Slug Controls Stem/Progenitor Cell Growth Dynamics during Mammary Gland Morphogenesis

被引:80
|
作者
Nassour, Mayssa [1 ]
Idoux-Gillet, Ysia [1 ]
Selmi, Abdelkader [1 ]
Come, Christophe [1 ]
Faraldo, Maria-Luisa M. [2 ]
Deugnier, Marie-Ange [2 ]
Savagner, Pierre [1 ]
机构
[1] Univ Montpellier, Inst Rech Cancerol Montpellier, INSERM, Ctr Reg Lutte Canc Val dAurelle Paul Lamarque,U89, F-34059 Montpellier, France
[2] Inst Curie, CNRS, UMR144, F-75231 Paris, France
来源
PLOS ONE | 2012年 / 7卷 / 12期
关键词
EPITHELIAL-MESENCHYMAL TRANSITION; SMAD-INTERACTING PROTEIN-1; CANCER STEM-CELLS; BREAST-CANCER; TRANSCRIPTION FACTORS; GENE-EXPRESSION; NEURAL CREST; SELF-RENEWAL; SNAIL; CARCINOMA;
D O I
10.1371/journal.pone.0053498
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Background: Morphogenesis results from the coordination of distinct cell signaling pathways controlling migration, differentiation, apoptosis, and proliferation, along stem/progenitor cell dynamics. To decipher this puzzle, we focused on epithelial-mesenchymal transition (EMT) "master genes''. EMT has emerged as a unifying concept, involving cell-cell adhesion, migration and apoptotic pathways. EMT also appears to mingle with stemness. However, very little is known on the physiological role and relevance of EMT master-genes. We addressed this question during mammary morphogenesis. Recently, a link between Slug/Snai2 and stemness has been described in mammary epithelial cells, but EMT master genes actual localization, role and targets during mammary gland morphogenesis are not known and we focused on this basic question. Methodology/Principal Findings: Using a Slug-lacZ transgenic model and immunolocalization, we located Slug in a distinct subpopulation covering about 10-20% basal cap and duct cells, mostly cycling cells, coexpressed with basal markers P-cadherin, CK5 and CD49f. During puberty, Slug-deficient mammary epithelium exhibited a delayed development after transplantation, contained less cycling cells, and overexpressed CK8/18, ER, GATA3 and BMI1 genes, linked to luminal lineage. Other EMT master genes were overexpressed, suggesting compensation mechanisms. Gain/loss-of-function in vitro experiments confirmed Slug control of mammary epithelial cell luminal differentiation and proliferation. In addition, they showed that Slug enhances specifically clonal mammosphere emergence and growth, cell motility, and represses apoptosis. Strikingly, Slug-deprived mammary epithelial cells lost their potential to generate secondary clonal mammospheres. Conclusions/Significance: We conclude that Slug pathway controls the growth dynamics of a subpopulation of cycling progenitor basal cells during mammary morphogenesis. Overall, our data better define a key mechanism coordinating cell lineage dynamics and morphogenesis, and provide physiological relevance to broadening EMT pathways.
引用
收藏
页数:12
相关论文
共 50 条
  • [41] Isolation and differentiation of bovine mammary gland progenitor cell populations
    Holland, MS
    Tai, MH
    Trosko, JE
    Griffin, LD
    Stasko, JA
    Cheville, NC
    Holland, RE
    AMERICAN JOURNAL OF VETERINARY RESEARCH, 2003, 64 (04) : 396 - 403
  • [42] Cadherin-11 functions during mammary gland branching morphogenesis
    Hens, Julie R.
    Kumar, Aashish
    Nuttall, John
    Sanyal, Neha
    Vos, Megan
    DEVELOPMENTAL BIOLOGY, 2010, 344 (01) : 446 - 446
  • [43] Primary Cilia Regulate Branching Morphogenesis during Mammary Gland Development
    McDermott, Kimberly M.
    Liu, Bob Y.
    Tisty, Thea D.
    Pazour, Gregory J.
    CURRENT BIOLOGY, 2010, 20 (08) : 731 - 737
  • [44] Single-cell lineage tracing in the mammary gland reveals stochastic clonal dispersion of stem/progenitor cell progeny
    Felicity M. Davis
    Bethan Lloyd-Lewis
    Olivia B. Harris
    Sarah Kozar
    Douglas J. Winton
    Leila Muresan
    Christine J. Watson
    Nature Communications, 7
  • [45] Single-cell lineage tracing in the mammary gland reveals stochastic clonal dispersion of stem/progenitor cell progeny
    Davis, Felicity M.
    Lloyd-Lewis, Bethan
    Harris, Olivia B.
    Kozar, Sarah
    Winton, Douglas J.
    Muresan, Leila
    Watson, Christine J.
    NATURE COMMUNICATIONS, 2016, 7
  • [46] A single mammary stem cell can reconstitute a functional mammary gland
    Shackleton, M
    Vaillant, F
    Simpson, KJ
    Singl, J
    Smyth, GK
    Wu, L
    Visvader, JE
    Lindeman, GJ
    BREAST CANCER RESEARCH AND TREATMENT, 2005, 94 : S26 - S26
  • [47] Nfatc1's Role in Mammary Epithelial Morphogenesis and Basal Stem/progenitor Cell Self-renewal
    McNeil, Melissa
    Han, Yingying
    Sun, Peng
    Watanabe, Kazuhide
    Jiang, Jun
    Chen, Natasha
    Yu, Zhengquan
    Zhou, Bin
    Dai, Xing
    JOURNAL OF MAMMARY GLAND BIOLOGY AND NEOPLASIA, 2021, 26 (04) : 357 - 365
  • [48] Nfatc1’s Role in Mammary Epithelial Morphogenesis and Basal Stem/progenitor Cell Self-renewal
    Melissa McNeil
    Yingying Han
    Peng Sun
    Kazuhide Watanabe
    Jun Jiang
    Natasha Chen
    Zhengquan Yu
    Bin Zhou
    Xing Dai
    Journal of Mammary Gland Biology and Neoplasia, 2021, 26 : 357 - 365
  • [49] Bone marrow-origin stem/progenitor cells in the mammary gland of heifers
    Osinska, E.
    Godlewski, M. M.
    Wierzbicki, M.
    Motyl, T.
    POLISH JOURNAL OF VETERINARY SCIENCES, 2014, 17 (01): : 161 - 163
  • [50] Atypical chemokine receptor ACKR2 controls branching morphogenesis in the developing mammary gland
    Wilson, Gillian J.
    Hewit, Kay D.
    Pallas, Kenneth J.
    Cairney, Claire J.
    Lee, Kit M.
    Hansell, Christopher A.
    Stein, Torsten
    Graham, Gerard J.
    DEVELOPMENT, 2017, 144 (01): : 74 - 82