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D A Kane

Publications and source records attributed to D A Kane.

10 recordsLinked to original sources

A mutation that changes cell movement and cell fate in the zebrafish embryo.

The study of developmental patterning has been facilitated by the availability of mutations that produce changes in cell fate, in animals such as Caenorhabditis elegans and Drosophila melanogaster. We now describe a zygotic lethal mutation in the zebrafish, Brachydanio rerio, that also changes how particular embryonic cells develop. Severe pattern deficiencies are observed that are restricted to a single body region, the trunk. The mutation may directly affect mesoderm, as somites do not form in the trunk. Head and tail structures, including tail somites, are relatively undisturbed. The earliest detected expression of the mutation is during gastrulation, when movements of mesodermal cells occur incorrectly. We injected prospective trunk mesodermal cells with lineage tracer dye and observed that in mutants these cells may enter a new body region, the tail, and there may express a new fate appropriate for the changed position.

Animals

Cell-autonomous action of zebrafish spt-1 mutation in specific mesodermal precursors.

In zebrafish, as in Xenopus, the well-orchestrated cell movements of gastrulation can be dissected into several components, including epiboly, involution, convergence and extension. Embryos homozygous for the recessive lethal mutation spt-1(b104) or 'spadetail' have a complex set of defects in the trunk of the embryo that may arise secondarily after loss of one of these movements, convergence, from those precursors that would normally have given rise to trunk somitic mesoderm. We have now tested this hypothesis by transplanting cells between wild-type and mutant embryos, to identify the cells that spt-1 affects directly. Our results show that the mutation autonomously affects only those mesodermal precursors located along the lateral margin of the early gastrula blastoderm. Other mesodermal cells and all ectodermal precursors seem not to require function of the wild-type gene. Our findings reveal an unexpectedly delicate genetic control of vertebrate gastrulation.

Animals

Mitotic domains in the early embryo of the zebrafish.

At the midblastula transition in the zebrafish, three, and only three, spatially separate mitotic domains arise with distinctive cycle lengths and rhythms. As in Drosophila and at about the equivalent stage, the mitotic domains reflect the fate map, but they do so only very crudely: two are extraembryonic and the third forms the entire embryo. The domains appear not to subdivide during gastrulation, when the germ layers form and when cells probably commit to their eventual fates. The domains may signal specification of morphogenesis rather than cell fate, because, shortly after they appear, each assumes a different role during epiboly, the first morphogenetic movement of the embryo. During meroblastic cleavage, and continuing in the early blastula, zebrafish blastomeres divide rapidly and synchronously. At the time of the tenth cleavage, the beginning of the midblastula transition, the cell cycle lengthens, and, as in Xenopus and Drosophila, cycle length comes under nucleocytoplasmic control (D.A.K. and C.B.K., manuscript in preparation). This nucleocytoplasmic control seems to be maintained during cycle lengthening in the next 2 or 3 cycles, comprising a midblastula transition period. We now show that functionally distinct subsets of cells that arise during this period have reproducibly different mitotic cycle lengths.

Animals