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WKY和SHR肠系膜小动脉中钙通道亚基变体的表达

Expression of Calcium Channel Subunit Variants in Small Mesenteric Arteries of WKY and SHR.

作者信息

Cox Robert H, Fromme Samantha

机构信息

Program in Cardiovascular Disease, Lankenau Institute for Medical Research, Wynnewood, Pennsylvania.

出版信息

Am J Hypertens. 2015 Oct;28(10):1229-39. doi: 10.1093/ajh/hpv024. Epub 2015 Mar 28.

Abstract

BACKGROUND

Enhanced function of dihydropyridine-sensitive Ca2+ channels (CaV) in hypertensive arterial myocytes (HAM) is well accepted. Increased protein expression of pore forming α1-subunits contributes to this effect, but cannot explain all of the differences in CaV properties in HAM. We hypothesized that differences in expression of CaV subunits and/or their splice variants also contribute.

METHODS

RNA, protein, and myocytes were isolated from small mesenteric arteries (SMA) of 20-week-old male WKY and SHR and analyzed by polymerase chain reaction (PCR), sequencing, immunoblotting, and patch clamp methods.

RESULTS

Cav1.2 α1, β2c, and α2δ1d were the dominant subunits expressed in both WKY and SHR with a smaller amount of β3a. Real-time PCR indicated that the mRNA abundance of β3a and α2δ1 but not total Cav1.2 α1 or β2c were significantly larger in SHR. Analysis of alternative splicing of Cav1.2 α1 showed no differences in abundance of mutually exclusive exons1b, 8, 21 and 32 or alternative exons33 and 45. However, inclusion of exon9* was higher and a 73 nucleotide (nt) deletion in exon15 (exon15Δ73) was lower in SHR. Immunoblot analysis showed higher protein levels of Cav1.2 α1 (1.61±0.05), β3 (1.80±0.32), and α2δ1 (1.80±0.24) but not β2 in SHR.

CONCLUSIONS

The lower abundance of exon15Δ73 transcripts in SHR results in a larger fraction of total Cav1.2 mRNA coding for full-length CaV protein, and the higher abundance of exon9* transcripts and CaVβ3a protein likely contribute to differences in gating and kinetics of CaV currents in SHR. Functional studies of Ca2+ currents in native SMA myocytes and HEK cells transiently transfected with CaV subunits support these conclusions.

摘要

背景

高血压动脉肌细胞(HAM)中二氢吡啶敏感性Ca2+通道(CaV)功能增强已被广泛认可。孔形成α1亚基的蛋白表达增加促成了这一效应,但无法解释HAM中CaV特性的所有差异。我们推测CaV亚基及其剪接变体的表达差异也有作用。

方法

从20周龄雄性WKY和SHR的小肠系膜动脉(SMA)中分离RNA、蛋白质和肌细胞,并通过聚合酶链反应(PCR)、测序、免疫印迹和膜片钳方法进行分析。

结果

Cav1.2 α1、β2c和α2δ1d是WKY和SHR中表达的主要亚基,β3a的量较少。实时PCR表明,SHR中β3a和α2δ1的mRNA丰度显著高于总Cav1.2 α1或β2c。对Cav1.2 α1可变剪接的分析显示,相互排斥的外显子1b、8、21和32或可变外显子33和45的丰度没有差异。然而,SHR中外显子9*的包含率较高,外显子15中的73个核苷酸(nt)缺失(外显子15Δ73)较低。免疫印迹分析显示,SHR中Cav1.2 α1(1.61±0.05)、β3(1.80±0.32)和α2δ1(1.80±0.24)的蛋白水平较高,但β2的蛋白水平不高。

结论

SHR中外显子15Δ73转录本丰度较低导致编码全长CaV蛋白的总Cav1.2 mRNA比例更大,外显子9*转录本和CaVβ3a蛋白的丰度较高可能导致SHR中CaV电流门控和动力学的差异。对天然SMA肌细胞和瞬时转染CaV亚基的HEK细胞中Ca2+电流的功能研究支持了这些结论。

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