FGF signaling regulates salivary gland branching morphogenesis by modulating cell adhesion

被引:7
作者
Ray, Ayan T. [1 ,2 ]
Soriano, Philippe [1 ]
机构
[1] Icahn Sch Med Mt Sinai, Dept Cell Dev & Regenerat Biol, New York, NY 10029 USA
[2] Enzo Life Sci, Farmingdale, NY 11735 USA
来源
DEVELOPMENT | 2023年 / 150卷 / 06期
关键词
FGF; Cell signaling; Branching morphogenesis; Salivary gland; Basement membrane; FIBROBLAST-GROWTH-FACTOR; MEMBRANE-LIKE SUBSTRATUM; SUBMANDIBULAR-GLAND; BASEMENT-MEMBRANE; EPITHELIAL MORPHOGENESIS; N-CADHERIN; MOUSE; EXPRESSION; MESENCHYME; MATRIX;
D O I
10.1242/dev.201293
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Loss of FGF signaling leads to defects in salivary gland branching, but the mechanisms underlying this phenotype remain largely unknown. We disrupted expression of Fgfr1 and Fgfr2 in salivary gland epithelial cells and found that both receptors function coordinately in regulating branching. Strikingly, branching morphogenesis in double knockouts is restored by Fgfr1 and Fgfr2 (Fgfr1/2) knock-in alleles incapable of engaging canonical RTK signaling, suggesting that additional FGF-dependent mechanisms play a role in salivary gland branching. Fgfr1/2 conditional null mutants showed defective cell-cell and cell-matrix adhesion, both of which have been shown to play instructive roles in salivary gland branching. Loss of FGF signaling led to disordered cell-basement membrane interactions in vivo as well as in organ culture. This was partially restored upon introducing Fgfr1/2 wild-type or signaling alleles that are incapable of eliciting canonical intracellular signaling. Together, our results identify non-canonical FGF signaling mechanisms that regulate branching morphogenesis through cell -adhesion processes.
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页数:12
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共 75 条
[1]   Epithelial Bmpr1a regulates differentiation and proliferation in postnatal hair follicles and is essential for tooth development [J].
Andl, T ;
Ahn, K ;
Kairo, A ;
Chu, EY ;
Wine-Lee, L ;
Reddy, ST ;
Croft, NJ ;
Cebra-Thomas, JA ;
Metzger, D ;
Chambon, P ;
Lyons, KM ;
Mishina, Y ;
Seykora, JT ;
Crenshaw, EB ;
Millar, SE .
DEVELOPMENT, 2004, 131 (10) :2257-2268
[2]   EMT: 2016 [J].
Angela Nieto, M. ;
Huang, Ruby Yun-Ju ;
Jackson, Rebecca A. ;
Thiery, Jean Paul .
CELL, 2016, 166 (01) :21-45
[3]   MONOCLONAL-ANTIBODY 9EG7 DEFINES A NOVEL BETA(1) INTEGRIN EPITOPE INDUCED BY SOLUBLE LIGAND AND MANGANESE, BUT INHIBITED BY CALCIUM [J].
BAZZONI, G ;
SHIH, DT ;
BUCK, CA ;
HEMLER, ME .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1995, 270 (43) :25570-25577
[4]   Genetic insights into the mechanisms of Fgf signaling [J].
Brewer, J. Richard ;
Mazot, Pierre ;
Soriano, Philippe .
GENES & DEVELOPMENT, 2016, 30 (07) :751-771
[5]   Fgfr1 regulates development through the combinatorial use of signaling proteins [J].
Brewer, J. Richard ;
Molotkov, Andrei ;
Mazot, Pierre ;
Hoch, Renee V. ;
Soriano, Philippe .
GENES & DEVELOPMENT, 2015, 29 (17) :1863-1874
[6]   Soluble dominant-negative receptor uncovers essential roles for fibroblast growth factors in multi-organ induction and patterning [J].
Celli, G ;
LaRochelle, WJ ;
Mackem, S ;
Sharp, R ;
Merlino, G .
EMBO JOURNAL, 1998, 17 (06) :1642-1655
[7]   Fgf10 and Sox9 are essential for the establishment of distal progenitor cells during mouse salivary gland development [J].
Chatzeli, Lemonia ;
Gaete, Marcia ;
Tucker, Abigail S. .
DEVELOPMENT, 2017, 144 (12) :2294-2305
[8]   FGF signaling regulates mesoderm cell fate specification and morphogenetic movement at the primitive streak [J].
Ciruna, B ;
Rossant, J .
DEVELOPMENTAL CELL, 2001, 1 (01) :37-49
[9]  
Clark JF, 2022, CURR TOP DEV BIOL, V149, P123, DOI 10.1016/bs.ctdb.2021.12.001
[10]   Patterning a Complex Organ: Branching Morphogenesis and Nephron Segmentation in Kidney Development [J].
Costantini, Frank ;
Kopan, Raphael .
DEVELOPMENTAL CELL, 2010, 18 (05) :698-712