为探讨CNS损伤的治疗新策略提供了新的思路。  相似文献   

9.
与身体中的大多数其他组织相比 ,中枢神经系统中的细胞几乎没有自我修复的能力。研究发现 ,神经轴突周围的脂肪质髓磷脂壳层可抑制神经细胞再生。这一结果促使人们去寻找与髓磷脂有关的可能的生长机制。三个研究小组在小鼠和人类身上发现了此前尚不为人们所知的一种基因 ,名叫Nogo。该基因为一种髓磷脂蛋白编码 ,这种蛋白所具有的性质就是科学家们长期以来寻找的髓磷脂类抑制分子应当具有的性质。Nogo蛋白原来是跨膜蛋白的网状蛋白家族中的第四个成员。Goldberg和Barres指出 ,完全了解抑制神经再生的复杂的自然机制还…  相似文献   

10.
Rho是小分子质量GTP酶Rho家族成员,在细胞的一些信号转导途径中起着分子开关的作用.Rho能通过作用于肌动蛋白骨架系统引起轴突生长锥塌陷,从而抑制轴突生长.研究表明,Nogo-A、MAG、OMgp等髓鞘源性的轴突再生抑制分子均可通过激活Rho介导的信号转导途径抑制轴突再生.  相似文献   

11.
Myelin-associated inhibitory factors (MAIFs) are inhibitors of CNS axonal regeneration following injury. The Nogo receptor complex, composed of the Nogo-66 receptor 1 (NgR1), neurotrophin p75 receptor (p75), and LINGO-1, represses axon regeneration upon binding to these myelin components. The limited expression of p75 to certain types of neurons and its temporal expression during development prompted speculation that other receptors are involved in the NgR1 complex. Here, we show that an orphan receptor in the TNF family called TAJ, broadly expressed in postnatal and adult neurons, binds to NgR1 and can replace p75 in the p75/NgR1/LINGO-1 complex to activate RhoA in the presence of myelin inhibitors. In vitro exogenously added TAJ reversed neurite outgrowth caused by MAIFs. Neurons from Taj-deficient mice were more resistant to the suppressive action of the myelin inhibitors. Given the limited expression of p75, the discovery of TAJ function is an important step for understanding the regulation of axonal regeneration.  相似文献   

12.
Park JB  Yiu G  Kaneko S  Wang J  Chang J  He XL  Garcia KC  He Z 《Neuron》2005,45(3):345-351
A major obstacle for successful axon regeneration in the adult central nervous system (CNS) arises from inhibitory molecules in CNS myelin, which signal through a common receptor complex on neurons consisting of the ligand-binding Nogo-66 receptor (NgR) and two transmembrane coreceptors, p75 and LINGO-1. However, p75 expression is only detectable in subpopulations of mature neurons, raising the question of how these inhibitory signals are transduced in neurons lacking p75. In this study, we demonstrate that TROY (also known as TAJ), a TNF receptor family member selectively expressed in the adult nervous system, can form a functional receptor complex with NgR and LINGO-1 to mediate cellular responses to myelin inhibitors. Also, both overexpressing a dominant-negative TROY or presence of a soluble TROY protein can efficiently block neuronal response to myelin inhibitors. Our results implicate TROY in mediating myelin inhibition, offering new insights into the molecular mechanisms of regeneration failure in the adult nervous system.  相似文献   

13.
Axon regeneration in the injured adult CNS is reportedly inhibited by myelin-derived inhibitory molecules, after binding to a receptor complex comprised of the Nogo-66 receptor (NgR1) and two transmembrane co-receptors p75/TROY and LINGO-1. However, the post-injury expression pattern for LINGO-1 is inconsistent with its proposed function. We demonstrated that AMIGO3 levels were significantly higher acutely than those of LINGO-1 in dorsal column lesions and reduced in models of dorsal root ganglion neuron (DRGN) axon regeneration. Similarly, AMIGO3 levels were raised in the retina immediately after optic nerve crush, whilst levels were suppressed in regenerating optic nerves, induced by intravitreal peripheral nerve implantation. AMIGO3 interacted functionally with NgR1-p75/TROY in non-neuronal cells and in brain lysates, mediating RhoA activation in response to CNS myelin. Knockdown of AMIGO3 in myelin-inhibited adult primary DRG and retinal cultures promoted disinhibited neurite growth when cells were stimulated with appropriate neurotrophic factors. These findings demonstrate that AMIGO3 substitutes for LINGO-1 in the NgR1-p75/TROY inhibitory signalling complex and suggests that the NgR1-p75/TROY-AMIGO3 receptor complex mediates myelin-induced inhibition of axon growth acutely in the CNS. Thus, antagonizing AMIGO3 rather than LINGO-1 immediately after CNS injury is likely to be a more effective therapeutic strategy for promoting CNS axon regeneration when combined with neurotrophic factor administration.  相似文献   

