For: | Wang XC, Zhan XR, Li XY, Yu JJ, Liu XM. MicroRNA-185 regulates expression of lipid metabolism genes and improves insulin sensitivity in mice with non-alcoholic fatty liver disease. World J Gastroenterol 2014; 20(47): 17914-17923 [PMID: 25548489 DOI: 10.3748/wjg.v20.i47.17914] |
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URL: | https://www.wjgnet.com/1007-9327/full/v20/i47/17914.htm |
Number | Citing Articles |
1 |
Chunyou Ning, Guilin Li, Lu You, Yao Ma, Long Jin, Jideng Ma, Xuewei Li, Mingzhou Li, Haifeng Liu. MiR-185 inhibits 3T3-L1 cell differentiation by targetingSREBP-1. Bioscience, Biotechnology, and Biochemistry 2017; 81(9): 1747 doi: 10.1080/09168451.2017.1347485
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2 |
Vesa M. Olkkonen. Role of microRNA-185 in the FoxO1-CYP7A1 mediated regulation of bile acid and cholesterol metabolism: A novel target for drug discovery?. Atherosclerosis 2022; 348: 53 doi: 10.1016/j.atherosclerosis.2022.03.023
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3 |
Quyangangmao Su, Zhanhong Gao, Fengshuo Zhang, Zhenling Wu, Qiurong Ji, Kaina Zhu, Linsheng Gui. Effect of miR-10a on the proliferation and differentiation of yak adipocyte precursors. Journal of Applied Genetics 2024; doi: 10.1007/s13353-024-00932-6
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4 |
Lidia Daimiel. Handbook of Nutrition, Diet, and Epigenetics. 2017; : 1 doi: 10.1007/978-3-319-31143-2_52-1
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5 |
Esra Guzeldemir-Akcakanat, Deniz Sunnetci-Akkoyunlu, V. Merve Balta-Uysal, Tolgahan Özer, Elif Büşra Işik, Naci Cine. Differentially expressed miRNAs associated with generalized aggressive periodontitis. Clinical Oral Investigations 2023; 28(1) doi: 10.1007/s00784-023-05404-5
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6 |
Yajie Guo, Junjie Yu, Chunxia Wang, Kai Li, Bin Liu, Ying Du, Fei Xiao, Shanghai Chen, Feifan Guo. miR-212-5p suppresses lipid accumulation by targeting FAS and SCD1. Journal of Molecular Endocrinology 2017; 59(3): 205 doi: 10.1530/JME-16-0179
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7 |
Xing-Ya Guo, Jian-Neng Chen, Fang Sun, Yu-Qin Wang, Qin Pan, Jian-Gao Fan, Jaideep Banerjee. circRNA_0046367 Prevents Hepatoxicity of Lipid Peroxidation: An Inhibitory Role against Hepatic Steatosis. Oxidative Medicine and Cellular Longevity 2017; 2017(1) doi: 10.1155/2017/3960197
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8 |
Yuan Wang, Yujia Feng, Han Zhang, Qinghui Niu, Kun Liang, Cheng Bian, Hong Li. Clinical Value and Role of miR-129-5p in Non-Alcoholic Fatty Liver
Disease. Hormone and Metabolic Research 2021; 53(10): 692 doi: 10.1055/a-1587-9211
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9 |
Lidia Daimiel. Handbook of Nutrition, Diet, and Epigenetics. 2019; : 331 doi: 10.1007/978-3-319-55530-0_52
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10 |
Jingzan Wei, Yanyan Zhao. MiR-185-5p Protects Against Angiogenesis in Polycystic Ovary Syndrome by Targeting VEGFA. Frontiers in Pharmacology 2020; 11 doi: 10.3389/fphar.2020.01030
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11 |
Guoyuan Sui, Lianqun Jia, Nan Song, Dongyu Min, Si Chen, Yao Wu, Guanlin Yang. Aberrant expression of HDL-bound microRNA induced by a high-fat diet in a pig model: implications in the pathogenesis of dyslipidaemia. BMC Cardiovascular Disorders 2021; 21(1) doi: 10.1186/s12872-021-02084-5
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12 |
Xin Tao, Ziwei Xu, Xiaoming Men, Yun Zheng. Analysis of Serum microRNA Expression Profiles and Comparison with Small Intestinal microRNA Expression Profiles in Weaned Piglets. PLOS ONE 2016; 11(9): e0162776 doi: 10.1371/journal.pone.0162776
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13 |
