Electrophysiological characterization of the striatal cholinergic interneurons in Dyt1 ΔGAG knock-in mice.

Dystonia Pub Date : 2022-07-01 Epub Date: 2022-07-21 DOI:10.3389/dyst.2022.10557
Hong Xing, Fumiaki Yokoi, Ariel Luz Walker, Rosemarie Torres-Medina, Yuning Liu, Yuqing Li
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引用次数: 3

Abstract

DYT1 dystonia is an inherited early-onset movement disorder characterized by sustained muscle contractions causing twisting, repetitive movements, and abnormal postures. Most DYT1 patients have a heterozygous trinucleotide GAG deletion mutation (ΔGAG) in DYT1/TOR1A, coding for torsinA. Dyt1 heterozygous ΔGAG knock-in (KI) mice show motor deficits and reduced striatal dopamine receptor 2 (D2R). Striatal cholinergic interneurons (ChIs) are essential in regulating striatal motor circuits. Multiple dystonia rodent models, including KI mice, show altered ChI firing and modulation. However, due to the errors in assigning KI mice, it is essential to replicate these findings in genetically confirmed KI mice. Here, we found irregular and decreased spontaneous firing frequency in the acute brain slices from Dyt1 KI mice. Quinpirole, a D2R agonist, showed less inhibitory effect on the spontaneous ChI firing in Dyt1 KI mice, suggesting decreased D2R function on the striatal ChIs. On the other hand, a muscarinic receptor agonist, muscarine, inhibited the ChI firing in both wild-type (WT) and Dyt1 KI mice. Trihexyphenidyl, a muscarinic acetylcholine receptor M1 antagonist, had no significant effect on the firing. Moreover, the resting membrane property and functions of hyperpolarization-activated cyclic nucleotide-gated (HCN) channels, μ-opioid receptors, and large-conductance calcium-activated potassium (BK) channels were unaffected in Dyt1 KI mice. The results suggest that the irregular and low-frequency firing and decreased D2R function are the main alterations of striatal ChIs in Dyt1 KI mice. These results appear consistent with the reduced dopamine release and high striatal acetylcholine tone in the previous reports.

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Dyt1 ΔGAG敲入小鼠纹状体胆碱能中间神经元的电生理特征。
DYT1肌张力障碍是一种遗传性早发性运动障碍,其特征是持续的肌肉收缩导致扭曲、重复运动和异常姿势。大多数DYT1患者在编码torsinA的DYT1/TOR1A中存在杂合三核苷酸GAG缺失突变(ΔGAG)。Dyt1杂合ΔGAG敲入(KI)小鼠表现出运动缺陷和纹状体多巴胺受体2 (D2R)降低。纹状体胆碱能中间神经元在调节纹状体运动回路中起重要作用。包括KI小鼠在内的多种肌张力障碍啮齿动物模型显示了ChI放电和调节的改变。然而,由于分配KI小鼠的错误,有必要在基因确认的KI小鼠中复制这些发现。在这里,我们发现Dyt1 KI小鼠急性脑切片中自发放电频率不规则且降低。D2R激动剂Quinpirole对Dyt1 KI小鼠自发性ChI放电的抑制作用较弱,提示D2R对纹状体ChI的作用减弱。另一方面,毒蕈碱受体激动剂毒蕈碱(muscarine)抑制野生型(WT)和Dyt1 KI小鼠的ChI放电。毒蕈碱类乙酰胆碱受体M1拮抗剂Trihexyphenidyl对放电无显著影响。此外,Dyt1 KI小鼠的超极化激活环核苷酸门控(HCN)通道、μ-阿片受体和大电导钙活化钾(BK)通道的静息膜性质和功能未受影响。结果表明,不规则低频放电和D2R功能下降是Dyt1 KI小鼠纹状体ChIs的主要改变。这些结果与先前报道的多巴胺释放减少和纹状体乙酰胆碱张力升高一致。
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