14.
The p75 neurotrophin receptor (p75NTR) is known to transduce the signal from some myelin-associated axon growth inhibitors, including Nogo and myelin-associated glycoprotein. As ephrin-B3, a member of the ephrin family, is also expressed in myelin and inhibits axon growth, the purpose of this study was to assess the possible involvement of p75NTR in ephrin-B3 signaling. Here, we report that p75NTR is required for the inhibitory effect of ephrin-B3 on neurite growth in vitro. While ephrin-B3 inhibited neurite elongation of embryonic cortical neurons, the neurons with p75NTR knockdown or with EphA4 knockdown were less sensitive to ephrin-B3. Although no direct interaction of p75NTR with ephrin-B3 was observed, Pep5, a peptide that specifically inhibits RhoA activation mediated by p75NTR, reduced the effect of ephrin-B3. Therefore, p75NTR functions as a signal transducer for ephrin-B3. Moreover, axonal regeneration in vivo was induced by Pep5 application after optic nerve crush injury in mice. Thus, Pep5 is a promising agent that contributes to axonal regeneration in the central nervous system.  相似文献   

15.
The Nogo-66 receptor family (NgR) consists in three glycophosphatidylinositol (GPI)-anchored receptors (NgR1, NgR2 and NgR3), which are primarily expressed by neurons in the central and peripheral mammalian nervous system. NgR1 was identified as serving as a high affinity binding protein for the three classical myelin-associated inhibitors (MAIs) Nogo-A, myelin-associated glycoprotein (MAG) and oligodendrocyte myelin glycoprotein (OMgp), which limit axon regeneration and sprouting in the injured brain. Recent studies suggest that NgR signaling may also play an essential role in the intact adult CNS in restricting axonal and synaptic plasticity and are involved in neurodegenerative diseases, particularly in Alzheimer's disease pathology through modulation of β-secretase cleavage. Here, we outline the biochemical properties of NgRs and their functional roles in the intact and diseased CNS.  相似文献   

16.
Binding of myelin inhibitors to the NgR1/p75/LINGO-1 signaling complex activates RhoA to mediate the inhibition of axonal outgrowth. The nerve growth factor receptor p75, a TNF family receptor, is absent or poorly expressed in certain types of neurons that respond to myelin inhibitors, thereby prompting speculation that other TNF family receptors are involved in the NgR1 complex. Troy/Taj is an orphan TNF family receptor that is broadly expressed in postnatal and adult neurons. Troy binds to NgR1 and can functionally replace p75 in the p75/NgR1/LINGO-1 complex to activate RhoA and block neurite outgrowth in the presence of myelin inhibitors. Neurons from Troy-deficient mice are more resistant to the suppressive action of the myelin inhibitors. The discovery of TROY function in axon growth is an important step for understanding the complex regulation of axonal regeneration by diverse members of the TNF receptor family.  相似文献   

17.
Identification of Nogo-66 receptor (NgR) and homologous genes in fish   总被引:2,自引:0,他引:2  
The Nogo-66 receptor NgR has been implicated in the mediation of inhibitory effects of central nervous system (CNS) myelin on axon growth in the adult mammalian CNS. NgR binds to several myelin-associated ligands (Nogo-66, myelin associated glycoprotein, and oligodendrocyte-myelin glycoprotein), which, among other inhibitory proteins, impair axonal regeneration in the CNS of adult mammals. In contrast to mammals, severed axons readily regenerate in the fish CNS. Nevertheless, fish axons are repelled by mammalian oligodendrocytes in vitro. Therefore, the identification of fish NgR homologs is a crucial step towards understanding NgR functions in vertebrate systems competent of CNS regeneration. Here, we report the discovery of four zebrafish (Danio rerio) and five fugu (Takifugu rubripes) NgR homologs. Synteny between fish and human, comparable intron-exon structures, and phylogenetic analyses provide convincing evidence that the true fish orthologs were identified. The topology of the phylogenetic trees shows that the extra fish genes were produced by duplication events that occurred in ray-finned fishes before the divergence of the zebrafish and pufferfish lineages. Expression of zebrafish NgR homologs was detected relatively early in development and prominently in the adult brain, suggesting functions in axon growth, guidance, or plasticity.  相似文献   

18.
Upon spinal cord injury, the myelin inhibitors, including the myelin-associated glycoprotein (MAG), Nogo-A and the oligodendrocyte myelin glycoprotein (OMgp), bind to and signal via a single neuronal receptor/co-receptor complex comprising of Nogo receptor 1(NgR1)/LINGO-1 and p75 or TROY, impeding regeneration of injured axons. We employed a cell-free system to study the binding of NgR1 to its co-receptors and the myelin inhibitor Nogo-A, and show that gangliosides mediate the interaction of NgR1 with LINGO-1. Solid phase binding assays demonstrate that the sialic acid moieties of gangliosides and the stalk of NgR1 are the principal determinants of these molecular interactions. Moreover, the tripartite complex comprising of NgR1, LINGO-1 and ganglioside exhibits stronger binding to Nogo-A (Nogo-54) in the presence of p75, suggesting the gangliosides modulate the myelin inhibitor-receptor signaling.  相似文献   

19.
Nogo on the go   总被引:22,自引:0,他引:22  
McKerracher L  Winton MJ 《Neuron》2002,36(3):345-348
Growth inhibition in the central nervous system (CNS) is a major barrier to axon regeneration. Recent findings indicate that three distinct myelin proteins, myelin-associated glycoprotein (MAG), Nogo, and oligodendrocyte-myelin glycoprotein (OMgp), inhibit axon growth by binding a common receptor, the Nogo66 receptor (NgR), and likely converge on a common signaling cascade.  相似文献   

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