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The oxen Gene of Drosophila Encodes a Homolog of Subunit 9 of Yeast Ubiquinol-Cytochrome c Oxidoreductase Complex: Evidence for Modulation of Gene Expression in Response to Mitochondrial Activity
Maxim V. Frolov1,a, Elizaveta V. Benevolenskaya2,a, and James A. Birchleraa University of Missouri, Columbia, Missouri 65211
Corresponding author: James A. Birchler, 117 Tucker Hall, University of Missouri, Columbia, MO 65211., birchlerj{at}missouri.edu (E-mail)
Communicating editor: K. GOLIC
| ABSTRACT |
|---|
A P-element insertion in the oxen gene, ox1, has been isolated in a search for modifiers of white gene expression. The mutation preferentially exerts a negative dosage effect upon the expression of three genes encoding ABC transporters involved in pigment precursor transport, white, brown, and scarlet. A precise excision of the P element reverts the mutant phenotype. Five different transcription units were identified around the insertion site. To distinguish a transcript responsible for the mutant phenotype, a set of deletions within the oxen region was generated. Analysis of gene expression within the oxen region in the case of deletions as well as generation of transgenic flies allowed us to identify the transcript responsible for oxen function. It encodes a 6.6-kD homolog of mitochondrial ubiquinol cytochrome c oxidoreductase (QCR9), subunit 9 of the bc1 complex in yeast. In addition to white, brown, and scarlet, oxen regulates the expression of three of seven tested genes. Thus, our data provide additional evidence for a cellular response to changes in mitochondrial function. The oxen mutation provides a model for the genetic analysis in multicellular organisms of the effect of mitochondrial activity on nuclear gene expression.
WE are interested in defining a complete set of modifiers that exhibit a dosage effect upon the expression of a single target locus. Our interest in dosage-dependent modifiers of gene expression is centered on the hypothesis that these are responsible for aneuploidy syndromes and various types of dosage compensation (![]()
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The Drosophila white gene represents a particularly convenient model where such dosage effects can be studied. Extensive molecular genetical and biochemical studies of pigment synthesis revealed that white together with two other genes, brown and scarlet, is involved in the uptake of pigment precursors by the cell. Biochemical analysis indicates that white and scarlet participate in the transport of brown pigment precursors kynurenine, 3-hydroxy-kynurenine, and tryptophan, while white and brown are responsible for the transport of guanine, a precursor of red pigments (for review, see ![]()
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200 amino acid residues including an ATP-binding site and a hydrophobic domain comprising five to eight transmembrane segments. On the basis of structural organization ABC transporters are subdivided into three broad categories. WHITE, BROWN, and SCARLET define a distinct group of ABC transporters. Their hydrophilic domain contains an ATP-binding motif followed by the hydrophobic domain. Genetical, molecular, and biochemical studies indicate that these proteins form heterodimers to transport pigment precursors (for review, see ![]()
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Using white as a target a number of modifiers of gene expression have been isolated. Among them are Wow (![]()
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In this article we describe the isolation and molecular characterization of the oxen gene, a dosage-dependent modifier involved in regulation of gene expression that is distinct in function from the previously identified ones. Loss-of-function oxen alleles affect the steady-state mRNA level of all three ABC transporters as well as some other unrelated genes, rudimentary,
Gpdh, and P0. The gene encodes a 6.6-kD protein homologous to the yeast subunit 9 of mitochondrial ubiquinol cytochrome c oxidoreductase (bc1 complex). The yeast homolog is essential for the assembly of a functional bc1 complex and its deletion perturbs mitochondrial function (![]()
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| MATERIALS AND METHODS |
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Fly stocks:
Flies were raised on standard Drosophila media at 25°. Genetic markers used here can be found in ![]()
ms(2)00815, a single P-element insertion on chromosome 2 (49C1-D3), was identified in a screen for dominant autosomal mutations affecting the eye color of white-apricot flies. The same insertion was previously isolated as a male-sterile mutation and named oxen1 (ox1; ![]()
2-3, Sb/TM6, Ubx strain (![]()
2-3, Sb/ry506 males were crossed individually to three Sp/CyO; ry506/TM6, Ubx females. The Cy, non-Sb, non-Sp progeny (ox1/CyO; ry506/ry506) were screened for rosy- flies, which were mated to Gla/SM6a, Cy balancers to establish a stock. In total, 211 derivatives were generated.
