The miR-200 family in normal mammary gland development

1.

Lefevre C, Venkat P, Kumar A, Modepalli V, Nicholas KR. Comparative analysis of milk microRNA in the therian lineage highlights the evolution of lactation. Reprod Fertil Dev. 2019;31(7):1266–75.

CAS  PubMed  Article  Google Scholar 

2.

Huebner RJ, Ewald AJ. Cellular foundations of mammary tubulogenesis. Semin Cell Dev Biol. 2014;31C:124–31.

Article  CAS  Google Scholar 

3.

Hanahan D, Weinberg RA. Hallmarks of cancer: the next generation. Cell. 2011;144(5):646–74.

CAS  PubMed  Article  Google Scholar 

4.

Iber D, Menshykau D. The control of branching morphogenesis. Open Biol. 2013;3(9):130088.

PubMed  PubMed Central  Article  CAS  Google Scholar 

5.

Affolter M, Zeller R, Caussinus E. Tissue remodelling through branching morphogenesis. Nat Rev Mol Cell Biol. 2009;10(12):831–42.

CAS  PubMed  Article  Google Scholar 

6.

Hutvagner G, McLachlan J, Pasquinelli AE, Balint E, Tuschl T, Zamore PD. A cellular function for the RNA-interference enzyme Dicer in the maturation of the let-7 small temporal RNA. Science. 2001;293(5531):834–8.

CAS  PubMed  Article  Google Scholar 

7.

Grishok A, Pasquinelli AE, Conte D, Li N, Parrish S, Ha I, Baillie DL, Fire A, Ruvkun G, Mello CC. Genes and mechanisms related to RNA interference regulate expression of the small temporal RNAs that control C. elegans developmental timing. Cell. 2001;106(1):23–34.

CAS  PubMed  PubMed Central  Article  Google Scholar 

8.

Di LG, Calin GA, Croce CM. MicroRNAs: fundamental facts and involvement in human diseases. Birth Defects ResCEmbryoToday. 2006;78(2):180–9.

Article  CAS  Google Scholar 

9.

Kim VN, Nam JW. Genomics of microRNA. Trends Genet. 2006;22(3):165–73.

CAS  PubMed  Article  Google Scholar 

10.

Bartel DP. MicroRNAs: genomics, biogenesis, mechanism, and function. Cell. 2004;116(2):281–97.

CAS  PubMed  Article  Google Scholar 

11.

Czech B, Hannon GJ. Small RNA sorting: matchmaking for Argonautes. NatRevGenet. 2011;12(1):19–31.

CAS  Google Scholar 

12.

Chendrimada TP, Gregory RI, Kumaraswamy E, Norman J, Cooch N, Nishikura K, Shiekhattar R. TRBP recruits the Dicer complex to Ago2 for microRNA processing and gene silencing. Nature. 2005;436(7051):740–4.

CAS  PubMed  PubMed Central  Article  Google Scholar 

13.

Hock J, Meister G. The Argonaute protein family. Genome Biol. 2008;9(2):210.

PubMed  PubMed Central  Article  CAS  Google Scholar 

14.

Filipowicz W, Bhattacharyya SN, Sonenberg N. Mechanisms of post-transcriptional regulation by microRNAs: are the answers in sight? Nat Rev Genet. 2008;9(2):102–14.

CAS  PubMed  Article  Google Scholar 

15.

Croce CM. Causes and consequences of microRNA dysregulation in cancer. Nat Rev Genet. 2009;10(10):704–14.

CAS  PubMed  PubMed Central  Article  Google Scholar 

16.

Saini HK, Enright AJ, Griffiths-Jones S. Annotation of mammalian primary microRNAs. BMC Genomics. 2008;9:564.

PubMed  PubMed Central  Article  CAS  Google Scholar 

17.

Trumbach D, Prakash N. The conserved miR-8/miR-200 microRNA family and their role in invertebrate and vertebrate neurogenesis. Cell Tissue Res. 2015;359(1):161–77.

PubMed  Article  CAS  Google Scholar 

18.

Georgakopoulos-Soares I, Chartoumpekis DV, Kyriazopoulou V, Zaravinos A. EMT factors and metabolic pathways in cancer. Front Oncol. 2020;10:499.

PubMed  PubMed Central  Article  Google Scholar 

19.

Kalluri R, Weinberg RA. The basics of epithelial-mesenchymal transition. J Clin Invest. 2009;119(6):1420–8.

CAS  PubMed  PubMed Central  Article  Google Scholar 

20.

Kalluri R. EMT: when epithelial cells decide to become mesenchymal-like cells. J Clin Invest. 2009;119(6):1417–9.

CAS  PubMed  PubMed Central  Article  Google Scholar 

21.

Lamouille S, Xu J, Derynck R. Molecular mechanisms of epithelial-mesenchymal transition. Nat Rev Mol Cell Biol. 2014;15(3):178–96.

CAS  PubMed  PubMed Central  Article  Google Scholar 

22.

Piao HL, Ma L. Non-coding RNAs as regulators of mammary development and breast cancer. J Mammary Gland Biol Neoplasia. 2012;17(1):33–42.

PubMed  PubMed Central  Article  Google Scholar 

23.

Propper AY. Wandering epithelial cells in the rabbit embryo milk line. A preliminary scanning electron microscope study. Dev Biol. 1978;67(1):225–31.

