TY - CHAP
T1 - Adhesion in mammary development
T2 - Novel roles for E-cadherin in individual and collective cell migration
AU - Shamir, Eliah R.
AU - Ewald, Andrew J.
N1 - Funding Information:
E. R. S. was supported by an Isaac and Lucille Hay Graduate Fellowship, endowed by Elizabeth “Betty” Hay. E. R. S. and A. J. E. were supported by a Research Scholar Grant (RSG-12-141-01-CSM) from the American Cancer Society, by funds from the NIH/NCI (P30 CA006973), and by a grant from the Breast Cancer Research Foundation. The authors thank Jamie Davies and David Garrod for stimulating discussions of epithelial identity and epithelial morphogenesis.
Publisher Copyright:
© 2015 Elsevier Inc.
PY - 2015
Y1 - 2015
N2 - Epithelial tissues are essential for barrier function, secretion, and regulation of fluid transport. Their function requires cell polarity and cell-cell adhesion, mediated through intercellular junctions. Conversely, disruption of adhesion and polarity is thought to drive cancer progression. The mammary gland is an important model for cell adhesion due to its postnatal hormonally regulated development; ducts undergo branching morphogenesis in response to steroid hormones during puberty. These hormonal signals induce a transition from simple to stratified architecture, initiated by asymmetric luminal cell divisions. Ductal elongation is accomplished by this multilayered, low-polarity epithelium, and polarity is reestablished as elongation ceases. The requirement for cell adhesion has been tested in 3D culture and in vivo, using gene deletion, knockdown, and misexpression in both developmental and homeostatic contexts. Attention has focused on E-cadherin, the major classical cadherin in luminal epithelial cells. Classic studies revealed a requirement for E-cadherin during lactation, and E-cadherin loss is widely posited to promote metastasis. However, recent findings demonstrated a broader requirement for E-cadherin during branching morphogenesis and homeostasis and also, surprisingly, in epithelial dissemination. These studies suggest that long-standing models of the role of adhesion in epithelial biology need to be revisited. Advances in inducible gene expression and knockdown, CRISPR/Cas9 technology, and fluorescent labeling of genetically modified cells offer the opportunity to test the roles of diverse adhesion systems and to develop a mechanistic understanding of how cell adhesion regulates development and cancer.
AB - Epithelial tissues are essential for barrier function, secretion, and regulation of fluid transport. Their function requires cell polarity and cell-cell adhesion, mediated through intercellular junctions. Conversely, disruption of adhesion and polarity is thought to drive cancer progression. The mammary gland is an important model for cell adhesion due to its postnatal hormonally regulated development; ducts undergo branching morphogenesis in response to steroid hormones during puberty. These hormonal signals induce a transition from simple to stratified architecture, initiated by asymmetric luminal cell divisions. Ductal elongation is accomplished by this multilayered, low-polarity epithelium, and polarity is reestablished as elongation ceases. The requirement for cell adhesion has been tested in 3D culture and in vivo, using gene deletion, knockdown, and misexpression in both developmental and homeostatic contexts. Attention has focused on E-cadherin, the major classical cadherin in luminal epithelial cells. Classic studies revealed a requirement for E-cadherin during lactation, and E-cadherin loss is widely posited to promote metastasis. However, recent findings demonstrated a broader requirement for E-cadherin during branching morphogenesis and homeostasis and also, surprisingly, in epithelial dissemination. These studies suggest that long-standing models of the role of adhesion in epithelial biology need to be revisited. Advances in inducible gene expression and knockdown, CRISPR/Cas9 technology, and fluorescent labeling of genetically modified cells offer the opportunity to test the roles of diverse adhesion systems and to develop a mechanistic understanding of how cell adhesion regulates development and cancer.
KW - Branching morphogenesis
KW - Breast cancer
KW - Cadherin switch
KW - E-cadherin
KW - Epithelial-mesenchymal transition
KW - Mammary epithelium
KW - Metastasis
KW - P-cadherin
UR - http://www.scopus.com/inward/record.url?scp=84926153078&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=84926153078&partnerID=8YFLogxK
U2 - 10.1016/bs.ctdb.2014.12.001
DO - 10.1016/bs.ctdb.2014.12.001
M3 - Chapter
C2 - 25733146
AN - SCOPUS:84926153078
T3 - Current Topics in Developmental Biology
SP - 353
EP - 382
BT - Current Topics in Developmental Biology
PB - Academic Press Inc.
ER -