Zebrafish fgf24functions withfgf8to promote posterior mesodermal development

Author:

Draper Bruce W.1,Stock David W.2,Kimmel Charles B.1

Affiliation:

1. Institute of Neuroscience, University of Oregon, Eugene, OR 97403, USA

2. Department of Environmental, Population and Organismic Biology, University of Colorado, Boulder, CO 80309, USA

Abstract

Fibroblast growth factor (Fgf) signaling plays an important role during development of posterior mesoderm in vertebrate embryos. Blocking Fgf signaling by expressing a dominant-negative Fgf receptor inhibits posterior mesoderm development. In mice, Fgf8 appears to be the principal ligand required for mesodermal development, as mouse Fgf8 mutants do not form mesoderm. In zebrafish, Fgf8 is encoded by the acerebellarlocus, and, similar to its mouse otholog, is expressed in early mesodermal precursors during gastrulation. However, zebrafish fgf8 mutants have only mild defects in posterior mesodermal development, suggesting that it is not the only Fgf ligand involved in the development of this tissue. We report here the identification of an fgf8-related gene in zebrafish, fgf24, that is co-expressed with fgf8 in mesodermal precursors during gastrulation. Using morpholino-based gene inactivation, we have analyzed the function of fgf24 during development. We found that inhibiting fgf24 function alone has no affect on the formation of posterior mesoderm. Conversely, inhibiting fgf24 function in embryos mutant for fgf8 blocks the formation of most posterior mesoderm. Thus, fgf8 and fgf24 are together required to promote posterior mesodermal development. We provide both phenotypic and genetic evidence that these Fgf signaling components interact with no tailand spadetail, two zebrafish T-box transcription factors that are required for the development of all posterior mesoderm. Last, we show that fgf24 is expressed in early fin bud mesenchyme and that inhibiting fgf24 function results in viable fish that lack pectoral fins.

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

Reference92 articles.

1. Amacher, S. L., Draper, B. W., Summers, B. R. and Kimmel, C. B. (2002). The zebrafish T-box genes no tail and spadetail are required for development of trunk and tail mesoderm and medial floor plate. Development129,3311-3323.

2. Amaya, E., Musci, T. J. and Kirschner, M. W.(1991). Expression of a dominant negative mutant of the FGF receptor disrupts mesoderm formation in Xenopus embryos. Cell66,257-270.

3. Amaya, E., Stein, P. A., Musci, T. J. and Kirschner, M. W.(1993). FGF signaling in the early specification of mesoderm in Xenopus. Development118,477-487.

4. Amemiya, C. T. and Zon, L. I. (1999). Generation of a zebrafish P1 artificial chromosome library. Genomics58,211-213.

5. Amores, A., Force, A., Yan, Y. L., Joly, L., Amemiya, C., Fritz,A., Ho, R. K., Langeland, J., Prince, V., Wang, Y. L. et al.(1998). Zebrafish hox clusters and vertebrate genome evolution. Science282,1711-1714.

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