山东大学学报(医学版) ›› 2015, Vol. 53 ›› Issue (5): 21-26.doi: 10.6040/j.issn.1671-7554.0.2014.1002
姜蕾, 张磊, 梁江久
JIANG Lei, ZHANG Lei, LIANG Jiangjiu
摘要: 目的 探讨长链非编码RNA(lncRNA)在腹主动脉缩窄术大鼠心肌肥厚和正常大鼠心肌中的差异表达。方法 构建腹主动脉缩窄大鼠模型,术后4周测量大鼠超声心动图参数、左室质量指数,通过HE染色观察心肌细胞的面积,采用qRT-PCR法检测心肌肥厚相关因子ANF、β-MHC mRNA的表达水平,验证压力超负荷模型构建情况。采用lncRNA芯片技术检测lncRNA表达谱,筛选出具有差异性表达的lncRNA,并通过qRT-PCR验证芯片结果准确性。利用lncRNA与mRNA特异性表达的标准化信号强度,构建lncRNA与靶基因的共表达网络。结果 大鼠心肌肥厚中共检测出6 969条lncRNA,其中显著上调表达80条,显著下调表达172条。经qRT-PCR检测显示,在大鼠心肌肥厚中MRAK134201下调表达,X89963上调表达,与芯片结果一致。构建共表达网络发现,与XR_008680共表达的蛋白编码基因111个。结论 lncRNA在压力超负荷性大鼠心脏组织中的表达谱发生变化,提示lncRNA可能在心肌肥厚的发生发展中具有一定的作用。
中图分类号:
| [1] Ponting CP, Oliver PL, Reik W. Evolution and functions of long noncoding RNAs[J]. Cell, 2009, 136(4):629-641. [2] Tardiff JC. Cardiac hypertrophy:stressing out the heart[J]. J Clin Invest, 2006, 116(6):1467-1470. [3] Pfaffl MW. A new mathematical model for relative quantification in real-time RT-PCR[J]. Nucleic Acids Res, 2001, 29(9):45. [4] Liao Q, Liu C, Yuan X, et al. Large-scale prediction of long non-coding RNA functions in a coding-non-coding gene co-expression network[J]. Nucleic Acids Res, 2011, 39(9):3864-3878. [5] Huarte M, Rinn JL. Large non-coding RNAs:missing links in cancer?[J]. Hum Mol Genet, 2010, 19(2):152-161. [6] Arima T, Matsuda T, Takagi N, et al. Association of IGF2 and H19 imprinting with choriocarcinoma development[J]. Cancer Genet Cytogenet, 1997, 93(1):39-47. [7] Tanos V, Ariel I, Prus D, et al. H19 and IGF2 gene expression in human normal, hyperplastic, and malignant endometrium[J]. Int J Gynecol Cancer, 2004, 14(3):521-525. [8] Matouk IJ, DeGroot N, Mezan S, et al. The H19 non-coding RNA is essential for human tumor growth[J]. PLoS One, 2007, 2(9):845. [9] Ariel I, de Groot N, Hochberg A. Imprinted H19 gene expression in embryogenesis and human cancer:the oncofetal connection[J]. Am J Med Genet, 2000, 91(1):46-50. [10] Ayesh S, Matouk I, Schneider T, et al. Possible physiological role of H19 RNA[J]. Mol Carcinog, 2002, 35(2):63-74. [11] Klattenhoff CA, Scheuermann JC, Surface LE, et al. Braveheart, a long noncoding RNA required for cardiovascular lineage commitment[J]. Cell, 2013, 152(3):570-583. [12] Grote P, Wittler L, Hendrix D, et al. The tissue-specific lncRNA Fendrr is an essential regulator of heart and body wall development in the mouse[J]. Dev Cell, 2013, 24(2):206-214. [13] Cooper C, Vincett D, Yan Y, et al. Steroid Receptor RNA Activator bi-faceted genetic system:Heads or Tails?