MicroRNA (German Wikipedia)

Analysis of information sources in references of the Wikipedia article "MicroRNA" in German language version.

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doi.org (Global: 2nd place; German: 3rd place)

  • Qiuying Yang, Liande Li, Zhihong Xue, Qiaohong Ye, Lin Zhang, Shaojie Li, Yi Liu: Transcription of the Major Neurospora crassa microRNA–Like Small RNAs Relies on RNA Polymerase III. In: PLoS Genetics. Band 9, Nr. 1, 17. Januar 2013, doi:10.1371/journal.pgen.1003227, PMID 23349642, PMC 3547838 (freier Volltext).
  • Gracjan Michlewski, Javier F. Cáceres: Post-transcriptional control of miRNA biogenesis. In: RNA. Band 25, Nr. 1, Januar 2019, S. 1–16, doi:10.1261/rna.068692.118, PMID 30333195, PMC 6298569 (freier Volltext).
  • Ke Wu, Juan He, Wenchen Pu, Yong Peng: The Role of Exportin-5 in MicroRNA Biogenesis and Cancer. In: Genomics, Proteomics & Bioinformatics. Band 16, Nr. 2, April 2018, S. 120–126, doi:10.1016/j.gpb.2017.09.004, PMID 29723684, PMC 6112314 (freier Volltext).
  • Gunter Meister: Argonaute proteins: functional insights and emerging roles. In: Nature Reviews Genetics. Band 14, Nr. 7, Juli 2013, doi:10.1038/nrg3462.
  • Ashley Mohr, Justin Mott: Overview of MicroRNA Biology. In: Seminars in Liver Disease. Band 35, Nr. 01, 29. Januar 2015, S. 003–011, doi:10.1055/s-0034-1397344, PMID 25632930, PMC 4797991 (freier Volltext).
  • Hiroshi I Suzuki, Akihiro Katsura, Takahiko Yasuda, Toshihide Ueno, Hiroyuki Mano, Koichi Sugimoto, Kohei Miyazono: Small-RNA asymmetry is directly driven by mammalian Argonautes. In: Nature Structural & Molecular Biology. Band 22, Nr. 7, Juli 2015, S. 512–521, doi:10.1038/nsmb.3050.
  • Kumiko Ui-Tei, Kenji Nishi, Tomoko Takahashi, Tatsuya Nagasawa: Thermodynamic Control of Small RNA-Mediated Gene Silencing. In: Frontiers in Genetics. Band 3, 2012, doi:10.3389/fgene.2012.00101, PMID 22675333, PMC 3366367 (freier Volltext).
  • V. Narry Kim, Jin-Wu Nam: Genomics of microRNA. In: Trends in Genetics. Band 22, Nr. 3, März 2006, S. 165–173, doi:10.1016/j.tig.2006.01.003.
  • Isidore Rigoutsos: New Tricks for Animal MicroRNAs: Targeting of Amino Acid Coding Regions at Conserved and Nonconserved Sites. In: Cancer Research. Band 69, Nr. 8, 15. April 2009, S. 3245–3248, doi:10.1158/0008-5472.CAN-09-0352.
  • Ariel A. Bazzini, Miler T. Lee, Antonio J. Giraldez: Ribosome Profiling Shows That miR-430 Reduces Translation Before Causing mRNA Decay in Zebrafish. In: Science. Band 336, Nr. 6078, 13. April 2012, S. 233–237, doi:10.1126/science.1215704, PMID 22422859, PMC 3547538 (freier Volltext).
  • Julien Béthune, Caroline G Artus‐Revel, Witold Filipowicz: Kinetic analysis reveals successive steps leading to miRNA‐mediated silencing in mammalian cells. In: EMBO reports. Band 13, Nr. 8, August 2012, S. 716–723, doi:10.1038/embor.2012.82, PMID 22677978, PMC 3410385 (freier Volltext).
