miRNA’LAR VE KORONER ARTER HASTALIKLARIYLA İLİŞKİLERİ
Year 2020,
Volume: 8 Issue: 1, 162 - 174, 26.04.2020
Reşat Dikme
,
Mahmut Padak
,
Ezhar Korkmaz Ersöz
Yasemin Hacanlı
Abstract
Son çalışmalar, miRNA'ların kalbin gelişimi ve düzgün çalışması için çok önemli olduğunu göstermiştir. Kalbin kardiyojenik transkripsiyon faktörleri nedeniyle ifade edilen birçok miRNA'sı vardır. Kardiyovasküler hastalıklar sırasında miRNA ekspresyonu önemli ölçüde değişir ve farklı miRNA ekspresyon seviyeleri spesifik kardiyovasküler bozukluklarla korelasyon gösterir. Bu derleme makalesi miRNA'lar hakkında ayrıntılı bilgi vererek hem klinik hem de subklinik koroner arter hastalığı ile korelasyonu hakkındaki mevcut kanıtları özetlemekte, ayrıca miRNA'ların koroner arter hastalığında potansiyel bir tanı ve prognostik biyobelirteç olarak araştırmanın gerekliliğini vurgulamaktadır.
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Relations of mirna's and Coronary Artery Diseases
Year 2020,
Volume: 8 Issue: 1, 162 - 174, 26.04.2020
Reşat Dikme
,
Mahmut Padak
,
Ezhar Korkmaz Ersöz
Yasemin Hacanlı
Abstract
Recent studies have established that miRNAs are crucial for the development and proper functioning of the heart. The heart has many miRNAs expressed due to cardiogenic transcription factors. During cardiovascular diseases, miRNA expression varies significantly and different miRNA expression levels are correlated with specific cardiovascular disorders. This review article provides detailed information about miRNAs, summarizes the available evidence on the correlation of micro-RNAs with both the clinical and subclinical coronary artery disease and highlights the necessity for exploring miRNAs as a potential diagnostic and prognostic biomarker of early CAD.
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- Lässer, C., O’Neil, S. E., Ekerljung, L., Ekström, K., Sjöstrand, M., & Lötvall, J. (2011). RNA-containing exosomes in human nasal secretions. American Journal of Rhinology and Allergy. https://doi.org/10.2500/ajra.2011.25.3573
- Lee, R. C., Feinbaum, R. L., & Ambros, V. (1993). The C. elegans heterochronic gene lin-4 encodes small RNAs with antisense complementarity to lin-14. Cell. https://doi.org/10.1016/0092-8674(93)90529-Y
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- Lee, Y., Kim, M., Han, J., Yeom, K. H., Lee, S., Baek, S. H., & Kim, V. N. (2004). MicroRNA genes are transcribed by RNA polymerase II. EMBO Journal. https://doi.org/10.1038/sj.emboj.7600385
- Leopold, J. (2014). MicroRNAs Regulate Vascular Medial Calcification. Cells. https://doi.org/10.3390/cells3040963
- Maitrias, P., Metzinger-Le Meuth, V., Massy, Z. A., M’Baya-Moutoula, E., Reix, T., Caus, T., & Metzinger, L. (2015). MicroRNA deregulation in symptomatic carotid plaque Presented at the Controversies and Updates in Vascular Surgery Congress, Paris, France, January 22-24, 2015. Journal of Vascular Surgery. https://doi.org/10.1016/j.jvs.2015.06.136
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- Rotllan, N., & Fernández-Hernando, C. (2012). MicroRNA regulation of cholesterol metabolism. In Cholesterol. https://doi.org/10.1155/2012/847849
- Rottiers, V., & Näär, A. M. (2012). MicroRNAs in metabolism and metabolic disorders. In Nature Reviews Molecular Cell Biology. https://doi.org/10.1038/nrm3313
- Saito, T., & Sætrom, P. (2010). MicroRNAs - targeting and target prediction. In New Biotechnology. https://doi.org/10.1016/j.nbt.2010.02.016
- Saito, Y., Liang, G., Egger, G., Friedman, J. M., Chuang, J. C., Coetzee, G. A., & Jones, P. A. (2006). Specific activation of microRNA-127 with downregulation of the
proto-oncogene BCL6 by chromatin-modifying drugs in human cancer cells. Cancer Cell. https://doi.org/10.1016/j.ccr.2006.04.020
- Taft, R. J., Pheasant, M., & Mattick, J. S. (2007). The relationship between non-protein-coding DNA and eukaryotic complexity. In BioEssays. https://doi.org/10.1002/bies.20544
- Thum, T., Galuppo, P., Wolf, C., Fiedler, J., Kneitz, S., Van Laake, L. W., Doevendans, P. A., Mummery, C. L., Borlak, J., Haverich, A., Gross, C., Engelhardt, S., Ertl, G., & Bauersachs, J. (2007). MicroRNAs in the human heart: A clue to fetal gene reprogramming in heart failure. Circulation. https://doi.org/10.1161/CIRCULATIONAHA.107.687947
- Treiber, T., Treiber, N., & Meister, G. (2012). Regulation of microRNA biogenesis and function. In Thrombosis and Haemostasis. https://doi.org/10.1160/th11-12-0836
- Van Rooij, E., & Olson, E. N. (2007). MicroRNAs: Powerful new regulators of heart disease and provocative therapeutic targets. In Journal of Clinical Investigation. https://doi.org/10.1172/JCI33099
- Wang, F., Chen, C., & Wang, D. (2014). Circulating microRNAs in cardiovascular diseases: from biomarkers to therapeutic targets. In Frontiers of Medicine. https://doi.org/10.1007/s11684-014-0379-2
- Wang, J., Pei, Y., Zhong, Y., Jiang, S., Shao, J., & Gong, J. (2014). Altered serum microRNAs as novel diagnostic biomarkers for atypical coronary artery disease. PLoS ONE. https://doi.org/10.1371/journal.pone.0107012
- Westholm, J. O., & Lai, E. C. (2011). Mirtrons: MicroRNA biogenesis via splicing. In Biochimie. https://doi.org/10.1016/j.biochi.2011.06.017
- Widmer, R. J., Chung, W. Y., Herrmann, J., Jordan, K. L., Lerman, L. O., & Lerman, A. (2014). The association between circulating MicroRNA levels and coronary endothelial function. PLoS ONE. https://doi.org/10.1371/journal.pone.0109650
- Xiao, Y. F., Yong, X., Fan, Y. H., Lü, M. H., Yang, S. M., & Hu, C. J. (2013). microRNA detection in feces, sputum, pleural effusion and urine: Novel tools for cancer screening (Review). In Oncology Reports. https://doi.org/10.3892/or.2013.2525