Meina Wang, Lulu Li, Rui Liu, Yuwei Song, Xinxin Zhang, Weijing Niu, Alagamuthu Karthick Kumar, Zhigang Guo, Zhigang Hu. Obesity-induced overexpression of miRNA-24 regulates cholesterol uptake and lipid metabolism by targeting SR-B1. Gene 2018; 668: 196 doi: 10.1016/j.gene.2018.05.072
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14 |
Víctor Micó, Laura Díez-Ricote, Lidia Daimiel. Nutrigenetics and Nutrimiromics of the Circadian System: The Time for Human Health. International Journal of Molecular Sciences 2016; 17(3): 299 doi: 10.3390/ijms17030299
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15 |
Masoumeh Khalifeh, Raul D. Santos, Reza Kazemi Oskuee, Ali Badiee, Seyed Hamid Aghaee-Bakhtiari, Amirhossein Sahebkar. A novel regulatory facet for hypertriglyceridemia: The role of microRNAs in the regulation of triglyceride-rich lipoprotein biosynthesis. Progress in Lipid Research 2023; 89: 101197 doi: 10.1016/j.plipres.2022.101197
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16 |
Xirui Ma, Huifang Liu, Jing Zhu, Caoxu Zhang, Yajie Peng, Ziming Mao, Yu Jing, Fengling Chen. miR-185-5p Regulates Inflammation and Phagocytosis through CDC42/JNK Pathway in Macrophages. Genes 2022; 13(3): 468 doi: 10.3390/genes13030468
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17 |
Safoora Pordel, Motahare Khorrami, Fatemeh Saadatpour, Delsuz Rezaee, William C. Cho, Saleheh Jahani, Seyed Mohsen Aghaei-Zarch, Elham Hashemi, Sajad Najafi. The role of microRNA-185 in the pathogenesis of human diseases: A focus on cancer. Pathology - Research and Practice 2023; 249: 154729 doi: 10.1016/j.prp.2023.154729
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18 |
Tanapa Suksangrat, Phatchariya Phannasil, Sarawut Jitrapakdee. Reviews on Biomarker Studies of Metabolic and Metabolism-Related Disorders. Advances in Experimental Medicine and Biology 2019; 1134: 129 doi: 10.1007/978-3-030-12668-1_7
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19 |
Hong Zhong, Ke Chen, Mengyang Feng, Wei Shao, Jun Wu, Kun Chen, Tingming Liang, Chang Liu. Genipin alleviates high‐fat diet‐induced hyperlipidemia and hepatic lipid accumulation in mice via miR‐142a‐5p/SREBP‐1c axis. The FEBS Journal 2018; 285(3): 501 doi: 10.1111/febs.14349
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20 |
Pablo Letelier, Ismael Riquelme, Alfonso Hernández, Neftalí Guzmán, Jorge Farías, Juan Roa. Circulating MicroRNAs as Biomarkers in Biliary Tract Cancers. International Journal of Molecular Sciences 2016; 17(5): 791 doi: 10.3390/ijms17050791
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21 |
Sobha Puppala, Cun Li, Jeremy P. Glenn, Romil Saxena, Samer Gawrieh, Amy Quinn, Jennifer Palarczyk, Edward J. Dick, Peter W. Nathanielsz, Laura A. Cox. Primate fetal hepatic responses to maternal obesity: epigenetic signalling pathways and lipid accumulation. The Journal of Physiology 2018; 596(23): 5823 doi: 10.1113/JP275422
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22 |
Cheng Chen, David Matye, Yifeng Wang, Tiangang Li. Liver-specific microRNA-185 knockout promotes cholesterol dysregulation in mice. Liver Research 2021; 5(4): 232 doi: 10.1016/j.livres.2020.09.001
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23 |
György Baffy. MicroRNAs in Nonalcoholic Fatty Liver Disease. Journal of Clinical Medicine 2015; 4(12): 1977 doi: 10.3390/jcm4121953
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24 |
Xiang Wang, Yunbing Meng, Junrong Zhang. Ezetimibe alleviates non-alcoholic fatty liver disease through the miR-16 inhibiting mTOR/p70S6K1 pathway. RSC Advances 2017; 7(60): 37967 doi: 10.1039/C7RA03949B
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25 |
Xize Wu, Changbin Yuan, Jiaxiang Pan, Yi Zhou, Xue Pan, Jian Kang, Lihong Ren, Lihong Gong, Yue Li. CXCL9, IL2RB, and SPP1, potential diagnostic biomarkers in the co-morbidity pattern of atherosclerosis and non-alcoholic steatohepatitis. Scientific Reports 2024; 14(1) doi: 10.1038/s41598-024-66287-4
