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K D Curtin

Publications and source records attributed to K D Curtin.

7 recordsLinked to original sources

Nested transcripts of gap junction gene have distinct expression patterns.

The shaking B locus (shakB, or Passover) codes for structural molecules of gap junctions in Drosophila. This report describes the complex set of transcripts from the shakB locus. A nested set of five transcripts is described. The transcripts share 3' exons, but each has its own 5' exon. The transcripts are arrayed as a series in the genomic DNA stretching over 60 kb. The 5' end of each successive transcript lies further proximal on the chromosome. Each new transcript shares all the 3' exons with the one preceding it, but adds one or two more 5' exons. The different transcripts are expressed in a wide variety of locations in the nervous system and in non-neural tissues. Some tissues express more than one transcript, and the expression pattern of each is developmentally regulated. Within the adult central nervous system (CNS), these transcripts have an expression pattern that is restricted to the giant fiber system (GFS). The GFS is a small set of neurons which mediates the visually induced escape jump. shakB is required for function of the GFS electrical synapses. The transcript previously defined as active in the giant fiber is not, in fact, expressed in that cell. Instead, we find that another transcript, shakB(N3), and perhaps shakB(N4) as well, is expressed in the GFS; this transcript is not expressed elsewhere in the adult CNS. Two other transcripts, shakB(N1) and shakB(N2), are expressed in the optic lamina but not elsewhere in the CNS. This expression pattern explains the neurophysiological and behavioral defects in escape exhibited in mutants of shakB.

Alternative Splicing↗

Drosophila has several genes for gap junction proteins.

The Innexin gene family forms gap junctions in invertebrates. Many genes in this family have been identified in Caenorhabditis elegans, but only two in Drosophila. We have used PCR techniques to identify three new members of this family from Drosophila. These are designated pas-related proteins (prp) 6, 7, and 33. The putative proteins coded by these new genes show 25-35% identity and 39-66% similarity to other Drosophila innexins and share a similar hydrophobicity profile. The genes form two small clusters on the X-chromosome, with three of the genes sitting within 10kb of each other. The closeness in sequence and location suggests an evolutionary origin of these genes via local duplication. In situ hybridization shows expression in the CNS, gut and epidermis. Each gene has a distinct pattern of expression in different tissues at different developmental times. However, parts of the expression patterns overlap, especially for prp33 and ogre which may be expressed from the same transcriptional enhancers. This suggest that the Prp33 and Ogre proteins may join in forming heteromeric gap junction channels.

Amino Acid Sequence↗

The timSL mutant of the Drosophila rhythm gene timeless manifests allele-specific interactions with period gene mutants.

To identify new components of the Drosophila circadian clock, we screened chemically mutagenized flies for suppressors or enhancers of the long periods characteristic of the period (per) mutant allele perL. We isolated a novel mutant that maps to the rhythm gene timeless (tim). This novel allele, timSL, alters the temporal pattern of perL protein nuclear localization and restores temperature compensation to perL flies. timSL more generally manifests specific interactions with different per alleles. The identification of this first period-altering tim allele provides further evidence that TIM is a major component of the clock, and the allele-specific interactions with PER provide evidence that the PER/TIM heterodimer is a unit of circadian function. Although timSL fails to restore PER-L/TIM temperature insensitivity in yeast, it alters the TIM phosphorylation pattern during the late night. The effects on phosphorylation suggest that timSL functions as a partial bypass suppressor of perL and provide evidence that the TIM phosphorylation program contributes to the circadian timekeeping mechanism.

Alleles↗

PER protein interactions and temperature compensation of a circadian clock in Drosophila.

The periods of circadian clocks are relatively temperature-insensitive. Indeed, the perL mutation in the Drosophila melanogaster period gene, a central component of the clock, affects temperature compensation as well as period length. The per protein (PER) contains a dimerization domain (PAS) within which the perL mutation is located. Amino acid substitutions at the perL position rendered PER dimerization temperature-sensitive. In addition, another region of PER interacted with PAS, and the perL mutation enhanced this putative intramolecular interaction, which may compete with PAS-PAS intermolecular interactions. Therefore, temperature compensation of circadian period in Drosophila may be due in part to temperature-independent PER activity, which is based on competition between inter- and intramolecular interactions with similar temperature coefficients.

Amino Acid Sequence↗

Temporally regulated nuclear entry of the Drosophila period protein contributes to the circadian clock.

The Drosophila period protein (PER) is a predominantly nuclear protein and a likely component of a circadian clock. PER is required for daily oscillations in the transcription of its own gene and thus participates in a circadian feedback loop. In this study, key pacemaker neurons of the Drosophila brain were examined to determine whether the subcellular distribution of PER changes with the time of day. Indeed, PER was found to accumulate in the cytoplasm for several hours before entering the nucleus during a narrow time window. Three long-period mutations (perL) cause a delay in the timing of nuclear translocation and a further delay at elevated temperature. The data indicate that regulation of PER nuclear entry is critical for circadian oscillations by providing a necessary temporal delay between PER synthesis and its effect on transcription.

Animals↗

Altered properties of the herpes simplex virus ICP8 DNA-binding protein in cells infected with ICP27 mutant viruses.

Herpes simplex virus mutant strains that fail to encode a functional ICP27 polypeptide show a reduction in their ability to replicate viral DNA compared to wild-type virus. To define the nature of this defect, we examined the formation of viral DNA replication structures in the nucleus of cells infected with these mutant viruses. In cells infected with wild type HSV, viral DNA replication occurs in replication compartments. If viral DNA replication is blocked during infection, a subset of these proteins are found in a punctate staining pattern termed prereplicative sites. ICP8, an essential DNA replication protein, is required for formation of these structures and for localization of polymerase and other proteins to these structures. To study the assembly of replication proteins in cells infected with ICP27 defective mutants, we examined the intranuclear localization of ICP8. Our results suggest that assembly of replication proteins into active sites is defective in a majority of cells infected with mutant virus encoding altered ICP27 proteins. Furthermore, this defect in assembly occurs at an early step in localization of replication proteins, possibly due to an observed change in the conformation of ICP8. Last, only actively dividing cells at a certain stage of the cell cycle are able to form replication compartments when infected with ICP27 defective mutants. The residual DNA synthesis seen with these mutants occurs in a defined subpopulation of infected cells. Thus, ICP27 may promote the proper folding and/or localization of ICP8.

Animals↗