  • Stephen W. Eichhorn, Huili Guo, Sean E. McGeary, Ricard A. Rodriguez-Mias, Chanseok Shin, Daehyun Baek, Shu-hao Hsu, Kalpana Ghoshal, Judit Villén, David P. Bartel: mRNA Destabilization Is the Dominant Effect of Mammalian MicroRNAs by the Time Substantial Repression Ensues. In: Molecular Cell. Band 56, Nr. 1, Oktober 2014, S. 104–115, doi:10.1016/j.molcel.2014.08.028, PMID 25263593, PMC 4292926 (freier Volltext).
  • Hiro-oki Iwakawa, Yukihide Tomari: Life of RISC: Formation, action, and degradation of RNA-induced silencing complex. In: Molecular Cell. Band 82, Nr. 1, Januar 2022, S. 30–43, doi:10.1016/j.molcel.2021.11.026.
  • Chao Fang, Haishen Xie, Jun Zhao, Weichen Wang, Hui Hou, Bin Zhang, Dachen Zhou, Xiaoping Geng: eIF4E-eIF4G complex inhibition synergistically enhances the effect of sorafenib in hepatocellular carcinoma. In: Anti-Cancer Drugs. Band 32, Nr. 8, September 2021, S. 822–828, doi:10.1097/CAD.0000000000001074, PMID 33783376, PMC 8366763 (freier Volltext).
  • Daehyun Baek, Judit Villén, Chanseok Shin, Fernando D. Camargo, Steven P. Gygi, David P. Bartel: The impact of microRNAs on protein output. In: Nature. Band 455, Nr. 7209, September 2008, S. 64–71, doi:10.1038/nature07242, PMID 18668037, PMC 2745094 (freier Volltext).
  • Matthias Selbach, Björn Schwanhäusser, Nadine Thierfelder, Zhuo Fang, Raya Khanin, Nikolaus Rajewsky: Widespread changes in protein synthesis induced by microRNAs. In: Nature. Band 455, Nr. 7209, September 2008, S. 58–63, doi:10.1038/nature07228.
  • Huili Guo, Nicholas T. Ingolia, Jonathan S. Weissman, David P. Bartel: Mammalian microRNAs predominantly act to decrease target mRNA levels. In: Nature. Band 466, Nr. 7308, August 2010, S. 835–840, doi:10.1038/nature09267, PMID 20703300, PMC 2990499 (freier Volltext).
  • J. E. Braun, E. Huntzinger, E. Izaurralde: A Molecular Link between miRISCs and Deadenylases Provides New Insight into the Mechanism of Gene Silencing by MicroRNAs. In: Cold Spring Harbor Perspectives in Biology. Band 4, Nr. 12, 1. Dezember 2012, doi:10.1101/cshperspect.a012328, PMID 23209154, PMC 3504443 (freier Volltext).
  • Victor Ambros: The evolution of our thinking about microRNAs. In: Nature Medicine. Band 14, Nr. 10, Oktober 2008, S. 1036–1040, doi:10.1038/nm1008-1036.
  • Richard W. Carthew, Erik J. Sontheimer: Origins and Mechanisms of miRNAs and siRNAs. In: Cell. Band 136, Nr. 4, Februar 2009, S. 642–655, doi:10.1016/j.cell.2009.01.035, PMID 19239886, PMC 2675692 (freier Volltext).
  • Ines Alvarez-Garcia, Eric A. Miska: MicroRNA functions in animal development and human disease. In: Development. Band 132, Nr. 21, 1. November 2005, S. 4653–4662, doi:10.1242/dev.02073.
