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倒置 loxP 位点之间的重组引起的干扰与海马中间神经元功能障碍有关。

Disruption Induced by Recombination between Inverted loxP Sites Is Associated with Hippocampal Interneuron Dysfunction.

机构信息

Department of Neuroscience, Research Group on Neuronal Signaling and Circuits and Center for Interdisciplinary Research on Brain and Learning, University of Montreal, Montreal, Québec H3C 3J7, Canada.

University Hospital Center (CHU) Sainte-Justine Research Center, Montréal, Québec H3T1C5, Canada.

出版信息

eNeuro. 2023 May 5;10(5). doi: 10.1523/ENEURO.0475-22.2023. Print 2023 May.

Abstract

haploinsufficiency in humans causes intellectual disability (ID). SYNGAP1 is highly expressed in cortical excitatory neurons and, reducing its expression in mice accelerates the maturation of excitatory synapses during sensitive developmental periods, restricts the critical period window for plasticity, and impairs cognition. However, its specific role in interneurons remains largely undetermined. In this study, we investigated the effects of conditional disruption in medial ganglionic eminence (MGE)-derived interneurons on hippocampal interneuron firing properties and excitatory synaptic inputs, as well as on pyramidal cell synaptic inhibition and synaptic integration. We show that conditional disruption in MGE-derived interneurons results in cell-specific impairment of firing properties of hippocampal Nkx2.1 fast-spiking interneurons, with enhancement of their AMPA receptor (AMPAR)-mediated excitatory synaptic inputs but compromised short-term plasticity. In contrast, regular-spiking Nkx2.1 interneurons are largely unaffected. These changes are associated with impaired pyramidal cell synaptic inhibition and enhanced summation of excitatory responses. Unexpectedly, we found that the allele used in this study contains inverted loxP sites and that its targeted recombination in MGE-derived interneurons induces some cell loss during embryonic development and the reversible inversion of the sequence flanked by the loxP sites in postmitotic cells. Together, these results suggest that plays a role in cell-specific regulation of hippocampal interneuron function and inhibition of pyramidal cells in mice. However, because of our finding that the allele used in this study contains inverted loxP sites, it will be important to further investigate interneuron function using a different conditional allele.

摘要

人类杂合性缺失导致智力障碍 (ID)。SYNGAP1 在皮质兴奋性神经元中高度表达,减少其在小鼠中的表达会加速发育敏感时期兴奋性突触的成熟,限制可塑性的关键期窗口,并损害认知。然而,其在中间神经元中的具体作用在很大程度上仍未确定。在这项研究中,我们研究了条件性破坏中脑神经节隆起 (MGE) 衍生的中间神经元对海马中间神经元放电特性和兴奋性突触输入以及锥体神经元突触抑制和突触整合的影响。我们表明,条件性破坏 MGE 衍生的中间神经元导致海马 Nkx2.1 快速放电中间神经元的放电特性出现细胞特异性损伤,增强其 AMPA 受体 (AMPAR) 介导的兴奋性突触输入,但短期可塑性受损。相比之下,规则放电的 Nkx2.1 中间神经元受影响较小。这些变化与锥体神经元突触抑制受损和兴奋性反应的总和增强有关。出乎意料的是,我们发现,本研究中使用的 等位基因包含倒置的 loxP 位点,其在 MGE 衍生的中间神经元中的靶向重组在胚胎发育过程中诱导一些细胞丢失,并在有丝分裂后细胞中侧翼 loxP 位点的序列可逆反转。总之,这些结果表明, 在调节海马中间神经元功能和抑制小鼠锥体细胞方面发挥特定的作用。然而,由于我们发现本研究中使用的 等位基因包含倒置的 loxP 位点,因此使用不同的 条件性等位基因进一步研究中间神经元功能将非常重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a2c9/10166128/4df94a45ad39/ENEURO.0475-22.2023_f001.jpg

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