Three oxen alleles, ox44-2, ox107-2, and ox157-1, were recombined with P[ry+; hs-neo; FRT]42D. Presence of both the FRT and oxen mutation was confirmed by complementation tests and G418 resistance. To produce mitotic clones in the adult eye, y w P[ry+; hsFLP]12; P[ry+; hs-neo; FRT]42D P[mw+ NM]46F/CyO males were crossed to y w; ox- P[ry+; hs-neo; FRT]42D/SM6a and the progeny were heat-shocked during the first and second instars for 1 hr at 37° in a water bath (![]()
To produce germline clones, first ox107-2 and ox44-2 were recombined with P[mw; FRT]2R-G13. Four independent stocks carrying both FRT and the oxen allele were generated for each deletion. w P[ry+; hsFLP]12; P[mw; FRT]2R-G13 ox-/ovoD P[mw; FRT]2R-G13 females were heat-shocked twice for two hr at the late second to early third larval instar and crossed to ox-/SM6a males (![]()
For the developmental Northern analysis, ox1/SM6a, Cy females were crossed to T(2;3)CyO, Cy Tb ch translocation males. The F1 males containing this translocation heterozygous with ox1 were mated to Canton-S females. The Tb marker allows discrimination between +/+ and ox1/+ classes at the pupal stages, while the Cy marker allows this distinction in adults.
For P-element transformation, the cDNAs containing complete open reading frames (ORFs) of QCR9 and
NAC were cloned into the pHT4 vector that has a rosy marker gene (![]()
NAC], respectively. The constructs were injected together with the wings-clipped helper plasmid into ry506 embryos (![]()
NAC transgene and 11 transformants were established for the QCR9 transgene. The DGK
cDNA was cloned into the pUAST vector (![]()
2-3, to obtain three independent insertions on chromosome 3. P[mw+; UAS-DGK], P[ry+; hsp-QCR9], and P[ry+; hsp-
NAC] transgenes on the third chromosome were separately recombined with ox107-2 and ox44-2 alleles for rescue experiments.
DNA and RNA techniques:
All standard DNA manipulations were performed as described in ![]()
The P1 phage 05-71, containing wild-type DNA from the 49D1-2 region on the cytological map (![]()
The cDNA library was prepared from 2-week-old male and female wild-type adults (Canton-S) in the
ZAP II vector (Stratagene, La Jolla, CA). About 600,000 phage have been screened as described in ![]()
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RNA blots, RNA probes, and Northern hybridization were performed according to ![]()
For sequencing, DNA fragments were cloned into the pSP72 (Promega, Madison, WI) or Bluescript II SK (Stratagene) vector. To obtain nested clones for sequencing, a
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transposon-based system was used (![]()
A region between 1.07 and 1.67 kb on the restriction map (Fig 1) was found to be 99% identical to the 3' untranslated region of the Drosophila G protein ß-subunit gene, Gbe, (accession no. M76593; ![]()
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In situ hybridization:
In situ hybridization with whole mount embryos was performed essentially as described in ![]()
| RESULTS |
|---|
Identification of the oxen gene:
A genetic screen was performed to identify the P-element insertions dominantly modulating the expression of a target gene, white. The hypomorphic white-apricot allele that confers an orange-yellow eye color was used. The molecular basis of the white-apricot lesion is an insertion of the retrotransposon, copia, into the second intron (![]()
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The chromosome carrying the ox1 mutation contains a single P-element insertion at the cytological position 49C1-4. The ox1 allele is sterile over the deficiency Df(2)vg135 (FlyBase http://flybase.bio.indiana.edu:82), which uncovers the region from 49A4-13 to 49E7-F1 on the polytene chromosome map (![]()
We sought molecular evidence that white gene expression is affected in the ox1 mutants. Total RNA was isolated from pupae segregating for normal or the ox1 chromosome. Pupae were chosen because the majority of pigment is deposited at this developmental stage. RNA transfers were made in triplicate and hybridized with a white antisense probe. The same blots were then probed with rRNA, which served as a gel-loading control. The phosphorimagery data are presented in Table 1. Consistent with the eye color phenotype, the mutation results in elevation of white transcript levels in mid- and late pupae. The expression of two related ABC transporters, brown (bw) and scarlet (st), was also monitored. It was found that the ox1 mutation affects the expression of both scarlet and brown but the effect is different. The steady-state level of st is increased in females but it is decreased in males. In late pupae, st mRNA is increased in females and slightly increased in males. In contrast, the expression of bw is mostly increased in pupae of both sexes and the effect is stronger compared to scarlet and white. In summary, the ox1 mutation exhibits an effect upon the expression of all three genes. The effect has a complex profile depending upon the sex and the developmental stage.
