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Na+-Ca2+ exchanger (NCX3) knock-out mice display an impairment in hippocampal long-term potentiation and spatial learning and memory

机译:Na + -Ca2 +交换子(NCX3)剔除小鼠的海马长时程增强和空间学习与记忆功能受损

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摘要

Long-term potentiation (LTP) depends on the coordinated regulation of an ensemble of proteins related to Ca(2+) homeostasis, including Ca(2+) transporters. One of the major players in the regulation of intracellular Ca(2+) ([Ca(2+)](i)) homeostasis in neurons is the sodium/calcium exchanger (NCX), which represents the principal mechanism of Ca(2+) clearance in the synaptic sites of hippocampal neurons. Because NCX3, one of the three brain isoforms of the NCX family, is highly expressed in the hippocampal subfields involved in LTP, we hypothesized that it might represent a potential candidate for LTP modulation. To test this hypothesis, we first examined the effect of ncx3 gene ablation on NCX currents (I(NCX)) and Ca(2+) homeostasis in hippocampal neurons. ncx3(-/-) neurons displayed a reduced I(NCX), a higher basal level of [Ca(2+)](i), and a significantly delayed clearance of [Ca(2+)](i) following depolarization. Furthermore, measurement of field EPSPs, recorded from the CA1 area, revealed that ncx3(-/-) mice had an impaired basal synaptic transmission. Moreover, hippocampal slices from ncx3(-/-) mice exhibited a worsening in LTP compared with congenic ncx3(+/+). Consistently, immunohistochemical and immunoblot analysis indicated that in the hippocampus of ncx3(-/-) mice both Ca(2+)/calmodulin-dependent protein kinase IIα (CaMKIIα) expression and the phosphoCaMKIIα/CaMKIIα ratio were significantly reduced compared with ncx3(+/+). Interestingly, ncx3(-/-) mice displayed a reduced spatial learning and memory performance, as revealed by the novel object recognition, Barnes maze, and context-dependent fear conditioning assays. Collectively, our findings demonstrate that the deletion of the ncx3 gene in mice has detrimental consequences on basal synaptic transmission, LTP regulation, spatial learning, and memory performance.
机译:长期增强(LTP)取决于与Ca(2+)稳态,包括Ca(2+)转运蛋白有关的蛋白质集合的协调调节。钠/钙交换剂(NCX)是调节细胞内Ca(2+)([Ca(2 +)](i))动态平衡的主要因素之一,它代表Ca(2+ )在海马神经元的突触部位清除。由于NCX3是NCX家族的三个脑亚型之一,在涉及LTP的海马亚区中高度表达,因此我们假设它可能代表LTP调节的潜在候选者。为了验证该假设,我们首先检查了ncx3基因消融对海马神经元NCX电流(I(NCX))和Ca(2+)稳态的影响。 ncx3(-/-)神经元显示减少的I(NCX),较高的[Ca(2 +)](i)基础水平和去极化后[Ca(2 +)](i)的清除延迟显着。此外,从CA1区域记录的实地EPSP的测量表明ncx3(-/-)小鼠的基础突触传递受损。此外,与同质ncx3(+ / +)相比,来自ncx3(-/-)小鼠的海马切片表现出LTP恶化。一致地,免疫组织化学和免疫印迹分析表明,与ncx3(+)相比,在ncx3(-/-)小鼠海马中Ca(2 +)/钙调蛋白依赖性蛋白激酶IIα(CaMKIIα)的表达和磷酸化CaMKIIα/CaMKIIα的比率均显着降低/ +)。有趣的是,ncx3(-/-)小鼠显示出减少的空间学习和记忆性能,这通过新颖的物体识别,Barnes迷宫和依赖于上下文的恐惧条件分析来揭示。总的来说,我们的研究结果表明,小鼠ncx3基因的缺失对基础突触传递,LTP调节,空间学习和记忆性能有不利影响。

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