Liu Ting-Yuan, Chen Yu-Chia, Jong Yuh-Jyh, Tsai Huai-Jen, Lee Chien-Chin, Chang Ya-Sian, Chang Jan-Gowth, Chang Yung-Fu
Graduate Institute of Medicine, Kaohsiung Medical University, Kaohsiung, Taiwan, Republic of China.
Graduate Institute of Clinical Medicine, College of Medicine, Kaohsiung Medical University, Kaohsiung, Taiwan, Republic of China.
Open Biol. 2017 Jan;7(1). doi: 10.1098/rsob.160303.
Heterogeneous ribonucleoprotein A1 (hnRNP A1) is crucial for regulating alternative splicing. Its integrated function within an organism has not, however, been identified. We generated hnRNP A1 knockout mice to study the role of hnRNP A1 in vivo The knockout mice, hnRNP A1, showed embryonic lethality because of muscle developmental defects. The blood pressure and heart rate of the heterozygous mice were higher than those of the wild-type mice, indicating heart function defects. We performed mouse exon arrays to study the muscle development mechanism. The processes regulated by hnRNP A1 included cell adhesion and muscle contraction. The expression levels of muscle development-related genes in hnRNP A1 mice were significantly different from those in wild-type mice, as detected using qRT-PCR. We further confirmed the alternative splicing patterns of muscle development-related genes including mef2c, lrrfip1, usp28 and abcc9 Alternative mRNA isoforms of these genes were increased in hnRNP A1 mice compared with wild-type mice. Furthermore, we revealed that the functionally similar hnRNP A2/B1 did not compensate for the expression of hnRNP A1 in organisms. In summary, our study demonstrated that hnRNP A1 plays a critical and irreplaceable role in embryonic muscle development by regulating the expression and alternative splicing of muscle-related genes.
异质性核糖核蛋白A1(hnRNP A1)对调节可变剪接至关重要。然而,其在生物体中的综合功能尚未明确。我们构建了hnRNP A1基因敲除小鼠以研究hnRNP A1在体内的作用。基因敲除小鼠hnRNP A1由于肌肉发育缺陷而出现胚胎致死性。杂合小鼠的血压和心率高于野生型小鼠,表明存在心脏功能缺陷。我们进行了小鼠外显子阵列分析以研究肌肉发育机制。hnRNP A1调控的过程包括细胞黏附和肌肉收缩。使用qRT-PCR检测发现,hnRNP A1基因敲除小鼠中肌肉发育相关基因的表达水平与野生型小鼠有显著差异。我们进一步证实了包括mef2c、lrrfip1、usp28和abcc9在内的肌肉发育相关基因的可变剪接模式。与野生型小鼠相比,这些基因的可变mRNA异构体在hnRNP A1基因敲除小鼠中有所增加。此外,我们发现功能相似的hnRNP A2/B1不能补偿生物体中hnRNP A1的表达。总之,我们的研究表明,hnRNP A1通过调节肌肉相关基因的表达和可变剪接在胚胎肌肉发育中发挥关键且不可替代的作用。