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1.
J Biol Chem ; 285(22): 17089-97, 2010 May 28.
Article in English | MEDLINE | ID: mdl-20351114

ABSTRACT

Living organisms have evolved intricate systems to harvest trace elements from the environment, to control their intracellular levels, and to ensure adequate delivery to the various organs and cellular compartments. Copper is one of these trace elements. It is at the same time essential for life but also highly toxic, not least because it facilitates the generation of reactive oxygen species. In mammals, copper uptake in the intestine and copper delivery into other organs are mediated by the copper importer Ctr1. Drosophila has three Ctr1 homologs: Ctr1A, Ctr1B, and Ctr1C. Earlier work has shown that Ctr1A is an essential gene that is ubiquitously expressed throughout development, whereas Ctr1B is responsible for efficient copper uptake in the intestine. Here, we characterize the function of Ctr1C and show that it functions as a copper importer in the male germline, specifically in maturing spermatocytes and mature sperm. We further demonstrate that loss of Ctr1C in a Ctr1B mutant background results in progressive loss of male fertility that can be rescued by copper supplementation to the food. These findings hint at a link between copper and male fertility, which might also explain the high Ctr1 expression in mature mammalian spermatozoa. In both mammals and Drosophila, the X chromosome is known to be inactivated in the male germline. In accordance with such a scenario, we provide evidence that in Drosophila, the autosomal Ctr1C gene originated as a retrogene copy of the X-linked Ctr1A, thus maintaining copper delivery during male spermatogenesis.


Subject(s)
Cation Transport Proteins/pharmacology , Copper/metabolism , Drosophila Proteins/pharmacology , Fertility/genetics , Animals , Animals, Genetically Modified , Biological Transport , Cation Transport Proteins/genetics , Copper Transport Proteins , Crosses, Genetic , Drosophila Proteins/genetics , Drosophila melanogaster , Female , Gene Expression Regulation , Male , Models, Biological , Reproduction , Spermatocytes/metabolism , Spermatozoa/metabolism , X Chromosome Inactivation
2.
Mol Cell Biol ; 26(6): 2286-96, 2006 Mar.
Article in English | MEDLINE | ID: mdl-16508004

ABSTRACT

Metallothioneins are ubiquitous, small, cysteine-rich proteins with the ability to bind heavy metals. In spite of their biochemical characterization, their in vivo function remains elusive. Here, we report the generation of a metallothionein gene family knockout in Drosophila melanogaster by targeted disruption of all four genes (MtnA to -D). These flies are viable if raised in standard laboratory food. During development, however, they are highly sensitive to copper, cadmium, and (to a lesser extent) zinc load. Metallothionein expression is particularly important for male viability; while copper load during development affects males and females equally, adult males lacking metallothioneins display a severely reduced life span, possibly due to copper-mediated oxidative stress. Using various reporter gene constructs, we find that different metallothioneins are expressed with virtually the same tissue specificity in larvae, notably in the intestinal tract at sites of metal accumulation, including the midgut's "copper cells." The same expression pattern is observed with a synthetic minipromoter consisting only of four tandem metal response elements. From these and other experiments, we conclude that tissue specificity of metallothionein expression is a consequence, rather than a cause, of metal distribution in the organism. The bright orange luminescence of copper accumulated in copper cells of the midgut is severely reduced in the metallothionein gene family knockout, as well as in mutants of metal-responsive transcription factor 1 (MTF-1), the main regulator of metallothionein expression. This indicates that an in vivo metallothionein-copper complex forms the basis of this luminescence. Strikingly, metallothionein mutants show an increased, MTF-1-dependent induction of metallothionein promoters in response to copper, cadmium, silver, zinc, and mercury. We conclude that free metal, but not metallothionein-bound metal, triggers the activation of MTF-1 and that metallothioneins regulate their own expression by a negative feedback loop.


Subject(s)
Copper/metabolism , Homeostasis/genetics , Inactivation, Metabolic/genetics , Metallothionein/genetics , Metallothionein/metabolism , Aging/genetics , Animals , Animals, Genetically Modified , Cadmium/metabolism , Copper/pharmacology , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism , Drosophila Proteins/genetics , Drosophila Proteins/metabolism , Drosophila melanogaster/drug effects , Drosophila melanogaster/genetics , Drosophila melanogaster/metabolism , Female , Gene Expression Regulation , Luminescence , Male , Mercury/metabolism , Mercury/pharmacology , Multigene Family , Recombination, Genetic , Response Elements , Transcription Factors/genetics , Transcription Factors/metabolism , Transcription Factor MTF-1
3.
BMC Dev Biol ; 8: 68, 2008 Jun 27.
Article in English | MEDLINE | ID: mdl-18588663