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Transcriptional mapping of the oxen gene:
We have previously identified a DGK
gene 123 bp from the P-element insertion site in the ox1 chromosome (M. V. FROLOV, E. V. BENEVOLENSKAYA and J. A. BIRCHLER, unpublished results). It encodes a homolog of human diacylglycerol kinase
isoform. To further characterize the oxen region, a set of genomic DNA fragments from a P1 phage, 05-71, (![]()
NAC (Fig 1), based upon their homology. TAFAZZIN shows a similarity to a human family of proteins, TAFAZZINs, responsible for Barth syndrome (![]()
NAC encodes a homolog of mouse nascent associated polypeptide complex and coactivator
(![]()
Two additional transcription units were uncovered from the expressed sequence tag (EST) database made available by the Berkeley Drosophila Genome Project/HHMI EST Project. The ESTs are located in the immediate vicinity of the P-element insertion site and the corresponding transcription units were referred to as HL (EST HL07956) and QCR9 (EST GH22548; Fig 1). The ORF derived from the HL cDNA does not share significant homologies to proteins with known function. To clone the corresponding cDNAs for the HL and QCR9 transcripts, RACE was performed. We were not able to generate a cDNA for HL. In the case of QCR9, a 0.35-kb product was amplified by PCR using a primer complementary to the sequence from the 5' region of EST GH22548.
Generation and analysis of deletions in the oxen region:
About 10% of ox1 homozygotes survive to the adult stage, suggesting that the ox1 allele might retain a substantial level of function. Indeed, the P element apparently does not abolish the transcription of any mRNA. To generate stronger ox alleles we looked for imprecise excisions of the P element, which would remove flanking sequences. Southern analysis revealed that in 22 excision events, the sequences outside of the P-element insertion site are deleted. The deletions ranged from 0.3 to 2.6 kb and can be grouped into three classes (Fig 1). Two deletions, ox68-1 and ox86-1, remove the structural sequences of four genes, tafazzin, HL, QCR9, and DGK
, and thus presumably represent null alleles. The second class comprises 11 deletions, which eliminate QCR9 and various portions of both DGK
and HL, while leaving the 5' sequences of tafazzin unaffected. Two representative examples from the second class, ox44-2 and ox38-1, are shown in Fig 1. Finally, 9 deletions, such as ox12-1, ox107-2, and ox157-1, are associated with the loss of a structural portion of DGK
and QCR9 and presumably do not affect HL and tafazzin. No deletions spanning into
NAC were isolated.
The new ox alleles were tested for the lethality, male sterility, and eye color phenotypes. With no exceptions, all 22 deletions exhibited an interaction with wa and were lethal as homozygotes. To determine the stage of lethality, two alleles, ox44-2 and ox107-2, were crossed to the wild-type Canton-S stock. The F1 ox/+ progeny were intercrossed, and the numbers of F2 surviving to embryo, larvae, pupae, and adult stages were counted. For both alleles it was found that the lethality occurred at late first instar larvae with no escapers. Homozygous mutant animals do not exhibit any gross abnormalities, although they show a sluggish response to physical contact compared to the ox heterozygous larvae. Finally, males transheterozygous for ox1 and any of the ox deletions are sterile. Thus, there are no differences in the phenotype whether tafazzin and/or HL transcription units are affected by the deletion.
To further confirm that neither tafazzin nor HL define the oxen phenotype, we examined an effect of deletions ox107-2 and ox44-2 on the expression of the white gene and transcripts from the oxen region by Northern analysis. As a control for normal expression, the revertant, oxrev, was used. Triplicate RNA transfers were hybridized with antisense probes for white, DGK
, tafazzin, and
NAC (Table 2). Consistent with the eye color phenotype, mutant alleles, ox44-2 and ox107-2, mostly upregulate the steady-state level of white transcripts. The expression of DGK
and QCR9 is decreased to one-half in both deletions relative to the respective controls and restored to normal in the revertant. This is in agreement with the Southern data showing that both deletions remove a portion of DGK
and QCR9. However, the deletions differ in their effect upon tafazzin and HL transcripts. Deletion ox44-2 removes most of the sequences upstream of tafazzin (Fig 1) and decreases its expression. On the contrary, in the case of the ox107-2 allele, tafazzin expression is unaffected. Indeed, the left breakpoint is about 1 kb upstream of the 5' end of the tafazzin gene and therefore its upstream sequences are presumably intact. Expression of HL is reduced to one-half in the case of ox44-2, in which most of the HL sequences are deleted. On the other hand, the ox107-2 deletion does not extend into the HL transcript and the HL expression is unaffected (Table 2). Taken together these observations disfavor the possibility that tafazzin or HL are responsible for the mutant phenotypes.
