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Genetics & Genomics

miR-30a-3p can inhibit the proliferation and promote the differentiation of chicken primary myoblasts

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Pages 475-483 | Received 16 Nov 2021, Accepted 14 Feb 2022, Published online: 28 Mar 2022

References

  • Aase-Remedios, M. E., C. Coll-Llado, and D. E. K. Ferrier. 2020. “More than One-to-Four via 2R: Evidence of an Independent Amphioxus Expansion and Two-Gene Ancestral Vertebrate State for MyoD-Related Myogenic Regulatory Factors (Mrfs).” Molecular Biology and Evolution 37 (10): 2966–2982. doi:10.1093/molbev/msaa147.
  • Besnier, F., P. Wahlberg, L. Ronnegard, W. Ek, L. Andersson, P. B. Siegel, and O. Carlborg. 2011. “Fine Mapping and Replication of QTL in Outbred Chicken Advanced Intercross Lines.” Genetics Selection Evolution 43 (1): 3. doi:10.1186/1297-9686-43-3.
  • Boskovic, S., R. Marin-Juez, J. Jasnic, S. Reischauer, H. El Sammak, A. Kojic, G. Faulkner, D. Radojkovic, D. Y. R. Stainier, and S. Kojic. 2018. “Characterization of Zebrafish (Danio Rerio) Muscle Ankyrin Repeat Proteins Reveals Their Conserved Response to Endurance Exercise.” PLoS One 13 (9): e0204312. doi:10.1371/journal.pone.0204312.
  • Buckingham, M., and P. W. Rigby. 2014. “Gene Regulatory Networks and Transcriptional Mechanisms that Control Myogenesis.” Developmental Cell 28 (3): 225–238. doi:10.1016/j.devcel.2013.12.020.
  • Burt, D. W. 2005. “Chicken Genome: Current Status and Future Opportunities.” Genome Research 15 (12): 1692–1698. doi:10.1101/gr.4141805.
  • Chen, B., L. Guo, X. Chen, H. K. El-Senousey, M. Ma, E. Jebessa, and Q. Nie. 2019a. “Cellular Function of Chicken FOXO3 and Its Associations with Chicken Growth.” Poultry Science 98 (10): 5109–5117. doi:10.3382/ps/pez397.
  • Chen, B., J. Xu, X. He, H. Xu, G. Li, H. Du, Q. Nie, and X. Zhang. 2015. “A Genome-Wide mRNA Screen and Functional Analysis Reveal FOXO3 as A Candidate Gene for Chicken Growth.” PLoS One 10 (9): e0137087. doi:10.1371/journal.pone.0137087.
  • Chen, B., J. Yu, L. Guo, M. S. Byers, Z. Wang, X. Chen, H. Xu, and Q. Nie. 2019b. “Circular RNA circHIPK3 Promotes the Proliferation and Differentiation of Chicken Myoblast Cells by Sponging miR-30a-3p.” Cells 8 (2). doi:10.3390/cells8020177.
  • Chen, J. F., E. M. Mandel, J. M. Thomson, Q. Wu, T. E. Callis, S. M. Hammond, F. L. Conlon, and D. Z. Wang. 2006. “The Role of microRNA-1 and microRNA-133 in Skeletal Muscle Proliferation and Differentiation.” Nature Genetics 38 (2): 228–233. doi:10.1038/ng1725.
  • Chu, Y. W., C. R. Wang, F. B. Weng, Z. J. Yan, and C. Wang. 2018. “MicroRNA-222 Contributed to Cell Proliferation, Invasion and Migration via Regulating YWHAG in Osteosarcoma.” European Review for Medical and Pharmacological Sciences 22 (9): 2588–2597. doi:10.26355/eurrev_201805_14952.
  • Correia de Sousa, M., M. Gjorgjieva, D. Dolicka, C. Sobolewski, and M. Foti. 2019. “Deciphering miRNAs’ Action through miRNA Editing.” International Journal of Molecular Sciences 20 (24). doi:10.3390/ijms20246249.