  • Shobha Vasudevan, Yingchun Tong, Joan A. Steitz: Switching from Repression to Activation: MicroRNAs Can Up-Regulate Translation. In: Science. Band 318, Nr. 5858, 21. Dezember 2007, S. 1931–1934, doi:10.1126/science.1149460.
  • Faezeh Jame-Chenarboo, Hoi Hei Ng, Dawn Macdonald, Lara K. Mahal: High-Throughput Analysis Reveals miRNA Upregulating α-2,6-Sialic Acid through Direct miRNA–mRNA Interactions. In: ACS Central Science. Band 8, Nr. 11, 23. November 2022, S. 1527–1536, doi:10.1021/acscentsci.2c00748, PMID 36439307, PMC 9686205 (freier Volltext).
  • Shobha Vasudevan: Posttranscriptional Upregulation by MicroRNAs: Posttranscriptional Upregulation by MicroRNAs. In: Wiley Interdisciplinary Reviews: RNA. Band 3, Nr. 3, Mai 2012, S. 311–330, doi:10.1002/wrna.121.
  • S. S. Truesdell, R. D. Mortensen, M. Seo, J. C. Schroeder, J. H. Lee, O. LeTonqueze, S. Vasudevan: MicroRNA-mediated mRNA Translation Activation in Quiescent Cells and Oocytes Involves Recruitment of a Nuclear microRNP. In: Scientific Reports. Band 2, Nr. 1, 13. November 2012, doi:10.1038/srep00842, PMID 23150790, PMC 3496365 (freier Volltext).
  • Yongjun Chu, Audrius Kilikevicius, Jing Liu, Krystal C Johnson, Shinnichi Yokota, David R Corey: Argonaute binding within 3′-untranslated regions poorly predicts gene repression. In: Nucleic Acids Research. 5. Juni 2020, doi:10.1093/nar/gkaa478, PMID 32501500, PMC 7367155 (freier Volltext).
  • Henshall DC, Hamer HM, Pasterkamp RJ, Goldstein DB, Kjems J, Prehn JHM, Schorge S, Lamottke K, Rosenow F: MicroRNAs in Epilepsy: Pathophysiology and Clinical Utility. In: The Lancet Neurology. Band 15, Nr. 13, Dezember 2016, S. 1368–1376, doi:10.1016/S1474-4422(16)30246-0, PMID 27839653 (englisch).
  • Rafael Blanco-Domínguez, Raquel Sánchez-Díaz, Hortensia de la Fuente et al.: A Novel Circulating MicroRNA for the Detection of Acute Myocarditis. In: New England Journal of Medicine. Band 384, 27. Mai 2021, S. 20142027, doi:10.1056/NEJMoa2003608.
  • O. Dohi, K. Yasui, Y. Gen, H. Takada, M. Endo, K. Tsuji, C. Konishi, N. Yamada, H. Mitsuyoshi, N. Yagi, Y. Naito, S. Tanaka, S. Arii, T. Yoshikawa: Epigenetic silencing of miR-335 and its host gene MEST in hepatocellular carcinoma. In: International Journal of Oncology. Band 42, Nr. 2, Feb 2013, S. 411–418. doi:10.3892/ijo.2012.1724.
  • L. Shi, D. Jiang, G. Sun, Y. Wan, S. Zhang, Y. Zeng, T. Pan, Z. Wang: miR-335 promotes cell proliferation by directly targeting Rb1 in meningiomas. In: J Neurooncol. Band 110, Nr. 2, Nov 2012, S. 155–162. doi:10.1007/s11060-012-0951-z.
  • Jennifer A. Chan, Anna M. Krichevsky, Kenneth S. Kosik: MicroRNA-21 Is an Antiapoptotic Factor in Human Glioblastoma Cells. In: Cancer Research. Band 65, Nr. 14, 15. Juli 2005, S. 6029–6033, doi:10.1158/0008-5472.CAN-05-0137.
