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从DMPK基因敲除小鼠分离出的心肌细胞中的异常收缩活动和钙循环。

Abnormal contractile activity and calcium cycling in cardiac myocytes isolated from DMPK knockout mice.

作者信息

Pall Gurman S, Johnson Keith J, Smith Godfrey L

机构信息

Division of Molecular Genetics, Faculty of Biomedical and Life Sciences, Anderson College, University of Glasgow, Scotland, United Kingdom.

出版信息

Physiol Genomics. 2003 Apr 16;13(2):139-46. doi: 10.1152/physiolgenomics.00107.2002.

Abstract

Dysfunction of the gene encoding DMPK (myotonic dystrophy protein kinase) has been implicated in the human neuromuscular disease myotonic dystrophy (DM1). The cardiac features of the disease include progressive conduction defects and ventricular arrhythmias. These defects have been observed in hearts of mice deficient for DMPK function. We have investigated the role of DMPK in the function of ventricular cardiomyocytes using dmpk knockout (KO) mice. A deficit in DMPK caused enhanced basal contractility of single cardiomyocytes and an associated increase in intracellular Ca(2+), measured using fura-2. Biochemical measurements indicated hyperphosphorylation of phospholamban (PLB) in KO mice. This suggests increased Ca(2+) uptake into the sarcoplasmic reticulum (SR) as the underlying cause of enhanced contractility. This conclusion was supported by the larger amplitude of caffeine-induced Ca(2+) release from the SR in KO cardiomyocytes. Concurrent with hyperphosphorylated PLB, the response to isoprenaline was reduced. These observations suggest dmpk has a modulatory role in the control of intracellular Ca(2+) concentration in mouse ventricular cardiomyocytes, loss of which may contribute to cardiac dysfunction in DM1.

摘要

编码 DMPK(强直性肌营养不良蛋白激酶)的基因功能障碍与人类神经肌肉疾病强直性肌营养不良(DM1)有关。该疾病的心脏特征包括进行性传导缺陷和室性心律失常。在缺乏 DMPK 功能的小鼠心脏中已观察到这些缺陷。我们使用 dmpk 基因敲除(KO)小鼠研究了 DMPK 在心室心肌细胞功能中的作用。DMPK 的缺陷导致单个心肌细胞的基础收缩力增强,并且使用 fura-2 测量发现细胞内 Ca(2+) 相关增加。生化测量表明 KO 小鼠中受磷蛋白(PLB)过度磷酸化。这表明肌浆网(SR)对 Ca(2+) 的摄取增加是收缩力增强的潜在原因。KO 心肌细胞中咖啡因诱导的 SR 释放 Ca(2+) 的幅度更大,支持了这一结论。与 PLB 过度磷酸化同时发生的是,对异丙肾上腺素的反应降低。这些观察结果表明 dmpk 在控制小鼠心室心肌细胞内 Ca(2+) 浓度方面具有调节作用,其缺失可能导致 DM1 中的心脏功能障碍。

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