  • Dexheimer, P. J., and L. Cochella. 2020. “MicroRNAs: From Mechanism to Organism.” Frontiers in Cell and Developmental Biology 8: 409. doi:10.3389/fcell.2020.00409.
  • Enright, A. J., B. John, U. Gaul, T. Tuschl, C. Sander, and D. S. Marks. 2003. “MicroRNA Targets in Drosophila.” Genome Biology 5 (1): R1. doi:10.1186/gb-2003-5-1-r1.
  • Fischer, M., M. Quaas, L. Steiner, and K. Engeland. 2016. “The p53-p21-DREAM-CDE/CHR Pathway Regulates G2/M Cell Cycle Genes.” Nucleic Acids Research 44 (1): 164–174. doi:10.1093/nar/gkv927.
  • Francis-West, P. H., L. Antoni, and K. Anakwe. 2003. “Regulation of Myogenic Differentiation in the Developing Limb Bud.” Journal of Anatomy 202 (1): 69–81. doi:10.1046/j.1469-7580.2003.00136.x.
  • Gerlach, C. V., and V. S. Vaidya. 2017. “MicroRNAs in Injury and Repair.” Archives of Toxicology 91 (8): 2781–2797. doi:10.1007/s00204-017-1974-1.
  • Girardi, F., and F. Le Grand. 2018. “Wnt Signaling in Skeletal Muscle Development and Regeneration.” Progress in Molecular Biology and Translational Science 153: 157–179. doi:10.1016/bs.pmbts.2017.11.026.
  • Guess, M. G., K. K. Barthel, B. C. Harrison, and L. A. Leinwand. 2015. “miR-30 Family microRNAs Regulate Myogenic Differentiation and Provide Negative Feedback on the microRNA Pathway.” PLoS One 10 (2): e0118229. doi:10.1371/journal.pone.0118229.
  • Harford, T. J., G. Kliment, G. C. Shukla, and C. M. Weyman. 2017. “The Muscle Regulatory Transcription Factor MyoD Participates with P53 to Directly Increase the Expression of the Pro-apoptotic Bcl2 Family Member PUMA.” Apoptosis 22 (12): 1532–1542. doi:10.1007/s10495-017-1423-x.
  • Horak, M., J. Novak, and J. Bienertova-Vasku. 2016. “Muscle-specific microRNAs in Skeletal Muscle Development.” Developmental Biology 410 (1): 1–13. doi:10.1016/j.ydbio.2015.12.013.
  • Huang, Q., L. Y. Wu, Y. Wang, and X. S. Zhang. 2013. “GOMA: Functional Enrichment Analysis Tool Based on GO Modules.” Chinese Journal of Cancer 32 (4): 195–204. doi:10.5732/cjc.012.10151.
  • Hwang, B., J. H. Lee, and D. Bang. 2021. “Author Correction: Single-cell RNA Sequencing Technologies and Bioinformatics Pipelines.” Experimental and Molecular Medicine 53 (5): 1005. doi:10.1038/s12276-021-00615-w.
  • Jia, X., H. Lin, Q. Nie, X. Zhang, and S. J. Lamont. 2016. “A Short Insertion Mutation Disrupts Genesis of miR-16 and Causes Increased Body Weight in Domesticated Chicken.” Scientific Reports 6: 36433. doi:10.1038/srep36433.
  • Ju, H., Y. Yang, A. Sheng, and X. Jiang. 2015. “Role of microRNAs in Skeletal Muscle Development and Rhabdomyosarcoma (Review).” Molecular Medicine Reports 11 (6): 4019–4024. doi:10.3892/mmr.2015.3275.
  • Kabekkodu, S. P., V. Shukla, V. K. Varghese, J. D’ Souza, S. Chakrabarty, and K. Satyamoorthy. 2018. “Clustered miRNAs and Their Role in Biological Functions and Diseases.” Biological Reviews of the Cambridge Philosophical Society 93 (4): 1955–1986. doi:10.1111/brv.12428.
  • Kearsey, J. M., P. J. Coates, A. R. Prescott, E. Warbrick, and P. A. Hall. 1995. “Gadd45 Is a Nuclear Cell Cycle Regulated Protein Which Interacts with p21Cip1.” Oncogene 11 (9): 1675–1683.
