Derivation of lung mesenchymal lineages from the fetal mesothelium requires hedgehog signaling for mesothelial cell entry

被引:81
作者
Dixit, Radhika [1 ]
Ai, Xingbin [1 ]
Fine, Alan [1 ]
机构
[1] Boston Univ, Sch Med, Dept Med, Ctr Pulm, Boston, MA 02118 USA
来源
DEVELOPMENT | 2013年 / 140卷 / 21期
基金
美国国家卫生研究院;
关键词
Mesothelium; Hedgehog (Hh); Lung mesenchyme; Mouse; EARLY KIDNEY DEVELOPMENT; SMOOTH-MUSCLE-CELLS; SONIC HEDGEHOG; ACTIVATION; SHH; VASCULATURE; PATHWAY; WT1;
D O I
10.1242/dev.098079
中图分类号
Q [生物科学];
学科分类号
090105 [作物生产系统与生态工程];
摘要
Recent studies have shown that mesothelial progenitors contribute to mesenchymal lineages of developing organs. To what extent the overlying mesothelium contributes to lung development remains unknown. To rigorously address this question, we employed Wt1(CreERT2/+) mice for high-fidelity lineage tracing after confirming that Cre recombinase was mesothelial specific and faithfully recapitulated endogenous Wilms' tumor 1 (Wt1) gene expression. We visualized WT1(+) mesothelial cell entry into the lung by live imaging and identified their progenies in subpopulations of bronchial smooth muscle cells, vascular smooth muscle cells and desmin(+) fibroblasts by lineage tagging. Derivation of these lineages was only observed with Cre recombinase activation during early lung development. Using loss-of-function assays in organ cultures, and targeted mesothelial-restricted hedgehog loss-of-function mice, we demonstrated that mesothelial cell movement into the lung requires the direct action of hedgehog signaling. By contrast, hedgehog signaling was not required for fetal mesothelial heart entry. These findings further support a paradigm wherein the mesothelium is a source of progenitors for mesenchymal lineages during organogenesis and indicate that signals controlling mesothelial cell entry are organ specific.
引用
收藏
页码:4398 / 4406
页数:9
相关论文
共 27 条
[1]
In vivo analysis of quiescent adult neural stem cells responding to Sonic hedgehog [J].
Ahn, S ;
Joyner, AL .
NATURE, 2005, 437 (7060) :894-897
[2]
Substrate specificity and domain functions of extracellular heparan sulfate 6-O-endosulfatases, QSulf1 and QSulf2 [J].
Ai, XB ;
Do, AT ;
Kusche-Gullberg, M ;
Lindahl, U ;
Lu, K ;
Emerson, CP .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2006, 281 (08) :4969-4976
[3]
Septum Transversum-Derived Mesothelium Gives Rise to Hepatic Stellate Cells and Perivascular Mesenchymal Cells in Developing Mouse Liver [J].
Asahina, Kinji ;
Zhou, Bin ;
Pu, William T. ;
Tsukamoto, Hidekazu .
HEPATOLOGY, 2011, 53 (03) :983-995
[4]
Bai CB, 2002, DEVELOPMENT, V129, P4753
[5]
Bellusci S, 1997, DEVELOPMENT, V124, P53
[6]
The morphogen Sonic hedgehog is an axonal chemoattractant that collaborates with Netrin-1 in midline axon guidance [J].
Charron, F ;
Stein, E ;
Jeong, J ;
McMahon, AP ;
Tessier-Lavigne, M .
CELL, 2003, 113 (01) :11-23
[7]
Sonic hedgehog is a potent chemoattractant for human monocytes: diabetes mellitus inhibits Sonic hedgehog-induced monocyte chemotaxis [J].
Dunaeva, Marina ;
Voo, Stefan ;
van Oosterhoud, Carolien ;
Waltenberger, Johannes .
BASIC RESEARCH IN CARDIOLOGY, 2010, 105 (01) :61-71
[8]
Angioblast-mesenchyme induction of early kidney development is mediated by Wt1 and Vegfa [J].
Gao, XB ;
Chen, X ;
Taglienti, M ;
Rumballe, B ;
Little, MH ;
Kreidberg, JA .
DEVELOPMENT, 2005, 132 (24) :5437-5449
[9]
Radial Construction of an Arterial Wall [J].
Greif, Daniel M. ;
Kumar, Maya ;
Lighthouse, Janet K. ;
Hum, Justine ;
An, Andrew ;
Ding, Ling ;
Red-Horse, Kristy ;
Espinoza, F. Heman ;
Olson, Lorin ;
Offermanns, Stefan ;
Krasnow, Mark A. .
DEVELOPMENTAL CELL, 2012, 23 (03) :482-493
[10]
Genomic characterization of Wilms' tumor suppressor 1 targets in nephron progenitor cells during kidney development [J].
Hartwig, Sunny ;
Ho, Jacqueline ;
Pandey, Priyanka ;
MacIsaac, Kenzie ;
Taglienti, Mary ;
Xiang, Michael ;
Alterovitz, Gil ;
Ramoni, Marco ;
Fraenkel, Ernest ;
Kreidberg, Jordan A. .
DEVELOPMENT, 2010, 137 (07) :1189-1203