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ZFIN ID:
ZDB-MIRNAG-090929-142
CITATIONS
(16 total)
miRNA Gene Name:
microRNA 133c
miRNA Gene Symbol:
mir133c
Desvignes, T., Bardou, P., Montfort, J., Sydes, J., Guyomar, C., George, S., Postlethwait, J.H., Bobe, J. (2022) FishmiRNA: An evolutionarily supported microRNA annotation and expression database for ray-finned fishes. Molecular Biology and Evolution. 39(2)
Duran, B.O.D.S., Dal-Pai-Silva, M., Garcia de la Serrana, D. (2019) Rainbow trout slow myoblast cell culture as a model to study slow skeletal muscle and the characterization of
mir-133
and
mir-499
families as a case study. The Journal of experimental biology. 223(Pt 2):
Klett, H., Jürgensen, L., Most, P., Busch, M., Günther, F., Dobreva, G., Leuschner, F., Hassel, D., Busch, H., Boerries, M. (2018) Delineating the Dynamic Transcriptome Response of mRNA and microRNA during Zebrafish Heart Regeneration. Biomolecules. 9(1)
Mishima, Y., Abreu-Goodger, C., Staton, A.A., Stahlhut, C., Shou, C., Cheng, C., Gerstein, M., Enright, A.J., and Giraldez, A.J. (2009) Zebrafish miR-1 and miR-133 shape muscle gene expression and regulate sarcomeric actin organization. Genes & Development. 23(5):619-632
Nachtigall, P., Dias, M., Pinhal, D. (2014) Evolution and genomic organization of muscle microRNAs in fish genomes. BMC Evolutionary Biology. 14:196
Nepal, C., Coolen, M., Hadzhiev, Y., Cussigh, D., Mydel, P., Steen, V.M., Carninci, P., Andersen, J.B., Bally-Cuif, L., Müller, F., Lenhard, B. (2016) Transcriptional, post-transcriptional and chromatin-associated regulation of pri-miRNAs, pre-miRNAs and moRNAs. Nucleic acids research. 44(7):3070-81
Romano, N., Ceci, M. (2020) Are microRNAs responsible for cardiac hypertrophy in fish and mammals? What we can learn in the activation process in a zebrafish ex vivo model. Biochimica et biophysica acta. Molecular basis of disease. 1866(11):165896
Yin, V.P., Thomson, J.M., Thummel, R., Hyde, D.R., Hammond, S.M., and Poss, K.D. (2008) Fgf-dependent depletion of microRNA-133 promotes appendage regeneration in zebrafish. Genes & Development. 22(6):728-733
Zhang, X., Yang, F., Liu, F., Tian, Q., Hu, M., Li, P., Zeng, Y. (2022) Conservation of Differential Animal MicroRNA Processing by Drosha and Dicer. Frontiers in molecular biosciences. 8:730006
Desvignes, T., Bardou, P., Montfort, J., Sydes, J., Guyomar, C., George, S., Postlethwait, J.H., Bobe, J. (2022) FishmiRNA: An evolutionarily supported microRNA annotation and expression database for ray-finned fishes. Molecular Biology and Evolution. 39(2)
Zhang, X., Yang, F., Liu, F., Tian, Q., Hu, M., Li, P., Zeng, Y. (2022) Conservation of Differential Animal MicroRNA Processing by Drosha and Dicer. Frontiers in molecular biosciences. 8:730006
Romano, N., Ceci, M. (2020) Are microRNAs responsible for cardiac hypertrophy in fish and mammals? What we can learn in the activation process in a zebrafish ex vivo model. Biochimica et biophysica acta. Molecular basis of disease. 1866(11):165896
Duran, B.O.D.S., Dal-Pai-Silva, M., Garcia de la Serrana, D. (2019) Rainbow trout slow myoblast cell culture as a model to study slow skeletal muscle and the characterization of
mir-133
and
mir-499
families as a case study. The Journal of experimental biology. 223(Pt 2):
Klett, H., Jürgensen, L., Most, P., Busch, M., Günther, F., Dobreva, G., Leuschner, F., Hassel, D., Busch, H., Boerries, M. (2018) Delineating the Dynamic Transcriptome Response of mRNA and microRNA during Zebrafish Heart Regeneration. Biomolecules. 9(1)
Nepal, C., Coolen, M., Hadzhiev, Y., Cussigh, D., Mydel, P., Steen, V.M., Carninci, P., Andersen, J.B., Bally-Cuif, L., Müller, F., Lenhard, B. (2016) Transcriptional, post-transcriptional and chromatin-associated regulation of pri-miRNAs, pre-miRNAs and moRNAs. Nucleic acids research. 44(7):3070-81
Nachtigall, P., Dias, M., Pinhal, D. (2014) Evolution and genomic organization of muscle microRNAs in fish genomes. BMC Evolutionary Biology. 14:196
Mishima, Y., Abreu-Goodger, C., Staton, A.A., Stahlhut, C., Shou, C., Cheng, C., Gerstein, M., Enright, A.J., and Giraldez, A.J. (2009) Zebrafish miR-1 and miR-133 shape muscle gene expression and regulate sarcomeric actin organization. Genes & Development. 23(5):619-632
Yin, V.P., Thomson, J.M., Thummel, R., Hyde, D.R., Hammond, S.M., and Poss, K.D. (2008) Fgf-dependent depletion of microRNA-133 promotes appendage regeneration in zebrafish. Genes & Development. 22(6):728-733
Additional Citations (7):
Zebrafish Nomenclature Committee (2003) Nomenclature Data Curation (2003-2010). Nomenclature Committee Submission.
ZFIN Staff (2019) Semi-automated association of ENSDARG and ENSDART identifiers with ZFIN genes and transcripts. Semi-automated Curation.
ZFIN Staff (2008) Curation of miRBase Links. Automated Data Submission.
ZFIN Staff (2017) Curation of Alliance of Genome Resources Database Links. Automated Data Submission.
ZFIN Staff (2002) Scientific Curation. Manually curated data.
ZFIN Staff (2002) Curation of NCBI Gene Data Via Shared RNA Sequence IDs. Automated Data Submission.
ZFIN Staff (2003) Curation of unpublished nucleotide sequence accession numbers. Manually curated data.
ZFIN Staff (2019) Semi-automated association of ENSDARG and ENSDART identifiers with ZFIN genes and transcripts. Semi-automated Curation.
ZFIN Staff (2017) Curation of Alliance of Genome Resources Database Links. Automated Data Submission.
ZFIN Staff (2008) Curation of miRBase Links. Automated Data Submission.
Zebrafish Nomenclature Committee (2003) Nomenclature Data Curation (2003-2010). Nomenclature Committee Submission.
ZFIN Staff (2003) Curation of unpublished nucleotide sequence accession numbers. Manually curated data.
ZFIN Staff (2002) Curation of NCBI Gene Data Via Shared RNA Sequence IDs. Automated Data Submission.
ZFIN Staff (2002) Scientific Curation. Manually curated data.
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