  • Anna M. Krichevsky, Galina Gabriely: miR-21: a small multi-faceted RNA. In: Journal of Cellular and Molecular Medicine. Band 13, Nr. 1, 16. Oktober 2008, S. 39–53, doi:10.1111/j.1582-4934.2008.00556.x, PMID 19175699, PMC 3823035 (freier Volltext).
  • Zhi-Li Liu, He Wang, Jing Liu, Zhao-Xia Wang: MicroRNA-21 (miR-21) expression promotes growth, metastasis, and chemo- or radioresistance in non-small cell lung cancer cells by targeting PTEN. In: Molecular and Cellular Biochemistry. Band 372, Nr. 1–2, Januar 2013, S. 35–45, doi:10.1007/s11010-012-1443-3.
  • Matthew V. Puccetti, Clare M. Adams, Tu D. Dan, Ajay Palagani, Brittany A. Simone: MicroRNA-21 is Required for Hematopoietic Cell Viability After Radiation Exposure. In: International Journal of Radiation Oncology*Biology*Physics. Band 104, Nr. 5, August 2019, S. 1165–1174, doi:10.1016/j.ijrobp.2019.04.020, PMID 31039423, PMC 6986889 (freier Volltext).
  • Nadine Haetscher, Yonatan Feuermann, Susanne Wingert, Maike Rehage, Frederic B Thalheimer: STAT5-regulated microRNA-193b controls haematopoietic stem and progenitor cell expansion by modulating cytokine receptor signalling. In: Nature Communications. Band 6, 25. November 2015, S. 8928, doi:10.1038/ncomms9928, PMID 26603207, PMC 4674773 (freier Volltext).
  • Raj Bhayadia, Kathrin Krowiorz, Nadine Haetscher, Razan Jammal, Stephan Emmrich: Endogenous Tumor Suppressor microRNA-193b: Therapeutic and Prognostic Value in Acute Myeloid Leukemia. In: Journal of Clinical Oncology. Band 36, Nr. 10, 2018, S. 1007–1016, doi:10.1200/JCO.2017.75.2204.
  • R. Yin, S. Zhang, Y. Wu, X. Fan, F. Jiang, Z. Zhang, D. Feng, X. Guo, L. Xu: microRNA-145 suppresses lung adenocarcinoma-initiating cell proliferation by targeting OCT4. In: Oncol Rep. Band 25, Nr. 6, Jun 2011, S. 1747–1754. doi:10.3892/or.2011.1252. Epub 2011 Apr 7
  • J. Ren, P. Jin, E. Wang, F. M. Marincola, D. F. Stroncek: MicroRNA and gene expression patterns in the differentiation of human embryonic stem cells. In: J Transl Med. Band 7, 23. Mar 2009, S. 20. doi:10.1186/1479-5876-7-20.
  • D. A. Card, P. B. Hebbar, L. Li, K. W. Trotter, Y. Komatsu, Y. Mishina, T. K. Archer: Oct4/Sox2-regulated miR-302 targets cyclin D1 in human embryonic stem cells. In: Mol Cell Biol. Band 28, Nr. 20, Oct 2008, S. 6426–6438. doi:10.1128/MCB.00359-08. Epub 2008 Aug 18
  • Lili Zhou, Caitlyn Miller, Loren J. Miraglia, Angelica Romero, Ludovic S. Mure, Satchidananda Panda, Steve A. Kay: A genome-wide microRNA screen identifies the microRNA-183/96/182 cluster as a modulator of circadian rhythms. In: Proc Natl Acad Sci. Band 118, Nr. 1, 5. Januar 2021, S. e2020454118, doi:10.1073/pnas.2020454118: „In this phenotype-driven study, we started from a genome-wide cell-based functional screen and identified miRNAs that modulate circadian rhythms. The majority of the hits lengthened the period, but a very small number of hits were found to shorten the period.“