CAS  PubMed  Article  Google Scholar 

24.

Brabletz S, Brabletz T. The ZEB/miR-200 feedback loop–a motor of cellular plasticity in development and cancer? EMBO Rep. 2010;11(9):670–7.

CAS  PubMed  PubMed Central  Article  Google Scholar 

25.

Wansbury O, Mackay A, Kogata N, Mitsopoulos C, Kendrick H, Davidson K, Ruhrberg C, Reis-Filho JS, Smalley MJ, Zvelebil M, et al. Transcriptome analysis of embryonic mammary cells reveals insights into mammary lineage establishment. Breast Cancer Res. 2011;13(4):R79.

PubMed  PubMed Central  Article  Google Scholar 

26.

Kim DH, Xing T, Yang Z, Dudek R, Lu Q, Chen YH. Epithelial mesenchymal transition in embryonic development, tissue repair and cancer: a comprehensive overview. J Clin Med. 2017;7(1):1.

27.

Slepicka PF, Somasundara AVH, Dos Santos CO. The molecular basis of mammary gland development and epithelial differentiation. Semin Cell Dev Biol. 2021,114:93–112.

28.

Zhang H, Liu Y, Weng J, Usuda K, Fujii K, Watanabe G, Nagaoka K. Decrease of lactogenic hormones induce epithelial-mesenchymal transition via TGFbeta1 and arachidonic acid during mammary gland involution. J Reprod Dev. 2017;63(3):325–32.

CAS  PubMed  PubMed Central  Article  Google Scholar 

29.

Thiery JP, Acloque H, Huang RY, Nieto MA. Epithelial-mesenchymal transitions in development and disease. Cell. 2009;139(5):871–90.

CAS  PubMed  Article  Google Scholar 

30.

Kroger C, Afeyan A, Mraz J, Eaton EN, Reinhardt F, Khodor YL, Thiru P, Bierie B, Ye X, Burge CB, et al. Acquisition of a hybrid E/M state is essential for tumorigenicity of basal breast cancer cells. Proc Natl Acad Sci U S A. 2019;116(15):7353–62.

CAS  PubMed  PubMed Central  Article  Google Scholar 

31.

Jolly MK, Boareto M, Huang B, Jia D, Lu M, Ben-Jacob E, Onuchic JN, Levine H. Implications of the hybrid epithelial/mesenchymal phenotype in metastasis. Front Oncol. 2015;5:155.

PubMed  PubMed Central  Article  Google Scholar 

32.

Pastushenko I, Brisebarre A, Sifrim A, Fioramonti M, Revenco T, Boumahdi S, Van Keymeulen A, Brown D, Moers V, Lemaire S, et al. Identification of the tumour transition states occurring during EMT. Nature. 2018;556(7702):463–8.

CAS  PubMed  Article  Google Scholar 

33.

Feng X, Wang Z, Fillmore R, Xi Y. MiR-200, a new star miRNA in human cancer. Cancer Lett. 2014;344(2):166–73.

CAS  PubMed  Article  Google Scholar 

34.

Park SM, Gaur AB, Lengyel E, Peter ME. The miR-200 family determines the epithelial phenotype of cancer cells by targeting the E-cadherin repressors ZEB1 and ZEB2. Genes Dev. 2008;22(7):894–907.

CAS  PubMed  PubMed Central  Article  Google Scholar 

35.

Shimono Y, Zabala M, Cho RW, Lobo N, Dalerba P, Qian D, Diehn M, Liu H, Panula SP, Chiao E, et al. Downregulation of miRNA-200c links breast cancer stem cells with normal stem cells. Cell. 2009;138(3):592–603.

CAS  PubMed  PubMed Central  Article  Google Scholar 

36.

Vrba L, Garbe JC, Stampfer MR, Futscher BW. Epigenetic regulation of normal human mammary cell type-specific miRNAs. Genome Res. 2011;21(12):2026–37.

CAS  PubMed  PubMed Central  Article  Google Scholar 

37.

Wiklund ED, Bramsen JB, Hulf T, Dyrskjot L, Ramanathan R, Hansen TB, Villadsen SB, Gao S, Ostenfeld MS, Borre M, et al. Coordinated epigenetic repression of the miR-200 family and miR-205 in invasive bladder cancer. Int J Cancer. 2011;128(6):1327–34.

CAS  PubMed  Article  PubMed Central  Google Scholar 

38.

Neves R, Scheel C, Weinhold S, Honisch E, Iwaniuk KM, Trompeter HI, Niederacher D, Wernet P, Santourlidis S, Uhrberg M. Role of DNA methylation in miR-200c/141 cluster silencing in invasive breast cancer cells. BMC Res Notes. 2010;3:219.

PubMed  PubMed Central  Article  CAS  Google Scholar 

39.

Davalos V, Moutinho C, Villanueva A, Boque R, Silva P, Carneiro F, Esteller M. Dynamic epigenetic regulation of the microRNA-200 family mediates epithelial and mesenchymal transitions in human tumorigenesis. Oncogene. 2012;31(16):2062–74.

CAS  PubMed  Article  Google Scholar 

40.

Lim YY, Wright JA, Attema JL, Gregory PA, Bert AG, Smith E, Thomas D, Lopez AF, Drew PA, Khew-Goodall Y, et al. Epigenetic modulation of the miR-200 family is assoc

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