Mesothelial mobilization in the developing lung and heart differs in timing, quantity, and pathway dependency

被引:11
作者
Luedtke, Timo H. [1 ]
Rudat, Carsten [1 ]
Kurz, Jennifer [1 ]
Haefner, Regine [1 ]
Greulich, Franziska [1 ]
Wojahn, Irina [1 ]
Aydogdu, Nurullah [1 ]
Mamo, Tamrat M. [1 ]
Kleppa, Marc-Jens [1 ]
Trowe, Mark-Oliver [1 ]
Bohnenpoll, Tobias [1 ]
Taketo, Makoto Mark [2 ]
Kispert, Andreas [1 ]
机构
[1] Hannover Med Sch, Inst Mol Biol, OE5250,Carl Neuberg Str 1, D-30625 Hannover, Germany
[2] Kyoto Univ, Grad Sch Med, Div Expt Therapeut, Kyoto, Japan
关键词
SMOOTH-MUSCLE-CELLS; BETA-CATENIN; MESENCHYMAL TRANSITION; PROGENITORS CONTRIBUTE; CORONARY-ARTERY; TGF-BETA; HEDGEHOG; LINEAGE; GROWTH; FIBROBLASTS;
D O I
10.1152/ajplung.00212.2018
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
The mesothelial lining of the lung, the visceral pleura, and of the heart, the epicardium, derive from a common multipotent precursor tissue, the mesothelium of the embryonic thoracic cavity that also contributes to organ-specific mesenchymal cell types. Insight into mesothelial mobilization and differentiation has prevailedin the developing heart while the mesenchymal transition and fate of the visceral pleura are poorly understood. Here, we use the fact that the early mesothelium of both the lung and the heart expresses the transcription factor gene Wt1, to comparatively analyze mesothelial mobilization in the two organs by a genetic cre-loxP-based conditional approach. We show that epicardial cells are mobilized in a large number between E12.5 and E14.5, whereas pleural mobilization occurs only sporadically and variably in few regions of the lung in a temporally highly confined manner shortly after E12.5. Mesothelium-specific inactivation of unique pathway components using a Wt1(creERT2) line excluded a requirement for canonical WNT, NOTCH, HH, TGFB, PDGFRA, and FGFR1/FGFR2 signaling in the mesenchymal transition of the visceral pleura but indicated a deleterious effect of activated WNT, NOTCH, and HH signaling on lung development. Epicardial mobilization was negatively impacted on by loss of HH, PDGFRA, FGFR1/2 signaling. Epicardial overactivation of WNT, NOTCH, and HH disturbed epicardial and myocardial integrity. We conclude that mesothelial mobilization in the developing lung and heart differs in timing, quantity and pathway dependency, indicating the organ specificity of the program.
引用
收藏
页码:L767 / L783
页数:17
相关论文
共 58 条
[1]   The bHLH transcription factor Tcf21 is required for lineage-specific EMT of cardiac fibroblast progenitors [J].
Acharya, Asha ;
Baek, Seung Tae ;
Huang, Guo ;
Eskiocak, Banu ;
Goetsch, Sean ;
Sung, Caroline Y. ;
Banfi, Serena ;
Sauer, Marion F. ;
Olsen, Gregory S. ;
Duffield, Jeremy S. ;
Olson, Eric N. ;
Tallquist, Michelle D. .
DEVELOPMENT, 2012, 139 (12) :2139-2149
[2]   Retinoic acid stimulates myocardial expansion by induction of hepatic erythropoietin which activates epicardial Igf2 [J].
Brade, Thomas ;
Kumar, Sandeep ;
Cunningham, Thomas J. ;
Chatzi, Christina ;
Zhao, Xianling ;
Cavallero, Susana ;
Li, Peng ;
Sucov, Henry M. ;
Ruiz-Lozano, Pilar ;
Duester, Gregg .
DEVELOPMENT, 2011, 138 (01) :139-148
[3]  
Brault V, 2001, DEVELOPMENT, V128, P1253
[4]   A myocardial lineage derives from Tbx18 epicardial cells [J].
Cai, Chen-Leng ;
Martin, Jody C. ;
Sun, Yunfu ;
Cui, Li ;
Wang, Lianchun ;
Ouyang, Kunfu ;
Yang, Lei ;
Bu, Lei ;
Liang, Xingqun ;
Zhang, Xiaoxue ;
Stallcup, William B. ;
Denton, Christopher P. ;
McCulloch, Andrew ;
Chen, Ju ;
Evans, Sylvia M. .
NATURE, 2008, 454 (7200) :104-U4
[5]   Wt1-expressing progenitors contribute to multiple tissues in the developing lung [J].
Cano, Elena ;
Carmona, Rita ;
Munoz-Chapuli, Ramon .
AMERICAN JOURNAL OF PHYSIOLOGY-LUNG CELLULAR AND MOLECULAR PHYSIOLOGY, 2013, 305 (04) :L322-L332
[6]   Tbx18 and the fate of epicardial progenitors [J].
Christoffels, Vincent M. ;
Grieskamp, Thomas ;
Norden, Julia ;
Mommersteeg, Mathilda T. M. ;
Rudat, Carsten ;
Kispert, Andreas .
NATURE, 2009, 458 (7240) :E8-E9
[7]   Differential requirements for Smad4 in TGFβ-dependent patterning of the early mouse embryo [J].
Chu, GC ;
Dunn, NR ;
Anderson, DC ;
Oxburgh, L ;
Robertson, EJ .
DEVELOPMENT, 2004, 131 (15) :3501-3512
[8]   Transforming growth factor-β induces loss of epithelial character and smooth muscle cell differentiation in epicardial cells [J].
Compton, LA ;
Potash, DA ;
Mundell, NA ;
Barnett, JV .
DEVELOPMENTAL DYNAMICS, 2006, 235 (01) :82-93
[9]   Coronary vessel development is dependent on the type III transforming growth factor β receptor [J].
Compton, Leigh A. ;
Potash, Dru A. ;
Brown, Christopher B. ;
Barnett, Joey V. .
CIRCULATION RESEARCH, 2007, 101 (08) :784-791
[10]   Common epicardial origin of coronary vascular smooth muscle, perivascular fibroblasts, and intermyocardial fibroblasts in the avian heart [J].
Dettman, RW ;
Denetclaw, W ;
Ordahl, CP ;
Bristow, J .
DEVELOPMENTAL BIOLOGY, 1998, 193 (02) :169-181