mirbase.org (Global: low place; German: low place)

nature.com (Global: 207th place; German: 227th place)

nih.gov (Global: 5th place; German: 7th place)

ncbi.nlm.nih.gov

  • L. He, G. J. Hannon: MicroRNAs: small RNAs with a big role in gene regulation. In: Nat. Rev. Genet. Band 5, Nr. 7, 2004, S. 522–531. PMID 15211354
  • R. Lee, R. L. Feinbaum, V. Ambros: The C. elegans heterochronic gene lin-4 encodes small RNAs with antisense complementarity to lin-14. In: Cell. Band 75, Nr. 5, 1993, S. 843–854. PMID 8252621
  • G. Ruvkun: Molecular biology. Glimpses of a tiny RNA world. In: Science. Band 294, Nr. 5543, 2001, S. 797–799. PMID 11679654
  • R. Lee u. a.: A short history of a short RNA. In: Cell. Band 116, Supplement 2, 2004, S. 89–92. PMID 15055592
  • B. J. Reinhart u. a.: The 21-nucleotide let-7 RNA regulates developmental timing in Caenorhabditis elegans. Nature, 403(6772), 2000, S. 901–906. PMID 10706289
  • E. Wienholds, R.H. Plasterk: MicroRNA function in animal development. In: FEBS Lett. Band 579, Nr. 26, 2005, S. 5911–5922. PMID 16111679
  • B. P. Lewis u. a.: Conserved seed pairing, often flanked by adenosines, indicates that thousands of human genes are microRNA targets. In: Cell. Band 120, Nr. 1, 2005, S. 15–20. PMID 15652477
  • X. Xie u. a.: Systematic discovery of regulatory motifs in human promoters and 3’ UTRs by comparison of several mammals. In: Nature. Band 434, Nr. 7031, 2005, S. 338–345. PMID 15735639
  • Qiuying Yang, Liande Li, Zhihong Xue, Qiaohong Ye, Lin Zhang, Shaojie Li, Yi Liu: Transcription of the Major Neurospora crassa microRNA–Like Small RNAs Relies on RNA Polymerase III. In: PLoS Genetics. Band 9, Nr. 1, 17. Januar 2013, doi:10.1371/journal.pgen.1003227, PMID 23349642, PMC 3547838 (freier Volltext).
  • Gracjan Michlewski, Javier F. Cáceres: Post-transcriptional control of miRNA biogenesis. In: RNA. Band 25, Nr. 1, Januar 2019, S. 1–16, doi:10.1261/rna.068692.118, PMID 30333195, PMC 6298569 (freier Volltext).
  • Ke Wu, Juan He, Wenchen Pu, Yong Peng: The Role of Exportin-5 in MicroRNA Biogenesis and Cancer. In: Genomics, Proteomics & Bioinformatics. Band 16, Nr. 2, April 2018, S. 120–126, doi:10.1016/j.gpb.2017.09.004, PMID 29723684, PMC 6112314 (freier Volltext).
  • Ashley Mohr, Justin Mott: Overview of MicroRNA Biology. In: Seminars in Liver Disease. Band 35, Nr. 01, 29. Januar 2015, S. 003–011, doi:10.1055/s-0034-1397344, PMID 25632930, PMC 4797991 (freier Volltext).
  • Kumiko Ui-Tei, Kenji Nishi, Tomoko Takahashi, Tatsuya Nagasawa: Thermodynamic Control of Small RNA-Mediated Gene Silencing. In: Frontiers in Genetics. Band 3, 2012, doi:10.3389/fgene.2012.00101, PMID 22675333, PMC 3366367 (freier Volltext).
  • K. Okamura, E. C. Lai: Endogenous small interfering RNAs in animals. In: Nat. Rev. Mol. Cell. Biol. Band 9, Nr. 9, 2008, S. 673–678. PMID 18719707
  • Ariel A. Bazzini, Miler T. Lee, Antonio J. Giraldez: Ribosome Profiling Shows That miR-430 Reduces Translation Before Causing mRNA Decay in Zebrafish. In: Science. Band 336, Nr. 6078, 13. April 2012, S. 233–237, doi:10.1126/science.1215704, PMID 22422859, PMC 3547538 (freier Volltext).
  • Julien Béthune, Caroline G Artus‐Revel, Witold Filipowicz: Kinetic analysis reveals successive steps leading to miRNA‐mediated silencing in mammalian cells. In: EMBO reports. Band 13, Nr. 8, August 2012, S. 716–723, doi:10.1038/embor.2012.82, PMID 22677978, PMC 3410385 (freier Volltext).
  • Stephen W. Eichhorn, Huili Guo, Sean E. McGeary, Ricard A. Rodriguez-Mias, Chanseok Shin, Daehyun Baek, Shu-hao Hsu, Kalpana Ghoshal, Judit Villén, David P. Bartel: mRNA Destabilization Is the Dominant Effect of Mammalian MicroRNAs by the Time Substantial Repression Ensues. In: Molecular Cell. Band 56, Nr. 1, Oktober 2014, S. 104–115, doi:10.1016/j.molcel.2014.08.028, PMID 25263593, PMC 4292926 (freier Volltext).