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26 |
Jiyeon Lee, Inpyo Hong, Chanwoo Lee, Daehyun Kim, Sunghak Kim, Yoonseok Lee. SNPs in microRNA seed region and impact of miR-375 in concurrent regulation of multiple lipid accumulation-related genes. Scientific Reports 2024; 14(1) doi: 10.1038/s41598-024-61673-4
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27 |
Xinyue Liang, Shirong Zheng, Jiuwei Cui, Dehai Yu, Guozi Yang, Lei Zhou, Brain Wang, Lu Cai, Wei Li. Alterations of MicroRNA Expression in the Liver, Heart, and Testis of Mice Upon Exposure to Repeated Low-Dose Radiation. Dose-Response 2018; 16(3) doi: 10.1177/1559325818799561
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28 |
Yan Jin, Wei Liu, Xiaowei Liu, Tao Ma, Chen Yang, Quan Cai, Zhi Liu. Transplantation of endothelial progenitor cells attenuated paraquat-induced acute lung injury via miR-141-3p-Notch-Nrf2 axis. Cell & Bioscience 2018; 8(1) doi: 10.1186/s13578-018-0219-1
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29 |
Yang Xie, Yi Cao, Can-Jie Guo, Xing-Ya Guo, Ya-Fang He, Qing-Yang Xu, Feng Shen, Qin Pan. Profile analysis and functional modeling identify circular RNAs in nonalcoholic fatty liver disease as regulators of hepatic lipid metabolism. Frontiers in Genetics 2022; 13 doi: 10.3389/fgene.2022.884037
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30 |
G. Song, H. Vollbrecht. Translating MicroRNAs to the Clinic. 2017; : 93 doi: 10.1016/B978-0-12-800553-8.00005-6
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31 |
Li Zhou, Shunai Liu, Ming Han, Shenghu Feng, Jinqiu Liang, Zhongshu Li, Yaru Li, Hongping Lu, Ting Liu, Yanhua Ma, Jun Cheng. MicroRNA-185 induces potent autophagy via AKT signaling in hepatocellular carcinoma. Tumor Biology 2017; 39(2) doi: 10.1177/1010428317694313
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32 |
Lucia La Sala, Maurizio Crestani, Silvia Garavelli, Paola de Candia, Antonio E. Pontiroli. Does microRNA Perturbation Control the Mechanisms Linking Obesity and Diabetes? Implications for Cardiovascular Risk. International Journal of Molecular Sciences 2020; 22(1): 143 doi: 10.3390/ijms22010143
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33 |
Roxana Filip, Geneviève F. Desrochers, David M. Lefebvre, Alex Reed, Ragunath Singaravelu, Benjamin F. Cravatt, John Paul Pezacki. Profiling of MicroRNA Targets Using Activity-Based Protein Profiling: Linking Enzyme Activity to MicroRNA-185 Function. Cell Chemical Biology 2021; 28(2): 202 doi: 10.1016/j.chembiol.2020.12.009
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34 |
Alisa Petkevich, Aleksandr Abramov, Vadim Pospelov. Liver Cancer - Genesis, Progression and Metastasis. 2023; doi: 10.5772/intechopen.106171
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35 |
Xiang Wang. Down‐regulation of lncRNA‐NEAT1 alleviated the non‐alcoholic fatty liver disease via mTOR/S6K1 signaling pathway. Journal of Cellular Biochemistry 2018; 119(2): 1567 doi: 10.1002/jcb.26317
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36 |
Mehdi Zobeiri, Fatemeh Parvizi, Mohammad Reza Kalhori, Mohammad Bagher Majnooni, Mohammad Hosein Farzaei, Mohammad Abdollahi, Mozaniel Oliveira. Targeting miRNA by Natural Products: A Novel Therapeutic Approach for Nonalcoholic Fatty Liver. Evidence-Based Complementary and Alternative Medicine 2021; 2021: 1 doi: 10.1155/2021/6641031
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37 |
Mauro Robson Torres de Castro, Ana Paula de Oliveira Ferreira, Guilherme Lago Busanello, Luís Roberto Hart da Silva, Mauro Eduardo Porto da Silveira Junior, Fernando da Silva Fiorin, Gabriela Arrifano, Maria Elena Crespo‐López, Rômulo Pillon Barcelos, María J. Cuevas, Guilherme Bresciani, Javier González‐Gallego, Michele Rechia Fighera, Luiz Fernando Freire Royes. Previous physical exercise alters the hepatic profile of oxidative‐inflammatory status and limits the secondary brain damage induced by severe traumatic brain injury in rats. The Journal of Physiology 2017; 595(17): 6023 doi: 10.1113/JP273933