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Northern data indicate that both deletions increase the level of
NAC expression (Table 2). One possibility to explain this result is that some regulatory sequences of
NAC that might be located within the DGK
gene are eliminated in the mutants. To exclude the possibility that the mutant effects are due to an increased
NAC expression, a full-length
NAC cDNA was expressed under a heat-shock promoter. The overexpression of
NAC after heat shock was confirmed by Northern analysis. Transgenic animals carrying an ox mutant or wild-type alleles in a wa background were heat-shocked twice a day until the late pupal stage. The eye color of emerged flies was compared to that of flies without the transgene. The overexpression of the transgene did not exhibit any effect on the eye color. Therefore, we concluded that
NAC is not responsible for the mutant phenotype. This was further confirmed by the observation that Df(2R)vg135, which deletes
NAC, as well as ox107-2 and ox44-2, which retain
NAC, have a similar effect on wa.
Thus, the above results left DGK
and QCR9 as remaining candidates. According to the Southern analysis, each of the 22 deletions removes a portion of both DGK
and QCR9 and therefore potentially represents a null allele for both genes. Hence, the deletion tests do not discriminate between the two transcripts. However, the P-element insertion located between the 5' ends of DGK
and QCR9 might differ in the effect upon their expression. Indeed, as revealed by sequence analysis, the insertion site is located 15 bp upstream of the 5' end of QCR9 and 123 bp upstream of the putative transcription start site of DGK
. Therefore the expression of DGK
and QCR9 in heterozygotes segregating for the ox1 chromosome was monitored. To study the expression in the ox1 homozygotes, RNA was isolated from rare surviving flies, which do not carry the SM6a balancer marker Cy and, therefore, are homozygous for ox1. In the case of the mutation, the steady-state DGK
mRNA level is slightly decreased to 0.90 ± 0.02 and 0.81 ± 0.03 in the mutant heterozygotes and homozygotes, respectively, compared to the controls (Fig 2). On the contrary, the effect on QCR9 is much more profound. The QCR9 transcripts are decreased to 0.75 ± 0.01 in the ox1/+ mutants and to 0.45 ± 0.03 in flies homozygous for the ox1 chromosome (Fig 2). This is consistent with the fact that the P element is inserted 15 bp upstream of the the 5' end of the QCR9 gene, while the distance between the site of the insertion and the 5' end of DGK
is 123 bp. Thus, the level of DGK
expression is higher in ox1/ox1 homozygotes than in animals heterozygous for the oxen deletions, ox44-2 and ox107-2 (see above). This is in apparent contradiction with the stronger phenotype of ox1/ox1 flies compared to ox-/+, such as semilethality and male sterility. To directly prove that DGK
does not define the oxen function, a UAS-DGK
transgene was constructed, transformed, and expressed using a heat-shock GAL4 driver, hsp70-GAL4 (![]()
transgene does not rescue the lethality or male sterility. Because hsp70 is not efficiently expressed in testes, another GAL4 driver, 32B (![]()
does not rescue the mutant phenotype with the 32B driver. Similar results were obtained with three different lines containing the UAS-DGK
transgene at various chromosomal locations.
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Thus, the combined data on the expression of the tafazzin and HL transcripts in the case of the deletions and the facts that the DGK
and
NAC transgenes do not rescue the mutant phenotype disfavor the possibility that any of them represents the oxen gene. On the other hand, QCR9 is the only transcript whose expression is significantly affected by the oxen deletions and the hypomorphic allele ox1.
