Literature DB >> 25486358

CD151 represses mammary gland development by maintaining the niches of progenitor cells.

Yuanqin Yin1, Xinyu Deng, Zeyi Liu, Lauren A Baldwin, Jason Lefringhouse, Jiayang Zhang, John T Hoff, Sonia F Erfani, Edmund B Rucker, Kathleen O'Connor, Chunming Liu, Yadi Wu, Binhua P Zhou, Xiuwei H Yang.   

Abstract

Tetraspanin CD151 interacts with laminin-binding integrins (i.e., α3β1, α6β1 and α6β4) and other cell surface molecules to control diverse cellular and physiological processes, ranging from cell adhesion, migration and survival to tissue architecture and homeostasis. Here, we report a novel role of CD151 in maintaining the branching morphogenesis and activity of progenitor cells during the pubertal development of mammary glands. In contrast to the disruption of laminin-binding integrins, CD151 removal in mice enhanced the tertiary branching in mammary glands by 2.4-fold and the number of terminal end buds (TEBs) by 30%, while having minimal influence on either primary or secondary ductal branching. Consistent with these morphological changes are the skewed distribution of basal/myoepithelial cells and a 3.2-fold increase in proliferating Ki67-positive cells. These novel observations suggest that CD151 impacts the branching morphogenesis of mammary glands by upregulating the activities of bipotent progenitor cells. Indeed, our subsequent analyses indicate that upon CD151 removal the proportion of CD24(Hi)CD49f(Low) progenitor cells in the mammary gland increased by 34%, and their proliferating and differentiating activities were significantly upregulated. Importantly, fibronectin, a pro-branching extracellular matrix (ECM) protein deposited underlying mammary epithelial or progenitor cells, increased by >7.2-fold. Moreover, there was a concomitant increase in the expression and nuclear distribution of Slug, a transcription factor implicated in the maintenance of mammary progenitor cell activities. Taken together, our studies demonstrate that integrin-associated CD151 represses mammary branching morphogenesis by controlling progenitor cell activities, ECM integrity and transcription program.

Entities:  

Keywords:  CD151 tetraspanin; ECM, extracellular matrix; EMT, epithelial-mesenchymal transition; LB, laminin-binding; Slug; TEB, terminal end bud; extracellular matrix; integrin; mammary gland

Mesh:

Substances:

Year:  2014        PMID: 25486358      PMCID: PMC4614859          DOI: 10.4161/15384101.2015.945823

Source DB:  PubMed          Journal:  Cell Cycle        ISSN: 1551-4005            Impact factor:   4.534


  66 in total

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Review 2.  Cell-matrix interactions in mammary gland development and breast cancer.

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Journal:  Development       Date:  1996-11       Impact factor: 6.868

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9.  alpha3beta1 Integrin is required for normal development of the epidermal basement membrane.

Authors:  C M DiPersio; K M Hodivala-Dilke; R Jaenisch; J A Kreidberg; R O Hynes
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10.  Slug controls stem/progenitor cell growth dynamics during mammary gland morphogenesis.

Authors:  Mayssa Nassour; Ysia Idoux-Gillet; Abdelkader Selmi; Christophe Côme; Maria-Luisa M Faraldo; Marie-Ange Deugnier; Pierre Savagner
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5.  Expression Changes of Structural Protein Genes May Be Related to Adaptive Skin Characteristics Specific to Humans.

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Review 6.  The Context-Dependent Impact of Integrin-Associated CD151 and Other Tetraspanins on Cancer Development and Progression: A Class of Versatile Mediators of Cellular Function and Signaling, Tumorigenesis and Metastasis.

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8.  Deletion of tetraspanin CD151 alters the Wnt oncogene-induced mammary tumorigenesis: A cell type-linked function and signaling.

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Journal:  Neoplasia       Date:  2019-11-26       Impact factor: 5.715

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