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38 |
Yuanxin Miao, Chuanke Fu, Mingxing Liao, Fang Fang. Differences in liver microRNA profiling in pigs with low and high
feed efficiency. Journal of Animal Science and Technology 2022; 64(2): 312 doi: 10.5187/jast.2022.e4
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39 |
Wei Liu, Hongchao Cao, Jun Yan, Ruimin Huang, Hao Ying. ‘Micro‐managers’ of hepatic lipid metabolism and NAFLD. WIREs RNA 2015; 6(5): 581 doi: 10.1002/wrna.1295
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40 |
Petra Matoušková, Barbora Hanousková, Lenka Skálová. MicroRNAs as Potential Regulators of Glutathione Peroxidases Expression and Their Role in Obesity and Related Pathologies. International Journal of Molecular Sciences 2018; 19(4): 1199 doi: 10.3390/ijms19041199
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41 |
Jin Zhang, Xuelei Wang, Huajun Jiang, Fan Yang, Yu Du, Li Wang, Bin Hong. MicroRNA-185 modulates CYP7A1 mediated cholesterol-bile acid metabolism through post-transcriptional and post-translational regulation of FoxO1. Atherosclerosis 2022; 348: 56 doi: 10.1016/j.atherosclerosis.2022.03.007
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42 |
Paul Holvoet. Non-coding RNAs at the Cross-Road of Cardiometabolic Diseases and Cancer. 2021; : 73 doi: 10.1007/978-3-030-68844-8_4
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43 |
Tridip Mitra, Richa Gulati, Krithika Ramachandran, Rohan Rajiv, Elizabeth Ann L. Enninga, Chris K Pierret, Sajeetha Kumari R, Rajiv Janardhanan. Endocrine disrupting chemicals: gestational diabetes and beyond. Diabetology & Metabolic Syndrome 2024; 16(1) doi: 10.1186/s13098-024-01317-9
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44 |
Gemma Carreras-Badosa, Alexandra Bonmatí, Francisco-Jose Ortega, Josep-Maria Mercader, Marta Guindo-Martínez, David Torrents, Anna Prats-Puig, Jose-Maria Martinez-Calcerrada, Francis de Zegher, Lourdes Ibáñez, Jose-Manuel Fernandez-Real, Abel Lopez-Bermejo, Judit Bassols. Dysregulation of Placental miRNA in Maternal Obesity Is Associated With Pre- and Postnatal Growth. The Journal of Clinical Endocrinology & Metabolism 2017; 102(7): 2584 doi: 10.1210/jc.2017-00089
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45 |
Palihaderu Arachchige Dineth Supasan Palihaderu, Balapuwaduge Isuru Layan Madusanka Mendis, Jayasekara Mudiyanselage Krishanthi Jayarukshi Kumari Premarathne, Wajjakkara Kankanamlage Ruwin Rangeeth Dias, Swee Keong Yeap, Wan Yong Ho, Arosha Sampath Dissanayake, Iyanthimala Harshini Rajapakse, Panduka Karunanayake, Upul Senarath, Dilan Amila Satharasinghe. Potential role of microRNAs in selective hepatic insulin resistance: From paradox to the paradigm. Frontiers in Endocrinology 2022; 13 doi: 10.3389/fendo.2022.1028846
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46 |
Kaiyan Xiao, Xusong Luo, Xiuxia Wang, Zhen Gao. MicroRNA-185 regulates transforming growth factor-β1 and collagen-1 in hypertrophic scar fibroblasts. Molecular Medicine Reports 2017; 15(4): 1489 doi: 10.3892/mmr.2017.6179
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47 |
Sanjukta Mishra, RajLaxmi Sarangi, Swarnalata Das, Amresh Mishra. Nonalcoholic Fatty Liver Disease and MicroRNAs. Biomedical and Biotechnology Research Journal (BBRJ) 2023; 7(1): 1 doi: 10.4103/bbrj.bbrj_319_22
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48 |
Sujay Paul, Luis Alberto Bravo Vázquez, Samantha Pérez Uribe, Luis Aarón Manzanero Cárdenas, María Fernanda Ruíz Aguilar, Samik Chakraborty, Ashutosh Sharma. Roles of microRNAs in carbohydrate and lipid metabolism disorders and their therapeutic potential. Biochimie 2021; 187: 83 doi: 10.1016/j.biochi.2021.05.015
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