单个 NMDA 受体 GluN2 亚基信号域对海马兴奋性突触传递和可塑性的产后成熟有不同的调控作用,但对树突形态的调控作用不明显。

IF 1.6 4区 医学 Q4 NEUROSCIENCES Synapse Pub Date : 2024-07-01 DOI:10.1002/syn.22292
Rachel E Keith, Grace A Wild, Matthew J Keith, Diyi Chen, Svetlana Pack, Theodore C Dumas
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引用次数: 0

摘要

海马兴奋性突触上的 N-甲基-d-天冬氨酸受体(NMDAR)亚基组成在出生后晚期发生了转变,从最初的 GluN2B 亚基占优势转变为后来的 GluN2A 占优势。这种从 GluN2B 到 GluN2A 的转变改变了 NMDAR 的钙传导动力学和细胞内分子信号转导,它们分别由不同的 GluN2 信号域调控,并在时间上与树突和突触可塑性的发育改变相一致。然而,单个 GluN2B 至 GluN2A 信号域对神经元发育的影响仍然未知。通过创建在两种转基因小鼠系中表达的嵌合 GluN2 亚基,分离了 GluN2 亚基的向离子和细胞内信号结构域。Western 印迹和免疫沉淀显示,大约三分之一的原生突触 NMDAR 被转化的 NMDAR 取代,而突触 NMDAR 的总含量没有发生变化。过表达 GluN2B 羧基末端的动物在刚满 3 周龄时,在急性制备的海马切片中 Schaffer 侧突触强度会短暂增加。低频刺激后的长期电位诱导(LTP)受GluN2离子传导信号域的调控,其方式与年龄有关,在成熟动物中,过表达GluN2B CTD可增强LTP的维持。在更高频率的刺激后,过表达 GluN2B 离子传导信号结构域的幼年成年动物的 LTP 诱导和维持能力增强,但 3 周龄以上的幼年动物的 LTP 诱导和维持能力减弱。绿色荧光蛋白(GFP)标记的 CA1 锥体神经元共聚焦成像显示,表达嵌合 GluN2 亚基的小鼠的树突形态或棘密度没有改变。这些结果说明了单个 GluN2 亚基信号域如何控制或不控制海马兴奋神经元的生理和形态发育,并更好地阐明了支配海马成熟的神经生物学因素。意义声明:海马长期突触电位(LTP)的发育程度降低以及空间迷宫表现的改善与突触 NMDAR 中 GluN2A 亚基的增加相吻合。我们之前发现,过量表达 GluN2A 型离子信号转导结构域能使未成熟小鼠进行基于情境的导航,而过量表达 GluN2A 型离子信号转导结构域则会降低未成熟小鼠的 LTP 诱导阈值和幅度,这证实了我们的发现。此外,我们之前发现 GluN2B 羧基末端结构域(CTD)过表达能增强成熟小鼠的长期空间记忆,现在我们又报告说 GluN2B CTD 与成熟小鼠诱导后更大的 LTP 幅值有关。因此,情境编码在出生后晚期的成熟可能依赖于向 GluN2A 型离子传导信号的转变以及诱导 LTP 的阈值的降低,而记忆巩固和 LTP 维持则受 GluN2B 亚基 CTD 信号的调节。
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Individual NMDA receptor GluN2 subunit signaling domains differentially regulate the postnatal maturation of hippocampal excitatory synaptic transmission and plasticity but not dendritic morphology.

N-methyl-d-aspartate receptors (NMDARs) at hippocampal excitatory synapses undergo a late postnatal shift in subunit composition, from an initial prevalence of GluN2B subunit incorporation to a later predominance of GluN2A. This GluN2B to GluN2A shift alters NMDAR calcium conductance dynamics and intracellular molecular signaling that are individually regulated by distinct GluN2 signaling domains and temporally align with developmental alterations in dendritic and synaptic plasticity. However, the impacts of individual GluN2B to GluN2A signaling domains on neuronal development remain unknown. Ionotropic and intracellular signaling domains of GluN2 subunits were separated by creating chimeric GluN2 subunits that were expressed in two transgenic mouse lines. Western blot and immunoprecipitation revealed that roughly one third of native synaptic NMDARs were replaced by transformed NMDARs without altering total synaptic NMDAR content. Schaffer collateral synaptic strength was transiently increased in acutely prepared hippocampal slices at just over 3 weeks of age in animals overexpressing the GluN2B carboxy terminus. Long-term potentiation (LTP) induction following lower frequency stimulation was regulated by GluN2 ionotropic signaling domains in an age-dependent manner and LTP maintenance was enhanced by overexpression of the GluN2B CTD in mature animals. After higher frequency stimulation, the induction and maintenance of LTP were increased in young adult animals overexpressing the GluN2B ionotropic signaling domains but reduced in juveniles just over 3 weeks of age. Confocal imaging of green fluorescent protein (GFP)- labeled CA1 pyramidal neurons revealed no alterations in dendritic morphology or spine density in mice expressing chimeric GluN2 subunits. These results illustrate how individual GluN2 subunit signaling domains do or do not control physiological and morphological development of hippocampal excitatory neurons and better clarify the neurobiological factors that govern hippocampal maturation. SIGNIFICANCE STATEMENT: A developmental reduction in the magnitude of hippocampal long-term synaptic potentiation (LTP) and a concomitant improvement in spatial maze performance coincide with greater incorporation of GluN2A subunits into synaptic NMDARs. Corroborating our prior discovery that overexpression of GluN2A-type ionotropic signaling domains enables context-based navigation in immature mice, GluN2A-type ionotropic signaling domain overexpression reduces LTP induction threshold and magnitude in immature mice. Also, we previously found that GluN2B carboxy terminal domain (CTD) overexpression enhances long-term spatial memory in mature mice and now report that the GluN2B CTD is associated with greater amplitude of LTP after induction in mature mice. Thus, the late postnatal maturation of context encoding likely relies on a shift toward GluN2A-type ionotropic signaling and a reduction in the threshold to induce LTP while memory consolidation and LTP maintenance are regulated by GluN2B subunit CTD signaling.

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来源期刊
Synapse
Synapse 医学-神经科学
CiteScore
3.80
自引率
0.00%
发文量
38
审稿时长
4-8 weeks
期刊介绍: SYNAPSE publishes articles concerned with all aspects of synaptic structure and function. This includes neurotransmitters, neuropeptides, neuromodulators, receptors, gap junctions, metabolism, plasticity, circuitry, mathematical modeling, ion channels, patch recording, single unit recording, development, behavior, pathology, toxicology, etc.
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