[J]. Biochimie, 2011, 93(11):1973-1980. [14] Li D, Chen G, Yang J, et al. Transcriptome analysis reveals distinct patterns of long noncoding RNAs in heart and plasma of mice with heart failure[J]. PLoS One, 2013, 8(10):77938. [15] Kumarswamy R, Bauters C, Volkmann I, et al. Circulating long noncoding RNA, LIPCAR, predicts survival in patients with heart failure[J]. Circ Res, 2014, 114(10):1569-1575. [16] Wang K, Liu F, Zhou LY, et al. The long noncoding RNA CHRF regulates cardiac hypertrophy by targeting miR-489[J]. Circ Res, 2014, 114(9):1377-1388. [17] Mercer TR, Dinger ME, Mattick JS. Long non-coding RNAs:insights into functions[J]. Nat Rev Genet, 2009, 10(3):155-159. [18] Sodhi K, Wu CC, Cheng J, et al. CYP4A2-induced hypertension is 20-hydroxyeicosatetraenoic acid- and angiotensin II-dependent[J]. Hypertension, 2010, 56(5):871-878. [19] Latchman DS. Heat shock proteins and cardiac protection[J]. Cardiovasc Res, 2001, 51(4):637-646. [20] Fan GC, Chu G, Kranias EG. Hsp20 and its cardioprotection[J]. Trends Cardiovasc Med, 2005, 15(4):138-141. [21] Eckert D, Biermann K, Nettersheim D, et al. Expression of BLIMP1/PRMT5 and concurrent histone H2A/H4 arginine 3 dimethylation in fetal germ cells, CIS/IGCNU and germ cell tumors[J]. BMC Dev Biol, 2008, 8:106. [22] Li SQ, Wang HM, Cao XF. Potential clinical insights into microRNAs and their target genes in esophageal carcinoma[J]. Biomarkers, 2011, 16(8):629-636. [23] Fujita T, Miyamoto S, Onoyama I, et al. Expression of lysophosphatidic acid receptors and vascular endothelial growth factor mediating lysophosphatidic acid in the development of human ovarian cancer[J]. Cancer Lett, 2003, 192(2):161-169. |
| [1] | 吴逸南 葛志明 李方 贺红 姜虹 张运. 自发性高血压大鼠肾脏血管紧张素转换酶2的表达[J]. 山东大学学报(医学版), 2209, 47(6): 5-. |
| [2] | 祝林 胡三元 张光永 丁祥就. 前列腺素E2对阻塞性黄疸大鼠小肠粘膜形态的保护作用[J]. 山东大学学报(医学版), 2209, 47(6): 12-. |
| [3] | 孙涛 张道来 谢珊珊 王玉卓 冯玉新 辛华. 酒精对原代培养的神经前体细胞间隙连接蛋白43表达的影响[J]. 山东大学学报(医学版), 2209, 47(6): 20-. |
| [4] | 张道来 孙涛 谢珊珊 王玉卓 赵玲 冯玉新 辛华. 体外原代培养胎鼠大脑皮层神经元NMDAR1亚基表达的发育性变化[J]. 山东大学学报(医学版), 2209, 47(6): 28-32. |
| [5] | 李梓绮,魏闫若雪,刘晓晗,刘春铖,赵然,刘玉昆. 长链非编码RNA HEATR3反义RNA 1参与结直肠癌发生发展的功能及其临床意义[J]. 山东大学学报 (医学版), 2025, 63(9): 108-115. |
| [6] | 赵子辉,王旭阳,张鹏,方宁宁,石端博,杨帆,杨晓玫,吴剑波. 经膈肌穿刺法快速准确评估大鼠肺动脉高压[J]. 山东大学学报 (医学版), 2024, 62(2): 20-28. |
| [7] | 董雅琪,王新慧,赵颖慧,王传新. 血清外泌体LINC02163作为结直肠癌远处转移标志物的临床价值[J]. 山东大学学报 (医学版), 2023, 61(9): 19-28. |
| [8] | 祁少俊,唐延金,张正铎,吴虹,张佳程,秦川,刘锐,高希宝. 补充多种微量元素对高糖饮食大鼠的保护作用[J]. 山东大学学报 (医学版), 2023, 61(7): 19-26. |
| [9] | 虎娜,孙苗,邢莎莎,许丹霞,海小明,马玲,杨丽,勉昱琛,何瑞,陈冬梅,马会明. 月见草油抵抗多囊卵巢综合征大鼠卵巢氧化应激[J]. 山东大学学报 (医学版), 2022, 60(5): 22-30. |
| [10] | 张正铎,吴虹,祁少俊,唐延金,高希宝. 口服5-甲基四氢叶酸对大鼠阿尔茨海默病的预防作用[J]. 山东大学学报 (医学版), 2022, 60(3): 13-23. |
| [11] | 钟黎黎,盛莹,郭江虹,阳双健,何宜静. LncRNA-UCA1通过靶向调控miR-182-5p对滋养细胞侵袭与转移的影响[J]. 山东大学学报 (医学版), 2022, 60(3): 76-82. |
| [12] | 赵慧文,许琳,单姗,赵秀兰. 牛磺酸对1-溴丙烷致大鼠认知功能障碍的保护作用[J]. 山东大学学报 (医学版), 2022, 60(2): 14-21. |
| [13] | 冯鑫鑫,韩波,张丽,马孟洁,陈思宇. 长链非编码RNA NONHSAT247814.1在18例儿童心肌炎中的表达及体外细胞实验观察[J]. 山东大学学报 (医学版), 2022, 60(10): 27-32. |
| [14] | 孟婷婷,王淑亚,吴会会,陈嘉敏,郑燕,李莹,苏国海. 脂联素通过分泌型卷曲相关蛋白2及相关通路缓解AngⅡ诱导的心肌肥厚[J]. 山东大学学报 (医学版), 2021, 59(8): 44-52. |
| [15] | 郭曼,刘鹏,龙麟. 防纤汤对放射性肺炎大鼠的影响及作用机制[J]. 山东大学学报 (医学版), 2021, 59(8): 53-60. |
|
||