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J Voskuil

Publications and source records attributed to J Voskuil.

3 recordsLinked to original sources

DYX1C1 functions in neuronal migration in developing neocortex.

Rodent homologues of two candidate dyslexia susceptibility genes, Kiaa0319 and Dcdc2, have been shown to play roles in neuronal migration in developing cerebral neocortex. This functional role is consistent with the hypothesis that dyslexia susceptibility is increased by interference with normal neural development. In this study we report that in utero RNA interference against the rat homolog of another candidate dyslexia susceptibility gene, DYX1C1, disrupts neuronal migration in developing neocortex. The disruption of migration can be rescued by concurrent overexpression of DYX1C1, indicating that the impairment is not due to off-target effects. Transfection of C- and N-terminal truncations of DYX1C1 shows that the C-terminal TPR domains determine DYX1C1 intracellular localization to cytoplasm and nucleus. RNAi rescue experiments using truncated versions of DYX1C1 further indicate that the C-terminus of DYX1C1 is necessary and sufficient to DYX1C1's function in migration. In conclusion, DYX1C1, similar to two other candidate dyslexia susceptibility genes, functions in neuronal migration in rat neocortex.

Analysis of Variance↗

Calcium in bacteria: a solution to which problem?

Calcium and calcium-binding proteins including those resembling calmodulin are implicated in numerous diverse processes in bacteria. These processes include chemotaxis, sporulation, virulence, the transport of sugars and proteins, phosphorylation, heat shock, the initiation of DNA replication, septation, nucleoid structure, nuclease activity and recombination, the stability of the envelope, and phospholipid synthesis and configuration. That such varied processes should have a common factor, calcium, suggests major underlying principles of calcium metabolism which have yet to be discovered.

Bacteria↗

Stimulation and inhibition of cell division in synchronized Escherichia coli.

Escherichia coli was synchronized by centrifugal elutriation. When grown in a Tris-based medium, addition of EDTA resulted in division about 20 min earlier (division of control at t = 75 min). EDTA addition caused a change in cell shape, with cells becoming narrower and longer, whereas the surface area to volume ratio increased. Irradiation with UV inhibited not only division and constriction, but also the increase in DAP incorporation found in dividing control cells. Possibly, division requires the construction of new polar caps, whereas premature division might involve remodeling of existing murein. In both cases, cell shape is presumed to be a relevant factor for division.

Cell Division↗