To unambiguously show that QCR9 represents the oxen locus, the QCR9 cDNA was expressed under the control of the heat-shock promoter in transgenic animals as described in MATERIALS AND METHODS. Six independent insertions on chromosome 3 were tested with the oxen mutation, which is on chromosome 2. The mutant eye color phenotype of the heterozygous ox1 allele was completely rescued by three of six tested QCR9 transgenes, hsp-QCR9#106, hsp-QCR9#39, and hsp-QCR9#99, when the heat shock was administered once a day at larval and pupal developmental stages. Partial rescue was observed with the three other tested transgenes, hsp-QCR9# 1, hsp-QCR9#31, and hsp-QCR9#19. Consistently, the two strongest transgenes, hsp-QCR9 #106 and hsp-QCR9#99, rescued the lethality of the ox107-2 allele following the heat-shock treatment, while the weaker transgene hsp-QCR9#1 did not. In the control experiment without heat shock, no ox107-2 homozygotes were recovered. Taken together these data argue that QCR9 represents the oxen function.
Requirement of QCR9 activity in development:
Several experiments were employed to examine the role of QCR9 in development. As mentioned above, any QCR9 null allele results in early larval lethality. To determine what the consequences of the loss of QCR9 might be in adult patterning, a mosaic analysis was performed. We employed the FRT/FLP system (![]()
Next we addressed the question of whether QCR9 is necessary for oogenesis. To generate homozygous ox44-2 and ox107-2 mutant germline clones, the "FLP-DFS" technique was used (![]()
To further elucidate the QCR9 function, the pattern of its expression in development was investigated by in situ hybridization. Wild-type embryos were hybridized to a digoxigenin-labeled RNA probe of QCR9. QCR9 transcripts are ubiquitously present in early embryos at the time of cellularization (Fig 3A) and throughout germ-band extension stages (Fig 3B and Fig C). By the end of germ-band retraction, expression is enriched in amnioserosa and in midgut (Fig 3D). As dorsal closure proceeds, QCR9 transcripts are predominantly found in midgut, while the staining in other tissues weakens (Fig 3E and Fig F). During late development when midgut constrictions appear, the transcripts are present in all four midgut chambers (Fig 3G). At the end of embryogenesis, robust staining persists in the midgut (Fig 3H).
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An effect of oxen deletions on gene expression:
The question of whether the oxen function is restricted to the the regulation of the expression of Drosophila ABC transporters was addressed. The steady-state mRNA level of seven unrelated genes, ß1-tubulin at 56D (ß-tubulin), Glucose-6-phosphate dehydrogenase (Zw),
-Glycerol-3-phosphate dehydrogenase (
Gpdh), rudimentary (r), Alcohol dehydrogenase (Adh), ribosomal protein P0 (P0), and ribosomal protein 49 (rp49), was examined by Northern analysis in ox107-2 mutants (Table 3). As a control of normal expression, the oxrev allele was used. The expression of two genes,
Gpdh and P0, is increased in the case of mutation in both sexes and is restored to normal in the revertant. On the contrary, the oxen deletion results in elevation of r transcripts in females and their reduction in males. The steady-state Adh mRNA level was found to be elevated in mutant males. However, examination of the Adh expression in oxrev flies revealed a similar effect suggesting that the observed effect on Adh transcripts is not caused by the ox107-2 allele. Finally, three genes, ß-tubulin, Zw, and rp49, are not affected by the oxen deletion. The same set of genes was affected by deletion ox44-2 (data not shown).
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QCR9 encodes a component of the mitochondrial bc1 complex:
Sequence analysis of the QCR9 mRNA revealed that it encodes a 6.6-kD protein that shares extensive similarity throughout the whole sequence with the smallest protein of the mitochondrial ubiquinol-cytochrome c oxidoreductase complex (bc1 complex) from bovine (![]()
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| DISCUSSION |
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The P-element mutation in the oxen gene was isolated in a screen for trans-acting modifiers exhibiting a dominant effect on the white-apricot phenotype. Our and previously published data (![]()
In the course of transcriptional mapping, mRNAs from five closely arranged genes, tafazzin, HL, QCR9, DGK
, and
NAC, were identified in the oxen region. Several lines of evidence indicate that the effects seen in the oxen mutants are due to a lesion in QCR9. First, the hypomorphic allele ox1, which has a P-element insertion upstream of QCR9, can be reverted by precise excision of the P element. In addition, Df(2R)vg135, which uncovers this region, exhibits a similar effect on white-apricot. Second, the mutant phenotype is retained whether tafazzin and/or HL sequences are uncovered in various deletions within the region. This excludes both tafazzin and HL as a source for oxen activity. Third,
NAC is upregulated in all three tested oxen mutant alleles; however, overexpression of the
NAC transgene does not cause the mutant phenotype. Neither does it exhibit an effect on the eye color in a white-apricot background. This leaves DGK
and QCR9 as possible candidates. Indeed, all of the oxen deletions eliminate at least the 5' portion of both genes. This is confirmed by a Northern analysis, which shows a twofold reduction of DGK
and QCR9 expression in the case of two oxen deletions. Unlike the deletions, the P-element insertion in the ox1 allele preferentially affects the level of QCR9 rather than DGK
transcripts. This difference is most likely due to the fact that the insertion site is 15 bp upstream of the putative 5' end of QCR9 while the distance to the DGK
5' end is 123 bp. Finally, the QCR9 transgene completely rescues the eye color phenotype and lethality associated with the oxen mutations. On the contrary, DGK
transgenic flies do not show the effect upon the eye color or reversion of lethality. Taken together, these data indicate that QCR9 defines the oxen function.
