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本文引用的文献

1
C-terminal alternative splicing of CaV1.3 channels distinctively modulates their dihydropyridine sensitivity.C 端可变剪接显著调节 Cav1.3 通道对二氢吡啶的敏感性。
Mol Pharmacol. 2013 Oct;84(4):643-53. doi: 10.1124/mol.113.087155. Epub 2013 Aug 7.
2
The Cavβ subunit prevents RFP2-mediated ubiquitination and proteasomal degradation of L-type channels.Cavβ 亚基可防止 RFP2 介导的 L 型通道的泛素化和蛋白酶体降解。
Nat Neurosci. 2011 Feb;14(2):173-80. doi: 10.1038/nn.2712. Epub 2010 Dec 26.
3
Developmental control of CaV1.2 L-type calcium channel splicing by Fox proteins.Fox蛋白对CaV1.2 L型钙通道剪接的发育控制
Mol Cell Biol. 2009 Sep;29(17):4757-65. doi: 10.1128/MCB.00608-09. Epub 2009 Jun 29.
4
Molecular alteration of Ca(v)1.2 calcium channel in chronic myocardial infarction.慢性心肌梗死中Ca(v)1.2钙通道的分子改变
Pflugers Arch. 2009 Aug;458(4):701-11. doi: 10.1007/s00424-009-0652-4. Epub 2009 Mar 5.
5
Alternative splicing of voltage-gated calcium channels: from molecular biology to disease.电压门控钙通道的可变剪接:从分子生物学到疾病
Pflugers Arch. 2009 Jul;458(3):481-7. doi: 10.1007/s00424-009-0635-5. Epub 2009 Jan 17.
6
Activation of corticotropin-releasing factor receptor 1 selectively inhibits CaV3.2 T-type calcium channels.促肾上腺皮质激素释放因子受体1的激活选择性抑制CaV3.2 T型钙通道。
Mol Pharmacol. 2008 Jun;73(6):1596-609. doi: 10.1124/mol.107.043612. Epub 2008 Feb 21.
7
A smooth muscle Cav1.2 calcium channel splice variant underlies hyperpolarized window current and enhanced state-dependent inhibition by nifedipine.一种平滑肌Cav1.2钙通道剪接变体是超极化窗口电流和硝苯地平增强的状态依赖性抑制的基础。
J Biol Chem. 2007 Nov 30;282(48):35133-42. doi: 10.1074/jbc.M705478200. Epub 2007 Oct 4.
8
A novel Ca(V)1.2 N terminus expressed in smooth muscle cells of resistance size arteries modifies channel regulation by auxiliary subunits.一种在阻力型小动脉平滑肌细胞中表达的新型Ca(V)1.2 N端通过辅助亚基改变通道调节。
J Biol Chem. 2007 Oct 5;282(40):29211-21. doi: 10.1074/jbc.M610623200. Epub 2007 Aug 14.
9
Atherosclerosis-related molecular alteration of the human CaV1.2 calcium channel alpha1C subunit.人类CaV1.2钙通道α1C亚基与动脉粥样硬化相关的分子改变。
Proc Natl Acad Sci U S A. 2006 Nov 7;103(45):17024-9. doi: 10.1073/pnas.0606539103. Epub 2006 Oct 27.
10
Splicing for alternative structures of Cav1.2 Ca2+ channels in cardiac and smooth muscles.心脏和平滑肌中Cav1.2钙离子通道可变结构的剪接
Cardiovasc Res. 2005 Nov 1;68(2):197-203. doi: 10.1016/j.cardiores.2005.06.024. Epub 2005 Jul 27.

可变剪接在新生大鼠心脏中产生一种新型截短的Cav1.2通道。

Alternative splicing generates a novel truncated Cav1.2 channel in neonatal rat heart.

