Postnatal Neuronal Nogo-A Knockdown Decreased the Message of Glutamatergic Synaptic Proteins.

Journal of physiological investigation Pub Date : 2024-09-01 Epub Date: 2024-10-28 DOI:10.4103/ejpi.EJPI-D-24-00063
Alicia M Case, Jonathan D Lautz, Son T Ton, Edward M Campbell, Jody L Martin, Gwendolyn L Kartje, Shih-Yen Tsai
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Abstract

Abstract: It is well known that oligodendrocyte-associated Nogo-A protein is an important regulator of axonal outgrowth and an important inhibitor of functional recovery and anatomical plasticity after central nervous system (CNS) injury. Abundant studies of oligodendrocyte-associated Nogo-A function in the uninjured rodent have suggested a role in neuronal development and synaptic function. On the other hand, the roles of neuron-associated (i.e., neuronal) Nogo-A have not been fully investigated. We have previously shown that neuronal Nogo-A influence dendritic spine density and morphology in pyramidal neurons of the intact neocortex. To further examine the role of neuronal Nogo-A in this synaptic population, we designed an RNAi directed against Nogo-A, delivered to the developing rat sensorimotor cortex using a neurotropic viral vector adeno-associated virus (AAV) 2/8. We examined the transduced neocortex for molecules important for synaptic plasticity, including N-Methyl-D-Aspartate (NMDA) receptor subunits GRIN2A; glutamate receptor subunit epsilon-1 (NR2A), and GRIN2B; glutamate receptor subunit epsilon-2 (NR2B), as well as postsynaptic density-95 (PSD-95). Furthermore, we also determined the density of excitatory synapses by examining the presynaptic protein vesicular glutamate transporter 1 (vGLut1) as a marker for potential excitatory synapses. Our results showed that neuronal Nogo-A knockdown in postnatal pyramidal neurons of the sensorimotor cortex led to a significant decrease in NMDA receptor subunits NR2A and NR2B messenger RNA when examined as adults. However, there was no difference in PSD-95 expression in comparison to controls. In addition, the decrease in the number of vGlut1(+) puncta on branches of apical dendrites of pyramidal neurons indicated the loss of synapses that have a strong influence on direct current entering the dendrite. Taken together, these results indicate that neuronal Nogo-A may regulate synaptic plasticity by modulating the components of excitatory synapses. This finding represents a novel role in excitatory synaptic formation for neuronal Nogo-A in developing neurons of the uninjured CNS.

出生后神经元 Nogo-A 基因敲除会减少谷氨酸突触蛋白的信息量
摘要:众所周知,少突胶质细胞相关 Nogo-A 蛋白是轴突生长的重要调节因子,也是中枢神经系统(CNS)损伤后功能恢复和解剖可塑性的重要抑制因子。对未受伤啮齿类动物少突胶质细胞相关 Nogo-A 功能的大量研究表明,它在神经元发育和突触功能中发挥作用。另一方面,神经元相关(即神经元)Nogo-A 的作用尚未得到充分研究。我们之前已经证明,神经元 Nogo-A 会影响完整新皮层锥体神经元的树突棘密度和形态。为了进一步研究神经元 Nogo-A 在这一突触群中的作用,我们设计了一种针对 Nogo-A 的 RNAi,并使用神经传导病毒载体腺相关病毒(AAV)2/8 将其传递到发育中的大鼠感觉运动皮层。我们检测了转导的新皮层中对突触可塑性很重要的分子,包括 N-甲基-D-天冬氨酸(NMDA)受体亚单位 GRIN2A;谷氨酸受体亚单位 epsilon-1 (NR2A) 和 GRIN2B;谷氨酸受体亚单位 epsilon-2 (NR2B),以及突触后密度-95 (PSD-95)。此外,我们还通过检测突触前蛋白囊泡谷氨酸转运体 1(vGLut1)作为潜在兴奋性突触的标记来确定兴奋性突触的密度。我们的研究结果表明,在出生后的感觉运动皮层锥体神经元中敲除神经元Nogo-A,会导致成年后检测的NMDA受体亚单位NR2A和NR2B信使RNA显著减少。然而,与对照组相比,PSD-95的表达量并无差异。此外,锥体神经元顶端树突分支上的 vGlut1(+)点的数量减少表明,对进入树突的直流有很大影响的突触消失了。综上所述,这些结果表明神经元 Nogo-A 可通过调节兴奋性突触的成分来调节突触可塑性。这一发现表明,神经元 Nogo-A 在未受伤的中枢神经系统发育中的神经元的兴奋性突触形成中扮演了新的角色。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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