The predicted product of QCR9 shows a sequence similarity to the smallest subunit of mitochondrial bc1 complex from yeast and bovine. The cytochrome bc1 is one of the three major respiratory enzyme complexes residing in the inner mitochondrial membrane. The enzyme oxidizes ubiquinol, which reacts from the membrane phase, reduces cytochrome c in the intermembrane space, and uses the free energy change to transport two protons across the membrane from the matrix to the intermembrane space, and releases two additional protons there (![]()
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Several genes encoding mitochondrial proteins have been identified in Drosophila (![]()
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Why was oxen isolated in a screen for modifiers of white gene expression? As mentioned above, white together with brown and scarlet encode ABC transporters. Yeast mitochondrial ABC transporter ATM1 was proposed to be involved in the signaling from the mitochondria to the cell (![]()
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| FOOTNOTES |
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1 Present address: Massachusetts General Hospital Cancer Center, Bldg. 149, 13th St., Charlestown, MA 02129. ![]()
2 Present address: Dana-Farber Cancer Institute, Mayer 457, 44 Binney St., Boston, MA 02115. ![]()
| ACKNOWLEDGMENTS |
|---|
We are grateful to the Indiana University Drosophila Stock Center for providing fly strains, Daniel Hartl for the P1 clone, Maria Nurminskaya and Dmitry Nurminskii for help with the RACE, Steve Wasserman for sharing the results regarding the ox1 allele, and Norbert Perrimon and Walter Gehring for transformation vectors. Special thanks to Kathy Newton, Olga Karpova, Eugene Kuzmin, and members of the Birchler lab for discussion and critical comments. This study was supported by a National Science Foundation grant to J.A.B. M.V.F. was partially supported by a postdoctoral fellowship from the Molecular Biology Program at the University of Missouri-Columbia. The accession number of the sequence reported here is AF017783.
Manuscript received March 14, 2000; Accepted for publication July 31, 2000.
| LITERATURE CITED |
|---|
BENEVOLENSKAYA, E. V., M. V. FROLOV, and J. A. BIRCHLER, 1998 The sugarless mutation affects the expression of the white eye color gene in Drosophila melanogaster.. Mol. Gen. Genet. 260:131-143[Medline].
BHADRA, U., M. PAL-BHADRA, and J. A. BIRCHLER, 1997a A sex-influenced modifier in Drosophila that affects a broad spectrum of target loci including the histone repeats. Genetics 146:903-917[Abstract].
BHADRA, U., M. PAL-BHADRA, and J. A. BIRCHLER, 1997b A trans-acting modifier causing extensive overexpression of genes in Drosophila melanogaster.. Mol. Gen. Genet. 254:621-634[Medline].
BINGHAM, P. M. and B. H. JUDD, 1981 A copy of the copia transposable element is very tightly linked to the wa allele at the white locus of D. melanogaster.. Cell 25:705-711[Medline].
BIONE, S., P. D'ADAMO, E. MAESTRINI, A. K. GEDEON, and P. A. BOLHUIS et al., 1996 A novel X-linked gene, G4.5. is responsible for Barth syndrome. Nat. Genet. 12:385-389[Medline].
BIRCHLER, J. A., 1979 A study of enzyme activities in a dosage series of the long arm of chromosome one in maize. Genetics 92:1211-1229
BIRCHLER, J. A., 1996 X chromosome dosage compensation in Drosophila. Science 272:1190-1191[Medline].