  • Chao Fang, Haishen Xie, Jun Zhao, Weichen Wang, Hui Hou, Bin Zhang, Dachen Zhou, Xiaoping Geng: eIF4E-eIF4G complex inhibition synergistically enhances the effect of sorafenib in hepatocellular carcinoma. In: Anti-Cancer Drugs. Band 32, Nr. 8, September 2021, S. 822–828, doi:10.1097/CAD.0000000000001074, PMID 33783376, PMC 8366763 (freier Volltext).
  • Daehyun Baek, Judit Villén, Chanseok Shin, Fernando D. Camargo, Steven P. Gygi, David P. Bartel: The impact of microRNAs on protein output. In: Nature. Band 455, Nr. 7209, September 2008, S. 64–71, doi:10.1038/nature07242, PMID 18668037, PMC 2745094 (freier Volltext).
  • Huili Guo, Nicholas T. Ingolia, Jonathan S. Weissman, David P. Bartel: Mammalian microRNAs predominantly act to decrease target mRNA levels. In: Nature. Band 466, Nr. 7308, August 2010, S. 835–840, doi:10.1038/nature09267, PMID 20703300, PMC 2990499 (freier Volltext).
  • J. E. Braun, E. Huntzinger, E. Izaurralde: A Molecular Link between miRISCs and Deadenylases Provides New Insight into the Mechanism of Gene Silencing by MicroRNAs. In: Cold Spring Harbor Perspectives in Biology. Band 4, Nr. 12, 1. Dezember 2012, doi:10.1101/cshperspect.a012328, PMID 23209154, PMC 3504443 (freier Volltext).
  • Richard W. Carthew, Erik J. Sontheimer: Origins and Mechanisms of miRNAs and siRNAs. In: Cell. Band 136, Nr. 4, Februar 2009, S. 642–655, doi:10.1016/j.cell.2009.01.035, PMID 19239886, PMC 2675692 (freier Volltext).
  • D.P. Bartel: MicroRNAs: genomics, biogenesis, mechanism, and function. In: Cell. Band 116, 2004, S. 281–297. PMID 14744438
  • Faezeh Jame-Chenarboo, Hoi Hei Ng, Dawn Macdonald, Lara K. Mahal: High-Throughput Analysis Reveals miRNA Upregulating α-2,6-Sialic Acid through Direct miRNA–mRNA Interactions. In: ACS Central Science. Band 8, Nr. 11, 23. November 2022, S. 1527–1536, doi:10.1021/acscentsci.2c00748, PMID 36439307, PMC 9686205 (freier Volltext).
  • S. S. Truesdell, R. D. Mortensen, M. Seo, J. C. Schroeder, J. H. Lee, O. LeTonqueze, S. Vasudevan: MicroRNA-mediated mRNA Translation Activation in Quiescent Cells and Oocytes Involves Recruitment of a Nuclear microRNP. In: Scientific Reports. Band 2, Nr. 1, 13. November 2012, doi:10.1038/srep00842, PMID 23150790, PMC 3496365 (freier Volltext).
  • Yongjun Chu, Audrius Kilikevicius, Jing Liu, Krystal C Johnson, Shinnichi Yokota, David R Corey: Argonaute binding within 3′-untranslated regions poorly predicts gene repression. In: Nucleic Acids Research. 5. Juni 2020, doi:10.1093/nar/gkaa478, PMID 32501500, PMC 7367155 (freier Volltext).
  • Henshall DC, Hamer HM, Pasterkamp RJ, Goldstein DB, Kjems J, Prehn JHM, Schorge S, Lamottke K, Rosenow F: MicroRNAs in Epilepsy: Pathophysiology and Clinical Utility. In: The Lancet Neurology. Band 15, Nr. 13, Dezember 2016, S. 1368–1376, doi:10.1016/S1474-4422(16)30246-0, PMID 27839653 (englisch).
  • Anna M. Krichevsky, Galina Gabriely: miR-21: a small multi-faceted RNA. In: Journal of Cellular and Molecular Medicine. Band 13, Nr. 1, 16. Oktober 2008, S. 39–53, doi:10.1111/j.1582-4934.2008.00556.x, PMID 19175699, PMC 3823035 (freier Volltext).
  • Matthew V. Puccetti, Clare M. Adams, Tu D. Dan, Ajay Palagani, Brittany A. Simone: MicroRNA-21 is Required for Hematopoietic Cell Viability After Radiation Exposure. In: International Journal of Radiation Oncology*Biology*Physics. Band 104, Nr. 5, August 2019, S. 1165–1174, doi:10.1016/j.ijrobp.2019.04.020, PMID 31039423, PMC 6986889 (freier Volltext).
  • Nadine Haetscher, Yonatan Feuermann, Susanne Wingert, Maike Rehage, Frederic B Thalheimer: STAT5-regulated microRNA-193b controls haematopoietic stem and progenitor cell expansion by modulating cytokine receptor signalling. In: Nature Communications. Band 6, 25. November 2015, S. 8928, doi:10.1038/ncomms9928, PMID 26603207, PMC 4674773 (freier Volltext).

quantamagazine.org (Global: 6,258th place; German: 5,163rd place)

spektrum.de (Global: 2,649th place; German: 164th place)

web.archive.org (Global: 1st place; German: 1st place)