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Journal Abstract Search


323 related items for PubMed ID: 24398145

  • 21. CCAAT/enhancer binding protein beta regulates stem cell activity and specifies luminal cell fate in the mammary gland.
    LaMarca HL, Visbal AP, Creighton CJ, Liu H, Zhang Y, Behbod F, Rosen JM.
    Stem Cells; 2010 Mar 31; 28(3):535-44. PubMed ID: 20054865
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  • 22. Prospective isolation and characterization of committed and multipotent progenitors from immortalized mouse mammary epithelial cells with morphogenic potential.
    Kittrell FS, Carletti MZ, Kerbawy S, Heestand J, Xian W, Zhang M, Lamarca HL, Sonnenberg A, Rosen JM, Medina D, Behbod F.
    Breast Cancer Res; 2011 Apr 05; 13(2):R41. PubMed ID: 21466693
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  • 23. RUNX1, a transcription factor mutated in breast cancer, controls the fate of ER-positive mammary luminal cells.
    van Bragt MP, Hu X, Xie Y, Li Z.
    Elife; 2014 Nov 21; 3():e03881. PubMed ID: 25415051
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  • 24. A Long-Lived Luminal Subpopulation Enriched with Alveolar Progenitors Serves as Cellular Origin of Heterogeneous Mammary Tumors.
    Tao L, van Bragt MP, Li Z.
    Stem Cell Reports; 2015 Jul 14; 5(1):60-74. PubMed ID: 26120057
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  • 25. IGF1R constitutive activation expands luminal progenitors and influences lineage differentiation during breast tumorigenesis.
    Farabaugh SM, Litzenburger BC, Elangovan A, Pecar G, Walheim L, Atkinson JM, Lee AV.
    Dev Biol; 2020 Jul 01; 463(1):77-87. PubMed ID: 32376245
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  • 26. Basal but not luminal mammary epithelial cells require PI3K/mTOR signaling for Ras-driven overgrowth.
    Plichta KA, Mathers JL, Gestl SA, Glick AB, Gunther EJ.
    Cancer Res; 2012 Nov 15; 72(22):5856-66. PubMed ID: 23010075
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  • 27. The mammary microenvironment alters the differentiation repertoire of neural stem cells.
    Booth BW, Mack DL, Androutsellis-Theotokis A, McKay RD, Boulanger CA, Smith GH.
    Proc Natl Acad Sci U S A; 2008 Sep 30; 105(39):14891-6. PubMed ID: 18809919
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  • 28. Lineage-Biased Stem Cells Maintain Estrogen-Receptor-Positive and -Negative Mouse Mammary Luminal Lineages.
    Wang C, Christin JR, Oktay MH, Guo W.
    Cell Rep; 2017 Mar 21; 18(12):2825-2835. PubMed ID: 28329676
    [Abstract] [Full Text] [Related]

  • 29. Elf5 regulates mammary gland stem/progenitor cell fate by influencing notch signaling.
    Chakrabarti R, Wei Y, Romano RA, DeCoste C, Kang Y, Sinha S.
    Stem Cells; 2012 Jul 21; 30(7):1496-508. PubMed ID: 22523003
    [Abstract] [Full Text] [Related]

  • 30. Lineage specific methylation of the Elf5 promoter in mammary epithelial cells.
    Lee HJ, Hinshelwood RA, Bouras T, Gallego-Ortega D, Valdés-Mora F, Blazek K, Visvader JE, Clark SJ, Ormandy CJ.
    Stem Cells; 2011 Oct 21; 29(10):1611-9. PubMed ID: 21823211
    [Abstract] [Full Text] [Related]

  • 31. Molecular signature of the putative stem/progenitor cells committed to the development of the bovine mammary gland at puberty.
    Finot L, Chanat E, Dessauge F.
    Sci Rep; 2018 Nov 01; 8(1):16194. PubMed ID: 30385815
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  • 32. Lineage tracing of mammary epithelial cells using cell-type-specific cre-expressing adenoviruses.
    Tao L, van Bragt MP, Laudadio E, Li Z.
    Stem Cell Reports; 2014 Jun 03; 2(6):770-9. PubMed ID: 24936465
    [Abstract] [Full Text] [Related]

  • 33. The BRG1 chromatin remodeler protects against ovarian cysts, uterine tumors, and mammary tumors in a lineage-specific manner.
    Serber DW, Rogala A, Makarem M, Rosson GB, Simin K, Godfrey V, Van Dyke T, Eaves CJ, Bultman SJ.
    PLoS One; 2012 Jun 03; 7(2):e31346. PubMed ID: 22363625
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  • 34. Targeted activation of beta-catenin signaling in basal mammary epithelial cells affects mammary development and leads to hyperplasia.
    Teulière J, Faraldo MM, Deugnier MA, Shtutman M, Ben-Ze'ev A, Thiery JP, Glukhova MA.
    Development; 2005 Jan 03; 132(2):267-77. PubMed ID: 15590737
    [Abstract] [Full Text] [Related]

  • 35. Distinct stem cells contribute to mammary gland development and maintenance.
    Van Keymeulen A, Rocha AS, Ousset M, Beck B, Bouvencourt G, Rock J, Sharma N, Dekoninck S, Blanpain C.
    Nature; 2011 Oct 09; 479(7372):189-93. PubMed ID: 21983963
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  • 36. Does the Mouse Mammary Gland Arise from Unipotent or Multipotent Mammary Stem/Progenitor Cells?
    Smith GH, Medina D.
    J Mammary Gland Biol Neoplasia; 2018 Jun 09; 23(1-2):1-3. PubMed ID: 29644495
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  • 37. Tip30 controls differentiation of murine mammary luminal progenitor to estrogen receptor-positive luminal cell through regulating FoxA1 expression.
    Chen F, Li A, Gao S, Hollern D, Williams M, Liu F, VanSickle EA, Andrechek E, Zhang C, Yang C, Luo R, Xiao H.
    Cell Death Dis; 2014 May 22; 5(5):e1242. PubMed ID: 24853420
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  • 38. An adjunct mammary epithelial cell population in parous females: its role in functional adaptation and tissue renewal.
    Wagner KU, Boulanger CA, Henry MD, Sgagias M, Hennighausen L, Smith GH.
    Development; 2002 Mar 22; 129(6):1377-86. PubMed ID: 11880347
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  • 39. Longitudinal analysis of mammogenesis using a novel tetracycline-inducible mouse model and in vivo imaging.
    Creamer BA, Triplett AA, Wagner KU.
    Genesis; 2009 Apr 22; 47(4):234-45. PubMed ID: 19208431
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  • 40. Single cell transcriptome atlas of mouse mammary epithelial cells across development.
    Pal B, Chen Y, Milevskiy MJG, Vaillant F, Prokopuk L, Dawson CA, Capaldo BD, Song X, Jackling F, Timpson P, Lindeman GJ, Smyth GK, Visvader JE.
    Breast Cancer Res; 2021 Jun 29; 23(1):69. PubMed ID: 34187545
    [Abstract] [Full Text] [Related]


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