BIRCHLER, J. A. and K. J. NEWTON, 1981 Modulation of protein levels in chromosomal dosage series of maize: the biochemical basis of aneuploid syndromes. Genetics 99:247-266
BIRCHLER, J. A., J. C. HIEBERT, and K. PAIGEN, 1990 Analysis of autosomal dosage compensation involving the alcohol dehydrogenase locus in Drosophila melanogaster.. Genetics 124:679-686.
BIRCHLER, J. A., U. BHADRA, L. RABINOW, R. LINSK, and A. T. NGUYEN-HUYNH, 1994 Weakener of white (Wow), a gene that modifies the expression of the white eye color locus and that suppresses position effect variegation in Drosophila melanogaster.. Genetics 137:1057-1070[Abstract].
BRAND, A. and N. PERRIMON, 1993 Targeted gene expression as a means of altering cell fates and generating dominant phenotypes. Development 118:401-415[Abstract].
CASTRILLON, D. H., P. GONCZY, S. ALEXANDER, R. RAWSON, and C. G. EBERHART et al., 1993 Toward a molecular genetic analysis of spermatogenesis in Drosophila melanogaster: characterization of male-sterile mutants generated by single P element mutagenesis. Genetics 135:489-505[Abstract].
CHOU, T.-B. and N. PERRIMON, 1996 The autosomal FLP-DFS technique for generating germline mosaics in Drosophila melanogaster.. Genetics 144:1673-1679[Abstract].
CROOP, J. M., 1998 Evolutionary relationships among ABC transporters. Methods Enzymol. 292:101-116[Medline].
DEVLIN, R. H., D. G. HOLM, and T. A. GRIGLIATTI, 1982 Autosomal dosage compensation in Drosophila melanogaster strains trisomic for the left arm of chromosome 2. Proc. Natl. Acad. Sci. USA 79:1200-1204
DREESEN, T. D., D. H. JOHNSON, and S. HENIKOFF, 1988 The brown protein of Drosophila melanogaster is similiar to the white protein and to components of active transport complexes. Mol. Cell. Biol. 8:5206-5215
EWART, G. D. and A. J. HOWELLS, 1998 ABC transporters involved in transport of eye pigment precursors in Drosophila melanogaster.. Methods Enzymol. 292:213-324[Medline].
FROLOV, M. V., E. V. BENEVOLENSKAYA, and J. A. BIRCHLER, 1998 Regena (Rga), a Drosophila homolog of the global negative transcriptional regulator CDC36 (NOT2) from yeast, modifies gene expression and suppresses position effect variegation. Genetics 148:317-329
GUO, M. and J. A. BIRCHLER, 1994 Trans-acting dosage effects on the expression of model gene systems in maize aneuploids. Science 266:1999-2002
HARTENSTEIN, K., P. SINHA, A. MISHRA, H. SCHENKEL, and I. TÖRÖK et al., 1997 The congested-like tracheae gene of Drosophila melanogaster encodes a member of the mitochondrial carrier family required for gas-filling of the tracheal system and expansion of the wings after eclosion. Genetics 147:1755-1768[Abstract].
HARTL, D. L., D. I. NURMINSKY, R. W. JONES, and E. R. LOZOVSKAYA, 1994 Genome structure and evolution in Drosophila: applications of the framework P1 map. Proc. Natl. Acad. Sci. USA 91:6824-6829
HAYWARD, D. C., S. J. DELANEY, H. D. CAMPBELL, A. GHYSEN, and S. BENZER et al., 1993 The sluggish-A gene of Drosophila melanogaster is expressed in the nervous system and encodes proline oxidase, a mitochondrial enzyme involved in glutamate biosynthesis. Proc. Natl. Acad. Sci. USA 90:2979-2983
HAZELRIGG, T., 1987 The Drosophila white gene: a molecular update. Trends Genet. 3:43-47.
IYENGAR, B., J. ROOTE, and A. R. CAMPOS, 1999 The tamas gene, identified as a mutation that disrupts larval behavior in Drosophila melanogaster, codes for the mitochondrial DNA polymerase catalytic subunit (DNApol-
125). Genetics 153:1809-1824
LEIGHTON, J. and G. SCHATZ, 1995 An ABC transporter in the mitochondrial inner membrane is required for normal growth of yeast. EMBO J. 14:188-195[Medline].
