4.4 Article

Cells remain competent to respond to mesoderm-inducing signals present during gastrulation in Xenopus laevis

期刊

DEVELOPMENTAL BIOLOGY
卷 225, 期 1, 页码 226-240

出版社

ACADEMIC PRESS INC
DOI: 10.1006/dbio.2000.9769

关键词

cell fate; embryo; induction; gastrulation; morphogenesis; notochord; pattern formation; competence; Xenopus laevis

资金

  1. NCRR NIH HHS [5 P20 RR11805] Funding Source: Medline
  2. NICHD NIH HHS [HD25594] Funding Source: Medline
  3. NIGMS NIH HHS [S06 GM52588] Funding Source: Medline

向作者/读者索取更多资源

During gastrulation, the vertebrate embryo is patterned and shaped by complex signaling pathways and morphogenetic movements. One of the first regions defined during gastrulation is the prospective notochord, which exhibits specific cell behaviors that drive the extension of the embryonic axis. To examine the signals involved in notochord formation in Xenopus laevis and the competence of cells to respond to these signals, we performed cell transplantation experiments during gastrulation. Labeled cells from the prospective notochord, semitic mesoderm, ventrolateral mesoderm, neural ectoderm, and epidermis, between stages 9 (pregastrulation) and 12 (late gastrulation), were grafted into the prospective notochord region of the early gastrula. We show that cells from each region are competent to respond to notochord-inducing signals and differentiate into notochordal tissue. Cells from the prospective neural ectoderm are the most responsive to notochord-inducing signals, whereas cells from the ventrolateral and epidermal regions are the least responsive. We show that at the end of gastrulation, while transplanted cells lose their competence to form notochord, they remain competent to form somites. These results demonstrate that at the end of gastrulation cell fates are not restricted within germ layers. To determine whether notochord-inducing signals are present throughout gastrulation, grafts were made into progressively older host embryos. We found that regardless of the age of the host, grafted cells from each region give rise to notochordal tissue. This indicates that notochord-inducing signals are present throughout gastrulation and that these signals overlap with somite-inducing signals at the end of gastrulation. We conclude that it is the change of competence that restricts cells to specific tissues rather than the regulation of the inducing signals. (C) 2000 Academic Press.

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