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W Diehl-Jones

Publications and source records attributed to W Diehl-Jones.

3 recordsLinked to original sources

Localization of vasa protein to the Drosophila pole plasm is independent of its RNA-binding and helicase activities.

The Drosophila gene vasa encodes a DEAD-box protein, which is localized during early oogenesis to the perinuclear region of the nurse cells and later to the pole plasm at the posterior end of the oocyte. Posterior localization of vasa protein depends upon the functions of four genes: capu, spir, osk and stau. We have found that localization of vasa to the perinuclear nuage is abolished in most vas alleles, but is unaffected by mutations in four genes required upstream for its pole plasm localization. Thus localization of vasa to the nuage particles is independent of the pole plasm assembly pathway. Furthermore, electron-dense nuage particles are less abundant in the cytoplasm of nurse cells from vas mutants that fail to exhibit perinuclear localization, suggesting that the formation of the nuage depends upon vas function. Eight of nine vas point mutations cause codon substitutions in a region conserved among DEAD-box genes. The proteins from two mutant alleles that retain the capacity to localize to the posterior pole of the oocyte, vasO14 and vasO11, are both severely reduced in RNA-binding and -unwinding activity as compared to the wild-type protein on a variety of RNA substrates including in vitro synthesized pole plasm RNAs. Initial recruitment of vasa to the pole plasm must consequently depend upon protein-protein interactions but, once localized, vasa must bind to RNA to mediate germ cell formation.

Adenosine Triphosphate↗

Ionic basis of bioelectric currents during oogenesis in an insect.

Transmembrane bioelectric currents around insect ovaries are well documented but as yet poorly understood. In the present study we describe the ionic basis of such currents around the telotrophic ovariole of Rhodnius prolixus using a two-dimensional vibrating probe and ion-substituted media and inhibitors. Current efflux from the base and apex of the terminal follicle is carried by electrogenic Na+ transport, and the return circuit over the middle of the terminal follicle is the result of Na+ influx/Cl- efflux. We further show that a transient inward current at the apex of midvitellogenic terminal follicles is carried by Ca2+ ions and broadly correlates both spatially and temporally with trophic cord closure. A distinct current loop over the tropharium arises at the base via electrogenic Na+ efflux and returns over the middle and apical regions of the tropharium via Na+ and Ca2+ influx. These findings serve as a basis for the further dissection of the physiological relevance of transcellular ion currents around developing insect ovarian follicles.

Adenosine Triphosphatases↗

Spatial and temporal transcellular current patterns during oogenesis.

We have used the two-dimensional vibrating probe to examine spatial and temporal patterns in the transcellular current flow around telotrophic ovarioles of the insect Rhodnius prolixus. We demonstrate a dynamic pattern of currents which correlates with various stages of vitellogenesis. Asymmetries exist in the radial current pattern around intact ovarioles, particularly around the terminal follicle, and may correlate with early developmental axes. The extra-cellular current pattern is largely reflected by a similar, though weaker pattern of currents over the germ cell membranes, indicating that both germ cell and somatic cell membranes are involved in current generation. Current enters previtellogenic oocytes and leaves oocytes entering vitellogenesis. We speculate that current reversal and loss of trophic cord contact may represent an electrophysiological feedback control mechanism during oogenesis.

Animals↗