| miRNA | gene name | experiments | ||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| mmu-miR-16-5p | Wnt3a |
|
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| mmu-miR-16-5p | Ccnd1 |
|
||||||||||||
| mmu-miR-16-5p | Bcl2 |
|
||||||||||||
| mmu-miR-16-5p | Arl2 |
|
||||||||||||
| mmu-miR-16-5p | Cadm1 |
|
||||||||||||
| mmu-miR-16-5p | App |
|
||||||||||||
| mmu-miR-16-5p | Mdm4 |
|
||||||||||||
| mmu-miR-16-5p | Jun |
|
||||||||||||
| mmu-miR-16-5p | Jag1 |
|
||||||||||||
| mmu-miR-16-5p | Slc6a4 |
|
||||||||||||
| mmu-miR-16-5p | Ccne1 |
|
||||||||||||
| mmu-miR-16-5p | Bcl2l2 |
|
||||||||||||
| mmu-miR-16-5p | Cd40 |
|
||||||||||||
| mmu-miR-16-5p | Fgf2 |
|
||||||||||||
| mmu-miR-16-5p | Rnf168 |
|
||||||||||||
| mmu-miR-16-5p | Irgq |
|
||||||||||||
| mmu-miR-16-5p | Dhdh |
|
||||||||||||
| mmu-miR-16-5p | Erlin2 |
|
||||||||||||
| mmu-miR-16-5p | Creb5 |
|
||||||||||||
| mmu-miR-16-5p | Klc1 |
|
||||||||||||
| mmu-miR-16-5p | Ddx19b |
|
||||||||||||
| mmu-miR-16-5p | Sorcs2 |
|
||||||||||||
| mmu-miR-16-5p | Mapkap1 |
|
||||||||||||
| mmu-miR-16-5p | Armcx6 |
|
||||||||||||
| mmu-miR-16-5p | Angel1 |
|
||||||||||||
| mmu-miR-16-5p | Pomk |
|
||||||||||||
| mmu-miR-16-5p | Tacc1 |
|
||||||||||||
| mmu-miR-16-5p | Spsb4 |
|
||||||||||||
| mmu-miR-16-5p | Itgav |
|
||||||||||||
| mmu-miR-16-5p | Fbxo21 |
|
||||||||||||
| mmu-miR-16-5p | Bicd1 |
|
||||||||||||
| mmu-miR-16-5p | Pacsin2 |
|
||||||||||||
| mmu-miR-16-5p | Ncl |
|
||||||||||||
| mmu-miR-16-5p | Idua |
|
||||||||||||
| mmu-miR-16-5p | Fgd4 |
|
||||||||||||
| mmu-miR-16-5p | Trim2 |
|
||||||||||||
| mmu-miR-16-5p | Tifab |
|
||||||||||||
| mmu-miR-16-5p | Bri3bp |
|
||||||||||||
| mmu-miR-16-5p | Bcl11b |
|
||||||||||||
| mmu-miR-16-5p | Lpcat2b |
|
| authors | journal | year | Pubmed link | title | |
|---|---|---|---|---|---|
| 1 | Bonci et al. | Nat. Med. | 2008 | 18931683 | The miR-15a-miR-16-1 cluster controls prostate cancer by targeting multiple oncogenic activities. |
| 2 | Salerno et al. | Mol. Cancer Ther. | 2009 | 19723889 | Correcting miR-15a/16 genetic defect in New Zealand Black mouse model of CLL enhances drug sensitivity. |
| 3 | Rouse et al. | J. Pharmacol. Exp. Ther. | 2014 | 24898268 | 3,3'-diindolylmethane ameliorates experimental autoimmune encephalomyelitis by promoting cell cycle arrest and apoptosis in activated T cells through microRNA signaling pathways. |
| 4 | Nishi et al. | J. Biol. Chem. | 2010 | 20007690 | MicroRNA-15b modulates cellular ATP levels and degenerates mitochondria via Arl2 in neonatal rat cardiac myocytes. |
| 5 | Calin et al. | Proc. Natl. Acad. Sci. U.S.A. | 2008 | 18362358 | MiR-15a and miR-16-1 cluster functions in human leukemia. |
| 6 | Liu et al. | Neurobiol. Aging | 2012 | 20619502 | MicroRNA-16 targets amyloid precursor protein to potentially modulate Alzheimer's-associated pathogenesis in SAMP8 mice. |
| 7 | Gatt et al. | Blood | 2010 | 20962322 | MicroRNAs 15a/16-1 function as tumor suppressor genes in multiple myeloma. |
| 8 | Baudry et al. | Science | 2010 | 20847275 | miR-16 targets the serotonin transporter: a new facet for adaptive responses to antidepressants. |
| 9 | Rivas et al. | Breast Cancer Res. | 2012 | 22583478 | Downregulation of the tumor-suppressor miR-16 via progestin-mediated oncogenic signaling contributes to breast cancer development. |
| 10 | Yu et al. | Int. J. Biochem. Cell Biol. | 2013 | 24070634 | Enhanced mesenchymal stem cell survival induced by GATA-4 overexpression is partially mediated by regulation of the miR-15 family. |
| 11 | Cuevas et al. | Arch. Biochem. Biophys. | 2014 | 24792245 | Identification of microRNAs involved in the modulation of pro-angiogenic factors in atherosclerosis by a polyphenol-rich extract from propolis. |
| 12 | Zhang et al. | Cell | 2014 | 25083871 | MicroRNA directly enhances mitochondrial translation during muscle differentiation. |
| 13 | Loeb et al. | Mol. Cell | 2012 | 23142080 | Transcriptome-wide miR-155 binding map reveals widespread noncanonical microRNA targeting. |
| 14 | Schug et al. | BMC Genomics | 2013 | 23597149 | Dynamic recruitment of microRNAs to their mRNA targets in the regenerating liver. |
| 15 | Leung et al. | Nat. Struct. Mol. Biol. | 2011 | 21258322 | Genome-wide identification of Ago2 binding sites from mouse embryonic stem cells with and without mature microRNAs. |
| 16 | Chi et al. | Nature | 2009 | 19536157 | Argonaute HITS-CLIP decodes microRNA-mRNA interaction maps. |