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Dissociation of somatostatin and parvalbumin interneurons circuit dysfunctions underlying hippocampal theta and gamma oscillations impaired by amyloid beta oligomers in vivo

机译:生长抑制素和帕拉瓦巴蛋白酶的解离潜水障碍底层底层β和γ振动件在体内的淀粉样蛋白β低聚物损害

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Accumulation of amyloid beta oligomers (A beta O) in Alzheimer's disease (AD) impairs hippocampal theta and gamma oscillations. These oscillations are important in memory functions and depend on distinct subtypes of hippocampal interneurons such as somatostatin-positive (SST) and parvalbumin-positive (PV) interneurons. Here, we investigated whether A beta O causes dysfunctions in SST and PV interneurons by optogenetically manipulating them during theta and gamma oscillations in vivo in A beta O-injected SST-Cre or PV-Cre mice. Hippocampal in vivo multi-electrode recordings revealed that optogenetic activation of channelrhodopsin-2 (ChR2)-expressing SST and PV interneurons in A beta O-injected mice selectively restored A beta O-induced reduction of the peak power of theta and gamma oscillations, respectively, and resynchronized CA1 pyramidal cell (PC) spikes. Moreover, SST and PV interneuron spike phases were resynchronized relative to theta and gamma oscillations, respectively. Whole-cell voltage-clamp recordings in CA1 PC in ex vivo hippocampal slices from A beta O-injected mice revealed that optogenetic activation of SST and PV interneurons enhanced spontaneous inhibitory postsynaptic currents (IPSCs) selectively at theta and gamma frequencies, respectively. Furthermore, analyses of the stimulus-response curve, paired-pulse ratio, and short-term plasticity of SST and PV interneuron-evoked IPSCs ex vivo showed that A beta O increased the initial GABA release probability to depress SST/PV interneuron's inhibitory input to CA1 PC selectively at theta and gamma frequencies, respectively. Our results reveal frequency-specific and interneuron subtype-specific presynaptic dysfunctions of SST and PV interneurons' input to CA1 PC as the synaptic mechanisms underlying A beta O-induced impairments of hippocampal network oscillations and identify them as potential therapeutic targets for restoring hippocampal network oscillations in early AD.
机译:Alzheimer疾病(AD)中淀粉样蛋白β低聚物(Aβ0)的积累损害海马θ和γ振荡。这些振荡在记忆功能中是重要的,并且依赖于海马型阳性(SST)和Parvalbumin-阳性(PV)中间核的不同亚型。在这里,我们研究了ββ是否通过在β0注射的SST-CRE或PV-CRE小鼠中的体内θ和γ振荡期间对SST和PV中间核来引起心脏病疾病。体内多电极记录中的海马显示,在βO注射的小鼠中,患有频道的透明度激活-Ext和PV中间核,分别选择性地恢复了βo诱导的β和γ振荡的峰值功率降低,并重新同步CA1金字塔型细胞(PC)尖峰。此外,SST和PV Interneuron Spike阶段分别相对于θ和γ振荡重新同步。来自βO注射小鼠的离体海马切片中CA1 PC中的全电池电压 - 钳位记录显示,SST和PV中间核的致敏激活分别在θ和伽马频率中选择性地增强了自发抑制突触电流(IPSC)。此外,SST和PV Interneuron Imoked IPSCs前体内刺激响应曲线,配对脉冲比和短期可塑性的分析表明,β0增加了初始GABA释放概率,以降低SST / PV Interneuron的抑制输入CA1 PC分别在θ和伽马频率下选择性地。我们的结果显示了SST和PV Interneurons的特定频率和Interneuron亚型特异性突触前功能障碍,CA1 PC作为海马网络振荡损伤的突触机制,并将其识别为恢复海马网络振荡的潜在治疗目标早期广告。

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