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Suppression of Kv3.3 channels by antisense oligonucleotides reverses biochemical effects and motor impairment in spinocerebellar ataxia type 13 mice.反义寡核苷酸对Kv3.3通道的抑制作用可逆转13型脊髓小脑共济失调小鼠的生化效应和运动障碍。
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Cerebellar Kv3.3 potassium channels activate TANK-binding kinase 1 to regulate trafficking of the cell survival protein Hax-1.小脑 Kv3.3 钾通道激活 TANK 结合激酶 1 以调节细胞存活蛋白 Hax-1 的转运。
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Kv3.3 channels harbouring a mutation of spinocerebellar ataxia type 13 alter excitability and induce cell death in cultured cerebellar Purkinje cells.携带有脊髓小脑共济失调 13 型突变的 Kv3.3 通道改变兴奋性并诱导培养的小脑浦肯野细胞死亡。
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Antisense Oligonucleotide Therapy Targeted Against ATXN3 Improves Potassium Channel-Mediated Purkinje Neuron Dysfunction in Spinocerebellar Ataxia Type 3.反义寡核苷酸疗法靶向 ATXN3 可改善脊髓小脑性共济失调 3 型的钾通道介导的浦肯野神经元功能障碍。
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The Evolution of Antisense Oligonucleotide Chemistry-A Personal Journey.反义寡核苷酸化学的演变——个人历程
Biomedicines. 2021 May 3;9(5):503. doi: 10.3390/biomedicines9050503.
2
The current landscape of nucleic acid therapeutics.核酸疗法的现状。
Nat Nanotechnol. 2021 Jun;16(6):630-643. doi: 10.1038/s41565-021-00898-0. Epub 2021 May 31.
3
Cerebellar Kv3.3 potassium channels activate TANK-binding kinase 1 to regulate trafficking of the cell survival protein Hax-1.小脑 Kv3.3 钾通道激活 TANK 结合激酶 1 以调节细胞存活蛋白 Hax-1 的转运。
Nat Commun. 2021 Mar 19;12(1):1731. doi: 10.1038/s41467-021-22003-8.
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Presynaptic Kv3 channels are required for fast and slow endocytosis of synaptic vesicles.突触前 Kv3 通道对于突触囊泡的快速和慢速内吞作用是必需的。
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Antisense Oligonucleotide Therapeutic Approach for Suppression of Ataxin-1 Expression: A Safety Assessment.抑制ataxin-1表达的反义寡核苷酸治疗方法:安全性评估。
Mol Ther Nucleic Acids. 2020 Sep 4;21:1006-1016. doi: 10.1016/j.omtn.2020.07.030. Epub 2020 Jul 25.
6
Advances in oligonucleotide drug delivery.寡核苷酸药物递送的进展。
Nat Rev Drug Discov. 2020 Oct;19(10):673-694. doi: 10.1038/s41573-020-0075-7. Epub 2020 Aug 11.
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Kv3.1 and Kv3.3 subunits differentially contribute to Kv3 channels and action potential repolarization in principal neurons of the auditory brainstem.Kv3.1 和 Kv3.3 亚基在听觉脑干的主要神经元中的 Kv3 通道和动作电位复极化中发挥不同作用。
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Disrupted Calcium Signaling in Animal Models of Human Spinocerebellar Ataxia (SCA).人类脊髓小脑共济失调症动物模型中的钙信号紊乱。
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Nusinersen initiated in infants during the presymptomatic stage of spinal muscular atrophy: Interim efficacy and safety results from the Phase 2 NURTURE study.在脊髓性肌萎缩症的前症状期对婴儿期开始用 nusinersen:2 期 NURTURE 研究的中期疗效和安全性结果。
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Antisense oligonucleotide therapy rescues aggresome formation in a novel spinocerebellar ataxia type 3 human embryonic stem cell line.反义寡核苷酸疗法挽救了一种新型3型脊髓小脑共济失调人类胚胎干细胞系中的聚集体形成。
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反义寡核苷酸对Kv3.3通道的抑制作用可逆转13型脊髓小脑共济失调小鼠的生化效应和运动障碍。

Suppression of Kv3.3 channels by antisense oligonucleotides reverses biochemical effects and motor impairment in spinocerebellar ataxia type 13 mice.