作者信息

Liao Ping, Yu Dejie, Hu Zhenyu, Liang Mui Cheng, Wang Jue Jin, Yu Chye Yun, Ng Gandi, Yong Tan Fong, Soon Jia Lin, Chua Yeow Leng, Soong Tuck Wah

机构信息

From the National Neuroscience Institute, 11 Jalan Tan Tock Seng, Singapore 308433, Duke-NUS Graduate Medical School Singapore, Singapore 169857,

Department of Physiology, Yong Loo Lin School of Medicine, National University of Singapore, Singapore 117597, and.

出版信息

J Biol Chem. 2015 Apr 3;290(14):9262-72. doi: 10.1074/jbc.M114.594911. Epub 2015 Feb 18.

DOI:10.1074/jbc.M114.594911
PMID:25694430
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4423710/
Abstract

L-type Cav1.2 Ca(2+) channel undergoes extensive alternative splicing, generating functionally different channels. Alternatively spliced Cav1.2 Ca(2+) channels have been found to be expressed in a tissue-specific manner or under pathological conditions. To provide a more comprehensive understanding of alternative splicing in Cav1.2 channel, we systematically investigated the splicing patterns in the neonatal and adult rat hearts. The neonatal heart expresses a novel 104-bp exon 33L at the IVS3-4 linker that is generated by the use of an alternative acceptor site. Inclusion of exon 33L causes frameshift and C-terminal truncation. Whole-cell electrophysiological recordings of Cav1.233L channels expressed in HEK 293 cells did not detect any current. However, when co-expressed with wild type Cav1.2 channels, Cav1.233L channels reduced the current density and altered the electrophysiological properties of the wild type Cav1.2 channels. Interestingly, the truncated 3.5-domain Cav1.233L channels also yielded a dominant negative effect on Cav1.3 channels, but not on Cav3.2 channels, suggesting that Cavβ subunits is required for Cav1.233L regulation. A biochemical study provided evidence that Cav1.233L channels enhanced protein degradation of wild type channels via the ubiquitin-proteasome system. Although the physiological significance of the Cav1.233L channels in neonatal heart is still unknown, our report demonstrates the ability of this novel truncated channel to modulate the activity of the functional Cav1.2 channels. Moreover, the human Cav1.2 channel also contains exon 33L that is developmentally regulated in heart. Unexpectedly, human exon 33L has a one-nucleotide insertion that allowed in-frame translation of a full Cav1.2 channel. An electrophysiological study showed that human Cav1.233L channel is a functional channel but conducts Ca(2+) ions at a much lower level.

摘要

L型Cav1.2钙离子通道经历广泛的可变剪接,产生功能不同的通道。已发现可变剪接的Cav1.2钙离子通道以组织特异性方式或在病理条件下表达。为了更全面地了解Cav1.2通道中的可变剪接,我们系统地研究了新生和成年大鼠心脏中的剪接模式。新生心脏在IVS3-4连接区表达一个新的104bp外显子33L,它是通过使用一个可变受体位点产生的。包含外显子33L会导致移码和C末端截短。在HEK 293细胞中表达的Cav1.233L通道的全细胞电生理记录未检测到任何电流。然而,当与野生型Cav1.2通道共表达时,Cav1.233L通道降低了电流密度并改变了野生型Cav1.2通道的电生理特性。有趣的是,截短的3.5结构域Cav1.233L通道对Cav1.3通道也产生显性负效应,但对Cav3.2通道没有影响,这表明Cavβ亚基是Cav1.233L调节所必需的。一项生化研究提供了证据,表明Cav1.233L通道通过泛素-蛋白酶体系统增强了野生型通道的蛋白质降解。尽管Cav1.233L通道在新生心脏中的生理意义仍然未知,但我们的报告证明了这种新型截短通道调节功能性Cav1.2通道活性的能力。此外,人类Cav1.2通道也包含在心脏中受发育调节的外显子33L。出乎意料的是,人类外显子33L有一个单核苷酸插入,允许完整的Cav1.2通道进行框内翻译。一项电生理研究表明,人类Cav1.233L通道是一个功能性通道,但传导钙离子的水平要低得多。