Mesoderm migration in Drosophila is a multi-step process requiring FGF signaling and integrin activity

被引:61
作者
McMahon, Amy [1 ]
Reeves, Gregory T. [1 ]
Supatto, Willy [1 ]
Stathopoulos, Angelike [1 ]
机构
[1] CALTECH, Div Biol, Pasadena, CA 91125 USA
来源
DEVELOPMENT | 2010年 / 137卷 / 13期
关键词
Fibroblast growth factors; Cell migration; Intercalation; In vivo imaging; COLLECTIVE CELL-MIGRATION; SHAPE CHANGES; EMBRYONIC-DEVELOPMENT; PS INTEGRINS; MORPHOGENESIS; GASTRULATION; ADHESION; RAP1; HEARTLESS; RNA;
D O I
10.1242/dev.051573
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
Migration is a complex, dynamic process that has largely been studied using qualitative or static approaches. As technology has improved, we can now take quantitative approaches towards understanding cell migration using in vivo imaging and tracking analyses. In this manner, we have established a four-step model of mesoderm migration during Drosophila gastrulation: (I) mesodermal tube formation, (II) collapse of the mesoderm, (III) dorsal migration and spreading and (IV) monolayer formation. Our data provide evidence that these steps are temporally distinct and that each might require different chemical inputs. To support this, we analyzed the role of fibroblast growth factor (FGF) signaling, in particular the function of two Drosophila FGF ligands, Pyramus and Thisbe, during mesoderm migration. We determined that FGF signaling through both ligands controls movements in the radial direction. Thisbe is required for the initial collapse of the mesoderm onto the ectoderm, whereas both Pyramus and Thisbe are required for monolayer formation. In addition, we uncovered that the GTPase Rap1 regulates radial movement of cells and localization of the beta-integrin subunit, Myospheroid, which is also required for monolayer formation. Our analyses suggest that distinct signals influence particular movements, as we found that FGF signaling is involved in controlling collapse and monolayer formation but not dorsal movement, whereas integrins are required to support monolayer formation only and not earlier movements. Our work demonstrates that complex cell migration is not necessarily a fluid process, but suggests instead that different types of movements are directed by distinct inputs in a stepwise manner.
引用
收藏
页码:2167 / 2175
页数:9
相关论文
共 55 条
[1]
Regulatory network for cell shape changes during Drosophila ventral furrow formation [J].
Aracena, J ;
González, M ;
Zuñiga, A ;
Mendez, MA ;
Cambiazo, V .
JOURNAL OF THEORETICAL BIOLOGY, 2006, 239 (01) :49-62
[2]
The Rap1 GTPase functions as a regulator of morphogenesis in vivo [J].
Asha, H ;
de Ruiter, ND ;
Wang, MG ;
Hariharan, IK .
EMBO JOURNAL, 1999, 18 (03) :605-615
[3]
Heartless, a Drosophila FGF receptor homolog, is essential for cell migration and establishment of several mesodermal lineages [J].
Beiman, M ;
Shilo, BZ ;
Volk, T .
GENES & DEVELOPMENT, 1996, 10 (23) :2993-3002
[4]
Control of cell adhesion dynamics by Rap1 signaling [J].
Boettner, Benjamin ;
Van Aelst, Linda .
CURRENT OPINION IN CELL BIOLOGY, 2009, 21 (05) :684-693
[5]
Linking Rap to cell adhesion [J].
Bos, JL .
CURRENT OPINION IN CELL BIOLOGY, 2005, 17 (02) :123-128
[6]
Cell-cell adhesion via the ECM: integrin genetics in fly and worm [J].
Brown, NH .
MATRIX BIOLOGY, 2000, 19 (03) :191-201
[7]
Role of the small GTPase Rap1 for integrin activity regulation in endothelial cells and angiogenesis [J].
Carmona, Guillaume ;
Goettig, Stephan ;
Orlandi, Alessia ;
Scheele, Juergen ;
Baeuerle, Tobias ;
Jugold, Manfred ;
Kiessling, Fabian ;
Henschler, Reinhard ;
Zeiher, Andreas M. ;
Dimmeler, Stefanie ;
Chavakis, Emmanouil .
BLOOD, 2009, 113 (02) :488-497
[8]
Chou TB, 1996, GENETICS, V144, P1673
[9]
Collective behavior in cancer cell populations [J].
Deisboeck, Thomas S. ;
Couzin, Iain D. .
BIOESSAYS, 2009, 31 (02) :190-197
[10]
Integrins and the actin cytoskeleton [J].
Delon, Isabelle ;
Brown, Nicholas H. .
CURRENT OPINION IN CELL BIOLOGY, 2007, 19 (01) :43-50