  • Klett, H., L. Jurgensen, P. Most, M. Busch, F. Gunther, G. Dobreva, F. Leuschner, D. Hassel, H. Busch, and M. Boerries. 2018. “Delineating the Dynamic Transcriptome Response of mRNA and microRNA during Zebrafish Heart Regeneration.” Biomolecules 9 (1). doi:10.3390/biom9010011.
  • Li, Y., Y. Chen, W. Jin, S. Fu, D. Li, Y. Zhang, G. Sun, et al. 2019. “Analyses of MicroRNA and mRNA Expression Profiles Reveal the Crucial Interaction Networks and Pathways for Regulation of Chicken Breast Muscle Development.” Frontiers in Genetics 10: 197. doi:10.3389/fgene.2019.00197.
  • Li, Y., W. Jin, B. Zhai, Y. Chen, G. Li, Y. Zhang, Y. Guo, et al. 2021. “LncRNAs and Their Regulatory Networks in Breast Muscle Tissue of Chinese Gushi Chickens during Late Postnatal Development.” BMC Genomics 22 (1): 44. doi:10.1186/s12864-020-07356-6.
  • Li, Z., H. Ouyang, M. Zheng, B. Cai, P. Han, B. A. Abdalla, Q. Nie, and X. Zhang. 2016. “Integrated Analysis of Long Non-coding RNAs (Lncrnas) and mRNA Expression Profiles Reveals the Potential Role of LncRNAs in Skeletal Muscle Development of the Chicken.” Frontiers in Physiology 7: 687. doi:10.3389/fphys.2016.00687.
  • Liu, J., F. Li, X. Hu, D. Cao, W. Liu, H. Han, Y. Zhou, and Q. Lei. 2021. “Deciphering the miRNA Transcriptome of Breast Muscle from the Embryonic to Post-hatching Periods in Chickens.” BMC Genomics 22 (1): 64. doi:10.1186/s12864-021-07374-y.
  • Liu, X. H., W. A. Bauman, and C. Cardozo. 2015. “ANKRD1 Modulates Inflammatory Responses in C2C12 Myoblasts through Feedback Inhibition of NF-kappaB Signaling Activity.” Biochemical and Biophysical Research Communications 464 (1): 208–213. doi:10.1016/j.bbrc.2015.06.118.
  • Livak, K. J., and T. D. Schmittgen. 2001. “Analysis of Relative Gene Expression Data Using Real-time Quantitative PCR and the 2(-Delta Delta C(T)) Method.” Methods 25 (4): 402–408. doi:10.1006/meth.2001.1262.
  • Luo, W., S. Lin, G. Li, Q. Nie, and X. Zhang. 2016. “Integrative Analyses of miRNA-mRNA Interactions Reveal Let-7b, miR-128 and MAPK Pathway Involvement in Muscle Mass Loss in Sex-Linked Dwarf Chickens.” International Journal of Molecular Sciences 17 (3): 276. doi:10.3390/ijms17030276.
  • Mathew, D. E., K. Larsen, P. Janeczek, and J. M. Lewohl. 2016. “Expression of 14-3-3 Transcript Isoforms in Response to Ethanol Exposure and Their Regulation by miRNAs.” Molecular and Cellular Neuroscience 75: 44–49. doi:10.1016/j.mcn.2016.06.006.
  • Olson, E. N. 1992. “Interplay between Proliferation and Differentiation within the Myogenic Lineage.” Developmental Biology 154 (2): 261–272. doi:10.1016/0012-1606(92)90066-p.
  • Ouyang, H., Z. Wang, X. Chen, J. Yu, Z. Li, and Q. Nie. 2017. “Proteomic Analysis of Chicken Skeletal Muscle during Embryonic Development.” Frontiers in Physiology 8: 281. doi:10.3389/fphys.2017.00281.