LIAO, X., W. C. SMALL, P. A. SRERE, and R. A. BUTOW, 1991 Intramitochondrial functions regulate nonmitochondrial citrate synthase (CIT2) expression in Saccharomyces cerevisiae.. Mol. Cell. Biol. 11:38-46
LINDSLEY, D. L., and G. ZIMM, 1992 The Genome of Drosophila melanogaster. Academic Press, New York.
PARIKH, V. S., M. M. MORGAN, R. SCOTT, L. S. CLEMENTS, and R. A. BUTOW, 1987 The mitochondrial genotype can influence nuclear gene expression in yeast. Science 235:576-580
PHILLIPS, J. D., M. E. SCHMITT, T. A. BROWN, and B. L. TRUMPOWER, 1990 Isolation and characterization of QCR9, a nuclear gene encoding the 7.3-kDa subunit 9 of the Saccharomyces cerevisiae ubiquinol-cytochrome c oxidoreductase complex. J. Biol. Chem. 265:20813-20821
POYTON, R. O. and J. E. MCEWEN, 1996 Crosstalk between nuclear and mitochondrial genomes. Annu. Rev. Biochem. 65:563-607[Medline].
ROBERTSON, H. M., C. R. PRESTON, R. W. PHILLIS, D. JONSON-SCHULTZ, and W. K. BENZ et al., 1988 A stable source of P-element transposase in Drosophila melanogaster.. Genetics 118:461-470
SAMBROOK J., E. F. FRITCH and T. MANIATIS, 1989 Molecular Cloning: A Laboratory Manual, Ed. 2. Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY.
SARASTE, M., 1999 Oxidative phosphorylation at the fin de siècle.. Science 283:1488-1493
SCHAGGER, H., G. VON JAGOW, U. BORCHART, and W. MACHLEIDT, 1983 Amino-acid sequence of the smallest protein of the cytochrome c1 subcomplex from beef heart mitochondria. Hoppe-Seyler's Z. Physiol. Chem. 364:307-311[Medline].
SCHNEUWLY, S., R. KLEMENZ, and W. J. GEHRING, 1987 Redesigning the body plan of Drosophila by ectopic expression of the homoeotic gene Antennapedia.. Nature 325:816-818[Medline].
SCHRODER, J. M., 1993 Neuropathy associated with mitochondrial disorders. Brain Pathol. 3:177-190[Medline].
SPRADLING, A. C. and G. M. RUBIN, 1982 Transposition of cloned P-elements into Drosophila germline chromosomes. Science 218:341-347
STRATHMANN, M., B. A. HAMILTON, C. A. MAYEDA, M. I. SIMON, and E. M. MEYEROWITZ et al., 1991 Transposon-facilitated DNA sequencing. Proc. Natl. Acad. Sci. USA 88:1247-1250
TAUTZ, D. and C. PFEIFLE, 1989 A non-radioactive in situ hybridization method for the localization of specific RNAs in Drosophila embryos reveals translational control of the segmentation gene hunchback.. Chromosoma 98:81-85[Medline].
TEARLE, R. G., J. M. BELOTE, M. MCKEOWN, B. S. BAKER, and A. J. HOWELLS, 1989 Cloning and characterization of the scarlet gene of Drosophila melanogaster.. Genetics 122:595-606
VON HEIJNE, G., 1986 Mitochondrial targeting sequences may form amphiphilic helices. EMBO J. 5:1335-1342[Medline].
XU, T., and S. D. HARRISON, 1994 Mosaic analysis using FLP recombinase, pp. 655681 in Methods in Cell Biology, edited by L. S. B. GOLDSTEIN and E. A. FYRBERG. Academic Press, San Diego.
YARFITZ, S., G. A. NIEMI, J. L. MCCONNELL, C. L. FITCH, and J. B. HURLEY, 1991 A G beta protein in the Drosophila compound eye is different from that in the brain. Neuron 7:429-438[Medline].
YOTOV, W. V. and R. ST-ARNAUD, 1996 Differential splicing-in of a proline-rich exon converts alphaNAC into a muscle-specific transcription factor. Genes Dev. 10:1763-1772
ZHANG, Y. Q., J. ROOTE, S. BROGNA, A. W. DAVIS, and D. A. BARBASH et al., 1999 stress sensitive B encodes an adenine nucleotide translocase in Drosophila melanogaster.. Genetics 153:891-903
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