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G Alldus

Publications and source records attributed to G Alldus.

3 recordsLinked to original sources

Function of the Eph-related kinase rtk1 in patterning of the zebrafish forebrain.

Early during its development, the vertebrate brain is subdivided into regions that have distinct fates and correlate with the expression domains of regulatory genes, but little is known about the cell-cell interactions that establish this spatial pattern. Candidates for regulating such interactions are the Eph-related receptor tyrosine kinases (RTKs) which have spatially restricted expression in the developing brain. These RTKs may mediate cell-contact-dependent signalling by interacting with membrane-bound ligands, and have been implicated in axon repulsion and the segmental restriction of gene expression in the hindbrain, but nothing is known regarding their function in the rostral neural epithelium. Here we use a dominant-negative approach in the zebrafish embryo to interfere with the function of Rtk1, an Eph-related RTK expressed in the developing diencephalon. We find that expression of a truncated receptor leads to expansion of the eye field into diencephalic territory and loss of diencephalic structures, indicating a role for Rtk1 in patterning the developing forebrain.

Animals↗

Cell-cell interactions and segmentation in the developing vertebrate hindbrain.

During development of the vertebrate hindbrain, regulatory gene expression becomes precisely restricted to specific segments. Studies at the cellular and molecular levels suggest that establishment of this precise pattern of gene expression may involve a dynamic regulation of cell identity and a restriction of cell movement across rhombomere boundaries. Candidates for mediating such interactions are several members of the Eph-related receptor tyrosine kinase (RTK) family that have segmental expression in the hindbrain. Ligands for members of this RTK family are membrane-bound, and may therefore mediate cell contact-dependent signalling. We discuss the expression patterns of Eph-related receptors in the hindbrain and the potential roles that these may play in patterning.

Animals↗

Expression of truncated Sek-1 receptor tyrosine kinase disrupts the segmental restriction of gene expression in the Xenopus and zebrafish hindbrain.

During development of the vertebrate hindbrain regulatory gene expression is confined to precise segmental domains. Studies of cell lineage and gene expression suggest that establishment of these domains may involve a dynamic regulation of cell identity and restriction of cell movement between segments. We have taken a dominant negative approach to interfere with the function of Sek-1, a member of the Eph-related receptor tyrosine kinase family expressed in rhombomeres r3 and r5. In Xenopus and zebrafish embryos expressing truncated Sek-1, lacking kinase sequences, expression of r3/r5 markers occurs in adjacent even-numbered rhombomeres, in domains contiguous with r3 or r5. This disruption is rescued by full-length Sek-1, indicating a requirement for the kinase domain in the segmental restriction of gene expression. These data suggest that Sek-1, perhaps with other Eph-related receptors, is required for interactions that regulate the segmental identity or movement of cells.

Amino Acid Sequence↗