  • Podisi, B. K., S. A. Knott, D. W. Burt, and P. M. Hocking. 2013. “Comparative Analysis of Quantitative Trait Loci for Body Weight, Growth Rate and Growth Curve Parameters from 3 to 72 Weeks of Age in Female Chickens of a Broiler-layer Cross.” BMC Genetics 14: 22. doi:10.1186/1471-2156-14-22.
  • Przanowska, R. K., E. Sobierajska, Z. Su, K. Jensen, P. Przanowski, S. Nagdas, J. A. Kashatus, et al. 2020. “miR-206 Family Is Important for Mitochondrial and Muscle Function, but Not Essential for Myogenesis in Vitro.” FASEB Journal 34 (6): 7687–7702. doi:10.1096/fj.201902855RR.
  • Qi, B., Y. Wang, Z. J. Chen, X. N. Li, Y. Qi, Y. Yang, G. H. Cui, H. Z. Guo, W. H. Li, and S. Zhao. 2017. “Down-regulation of miR-30a-3p/5p Promotes Esophageal Squamous Cell Carcinoma Cell Proliferation by Activating the Wnt Signaling Pathway.” World Journal of Gastroenterology 23 (45): 7965–7977. doi:10.3748/wjg.v23.i45.7965.
  • Roffe, S., Y. Hagai, M. Pines, and O. Halevy. 2010. “Halofuginone Inhibits Smad3 Phosphorylation via the PI3K/Akt and MAPK/ERK Pathways in Muscle Cells: Effect on Myotube Fusion.” Experimental Cell Research 316 (6): 1061–1069. doi:10.1016/j.yexcr.2010.01.003.
  • Schober, P., C. Boer, and L. A. Schwarte. 2018. “Correlation Coefficients: Appropriate Use and Interpretation.” Anesthesia and Analgesia 126 (5): 1763–1768. doi:10.1213/ANE.0000000000002864.
  • Singh, K., and F. J. Dilworth. 2013. “Differential Modulation of Cell Cycle Progression Distinguishes Members of the Myogenic Regulatory Factor Family of Transcription Factors.” FEBS Journal 280 (17): 3991–4003. doi:10.1111/febs.12188.
  • Szopa, M., A. Meirhaeghe, J. Luan, L. A. Moreno, M. Gonzalez-Gross, A. Vidal-Puig, C. Cooper, et al. 2010. “No Association between Polymorphisms in the INSIG1 Gene and the Risk of Type 2 Diabetes and Related Traits.” American Journal of Clinical Nutrition 92 (1): 252–257. doi:10.3945/ajcn.2010.29422.
  • Wang, K., H. Hu, Y. Tian, J. Li, A. Scheben, C. Zhang, Y. Li, et al. 2021. “The Chicken Pan-genome Reveals Gene Content Variation and a Promoter Region Deletion in IGF2BP1 Affecting Body Size.” Molecular Biology and Evolution. doi:10.1093/molbev/msab231.
  • Wu, Y., C. L. Ruggiero, W. A. Bauman, and C. Cardozo. 2013. “Ankrd1 Is a Transcriptional Repressor for the Androgen Receptor that Is Downregulated by Testosterone.” Biochemical and Biophysical Research Communications 437 (3): 355–360. doi:10.1016/j.bbrc.2013.06.079.
  • Xie, Q., X. Zhang, S. Peng, J. Sun, X. Chen, Y. Deng, and L. Yi. 2020. “Identification of Novel Biomarkers in Ischemic Stroke: A Genome-wide Integrated Analysis.” BMC Medical Genetics 21 (1): 66. doi:10.1186/s12881-020-00994-3.
  • Yang, G., X. Lu, and L. Yuan. 2014. “LncRNA: A Link between RNA and Cancer.” Biochimica et Biophysica Acta 1839 (11): 1097–1109. doi:10.1016/j.bbagrm.2014.08.012.
  • Zhang, Y., Y. Wang, Y. Li, J. Wu, X. Wang, C. Bian, Y. Tian, et al. 2021. “Genome-wide Association Study Reveals the Genetic Determinism of Growth Traits in a Gushi-Anka F2 Chicken Population.” Heredity (Edinb) 126 (2): 293–307. doi:10.1038/s41437-020-00365-x.

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