作者信息

Zhang Yalan, Quraishi Imran H, McClure Heather, Williams Luis A, Cheng YungChih, Kale Siddharth, Dempsey Graham T, Agrawal Sudhir, Gerber David J, McManus Owen B, Kaczmarek Leonard K

机构信息

Department of Pharmacology, Yale University School of Medicine, New Haven, Connecticut, USA.

Department of Neurology, Yale University School of Medicine, New Haven, Connecticut, USA.

出版信息

FASEB J. 2021 Dec;35(12):e22053. doi: 10.1096/fj.202101356R.

DOI:10.1096/fj.202101356R
PMID:34820911
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8630780/
Abstract

Mutations in KCNC3, the gene that encodes the Kv3.3 voltage dependent potassium channel, cause Spinocerebellar Ataxia type 13 (SCA13), a disease associated with disrupted motor behaviors, progressive cerebellar degeneration, and abnormal auditory processing. The Kv3.3 channel directly binds Hax-1, a cell survival protein. A disease-causing mutation, Kv3.3-G592R, causes overstimulation of Tank Binding Kinase 1 (Tbk1) in the cerebellum, resulting in the degradation of Hax-1 by promoting its trafficking into multivesicular bodies and then to lysosomes. We have now tested the effects of antisense oligonucleotides (ASOs) directed against the Kv3.3 channel on both wild type mice and those bearing the Kv3.3-G592R-encoding mutation. Intracerebroventricular infusion of the Kcnc3-specific ASO suppressed both mRNA and protein levels of the Kv3.3 channel. In wild-type animals, this produced no change in levels of activated Tbk1, Hax-1 or Cd63, a tetraspanin marker for late endosomes/multivesicular bodies. In contrast, in mice homozygous for the Kv3.3-G592R-encoding mutation, the same ASO reduced Tbk1 activation and levels of Cd63, while restoring the expression of Hax-1 in the cerebellum. The motor behavior of the mice was tested using a rotarod assay. Surprisingly, the active ASO had no effects on the motor behavior of wild type mice but restored the behavior of the mutant mice to those of age-matched wild type animals. Our findings indicate that, in mature intact animals, suppression of Kv3.3 expression can reverse the deleterious effects of a SCA13 mutation while having little effect on wild type animals. Thus, targeting Kv3.3 expression may prove a viable therapeutic approach for SCA13.

摘要

KCNC3基因发生突变会导致13型脊髓小脑共济失调(SCA13),该基因编码Kv3.3电压依赖性钾通道。SCA13是一种与运动行为紊乱、进行性小脑变性和听觉处理异常相关的疾病。Kv3.3通道直接与细胞存活蛋白Hax-1结合。一种致病突变Kv3.3-G592R会导致小脑内Tank结合激酶1(Tbk1)过度激活,通过促进其转运至多囊泡体进而进入溶酶体,导致Hax-1降解。我们现在测试了针对Kv3.3通道的反义寡核苷酸(ASO)对野生型小鼠和携带Kv3.3-G592R编码突变的小鼠的影响。脑室内注入Kcnc3特异性ASO可抑制Kv3.3通道的mRNA和蛋白质水平。在野生型动物中,这对活化的Tbk1、Hax-1或Cd63(晚期内体/多囊泡体的四跨膜蛋白标志物)的水平没有影响。相比之下,在纯合Kv3.3-G592R编码突变的小鼠中,相同的ASO降低了Tbk1的激活和Cd63的水平,同时恢复了小脑内Hax-1的表达。使用转棒试验测试小鼠的运动行为。令人惊讶的是,活性ASO对野生型小鼠的运动行为没有影响,但将突变小鼠的行为恢复到与年龄匹配的野生型动物的行为。我们的研究结果表明,在成熟的完整动物中,抑制Kv3.3表达可以逆转SCA13突变的有害影响,而对野生型动物影响很小。因此,靶向Kv3.3表达可能是一种可行的SCA13治疗方法。