ABSTRACT

BACKGROUND: Metal-responsive transcription factor 1 (MTF-1), which binds to metal response elements (MREs), plays a central role in transition metal detoxification and homeostasis. A Drosophila interactome analysis revealed two candidate dMTF-1 interactors, both of which are related to the small regulatory protein Dumpy-30 (Dpy-30) of the worm C. elegans. Dpy-30 is the founding member of a protein family involved in chromatin modifications, notably histone methylation. Mutants affect mating type in yeast and male mating in C. elegans. RESULTS: Constitutive expression of the stronger interactor, Dpy-30L1 (CG6444), in transgenic flies inhibits MTF-1 activity and results in elevated sensitivity to Cd(II) and Zn(II), an effect that could be rescued by co-overexpression of dMTF-1. Electrophoretic mobility shift assays (EMSA) suggest that Dpy-30L1 interferes with the binding of MTF-1 to its cognate MRE binding site. Dpy-30L1 is expressed in the larval brain, gonads, imaginal discs, salivary glands and in the brain, testes, ovaries and salivary glands of adult flies. Expression of the second interactor, Dpy-30L2 (CG11591), is restricted to larval male gonads, and to the testes of adult males. Consistent with these findings, dpy-30-like transcripts are also prominently expressed in mouse testes. Targeted gene disruption by homologous recombination revealed that dpy-30L1 knockout flies are viable and show no overt disruption of metal homeostasis. In contrast, the knockout of the male-specific dpy-30L2 gene results in male sterility, as does the double knockout of dpy-30L1 and dpy-30L2. A closer inspection showed that Dpy-30L2 is expressed in elongated spermatids but not in early or mature sperm. Mutant sperm had impaired motility and failed to accumulate in sperm storage organs of females. CONCLUSION: Our studies help to elucidate the physiological roles of the Dumpy-30 proteins, which are conserved from yeast to humans and typically act in concert with other nuclear proteins to modify chromatin structure and gene expression. The results from these studies reveal an inhibitory effect of Dpy-30L1 on MTF-1 and an essential role for Dpy-30L2 in male fertility.


Subject(s)
DNA-Binding Proteins/physiology , Drosophila Proteins/physiology , Transcription Factors/physiology , Animals , Drosophila , Female , Male , Mice , Protein Binding , Response Elements , Spermatozoa/cytology , Tissue Distribution , Transcription Factor MTF-1
4.
J Biol Chem ; 279(23): 24540-51, 2004 Jun 04.
Article in English | MEDLINE | ID: mdl-15037622

ABSTRACT

The plant glutathione S-transferase BI-GST has been identified as a potent inhibitor of Bax lethality in yeast, a phenotype associated with oxidative stress and disruption of mitochondrial functions. Screening of a tomato two-hybrid library for BI-GST interacting proteins identified five homologous Tau class GSTs, which readily form heterodimers between them and BI-GST. All six LeGSTUs were found to be able to protect yeast cells from prooxidant-induced cell death. The efficiency of each LeGSTU was prooxidant-specific, indicating a different role for each LeGSTU in the oxidative stress-response mechanism. The prooxidant protective effect of all six proteins was suppressed in the absence of YAP1, a transcription factor that regulates hydroperoxide homeostasis in Saccharomyces cerevisiae, suggesting a role for the LeGSTUs in the context of the YAP1-dependent stress-responsive machinery. The different LeGSTUs exhibited varied substrate specificity and showed activity against oxidative stress by-products, indicating that their prooxidant protective function is likely related to the minimization of oxidative damage. Taken together, these results indicate that Tau class GSTs participate in a broad network of catalytic and regulatory functions involved in the oxidative stress response.


Subject(s)
Glutathione Transferase/physiology , Oxidative Stress , Proto-Oncogene Proteins c-bcl-2 , Amino Acid Sequence , Catalysis , Dimerization , Dose-Response Relationship, Drug , Glutathione/chemistry , Glutathione/metabolism , Glutathione Disulfide/chemistry , Glutathione Transferase/metabolism , Hydrogen-Ion Concentration , Kinetics , Solanum lycopersicum/metabolism , Models, Molecular , Molecular Sequence Data , Oxidants/chemistry , Oxidants/metabolism , Phenotype , Precipitin Tests , Protein Binding , Protein Structure, Secondary , Proto-Oncogene Proteins/metabolism , Saccharomyces cerevisiae/metabolism , Sequence Homology, Amino Acid , Substrate Specificity , Two-Hybrid System Techniques , bcl-2-Associated X Protein
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