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The proneural proteins Atonal and Scute regulate neural target genes through different E-box binding sites.

For a particular functional family of basic helix-loop-helix (bHLH) transcription factors, there is ample evidence that different factors regulate different target genes but little idea of how these different target genes are distinguished. We investigated the contribution of DNA binding site differences to the specificities of two functionally related proneural bHLH transcription factors required for the genesis of Drosophila sense organ precursors (Atonal and Scute). We show that the proneural target gene, Bearded, is regulated by both Scute and Atonal via distinct E-box consensus binding sites. By comparing with other Ato-dependent enhancer sequences, we define an Ato-specific binding consensus that differs from the previously defined Scute-specific E-box consensus, thereby defining distinct E(Ato) and E(Sc) sites. These E-box variants are crucial for function. First, tandem repeats of 20-bp sequences containing E(Ato) and E(Sc) sites are sufficient to confer Atonal- and Scute-specific expression patterns, respectively, on a reporter gene in vivo. Second, interchanging E(Ato) and E(Sc) sites within enhancers almost abolishes enhancer activity. While the latter finding shows that enhancer context is also important in defining how proneural proteins interact with these sites, it is clear that differential utilization of DNA binding sites underlies proneural protein specificity.

3' Flanking Region

Identification of lineage-associated polymorphisms in the ROP18 3' flanking region and development of molecular assays for differentiation of Toxoplasma gondii lineages.

BACKGROUND: Toxoplasma gondii (T. gondii) exhibits substantial genetic diversity, and different parasite lineages are associated with distinct epidemiological distributions and biological characteristics. Accurate molecular characterization of T. gondii strains is important for understanding parasite population structure and transmission patterns. However, existing genotyping approaches often require multiple loci, extensive experimental procedures, or complex data analysis. Therefore, simplified and reliable molecular markers for rapid lineage differentiation are still needed. METHODS: In this study, comparative genomic analysis was performed using representative T. gondii strains with well-defined genetic backgrounds and virulence phenotypes. The ROP18 genomic region, including partial genomic sequences, 5' flanking regions, coding sequence (CDS), and 3' flanking regions, was analyzed to identify informative polymorphic signatures. A short conserved sequence region containing lineage-associated polymorphic sites was identified within the ROP18 3' flanking region. Based on these sequence signatures, HRM-PCR and TaqMan MGB probe-based real-time PCR assays were developed and evaluated using plasmid standards and representative T. gondii genomic DNA samples. RESULTS: Phylogenetic analyses based on different ROP18 genomic regions demonstrated distinct clustering patterns among analyzed strains. Although the ROP18 3' flanking region was highly conserved, a short conserved sequence region containing informative polymorphic sites was identified, and the combination of these sites generated three distinct lineage-associated ROP18 patterns. Analysis of publicly available genomic datasets further demonstrated that individual strains contained one of these defined patterns rather than multiple patterns simultaneously. The developed HRM-PCR assay successfully discriminated the three ROP18-associated patterns based on distinct melting profiles with good reproducibility. Furthermore, the TaqMan MGB probe-based assay enabled specific identification of different ROP18-associated patterns through defined probe-recognition combinations and showed good analytical performance. CONCLUSION: This study identifies novel lineage-associated molecular signatures within the ROP18 3' flanking region and establishes complementary HRM-PCR and TaqMan MGB probe-based approaches for rapid molecular differentiation of T. gondii strains. These findings highlight the potential of conserved non-coding regions adjacent to functionally important genes as informative targets for parasite genotyping and provide a practical complementary tool for epidemiological surveillance and strain characterization.

HRM-PCR

Nucleotide sequence of Xenopus borealis oocyte 5S DNA: comparison of sequences that flank several related eucaryotic genes.

Genomic Xenopus borealis oocyte-specific 5S DNA (Xbo) contains clusters of 5S rRNA genes. The number of genes varies among clusters, and the distance between genes within a cluster is about 80 nucleotides. The spacer DNA between gene clusters is AT-rich and heterogeneous in length due in part to variable numbers of a tandemly repeated 21 nucleotide sequence. A cloned fragment of Xbo 5S DNA (Xbo1) containing three 5S rRNA genes has been sequenced. The sequences of Xbo1 genes 1 and 2 are very similar to the dominant 5S RNA sequence, whereas 15 of the 120 residues in the third gene are different. The sequence of gene 3 is as different from the dominant gene sequence as the X. laevis pseudogene is from the 5S RNA gene. Sequence analysis of genomic DNA shows that gene 3 is an abundant component of the multigene family. All three genes are transcribed when added to an extract of X. laevis oocyte nuclei, and a fragment of Xbo1 lacking the AT-rich spacer DNA and the 5' end of the first gene supports transcription of genes 2 and 3 in this in vitro system. Thus the 80 nucleotides preceding each 5S gene are sufficient for promoter function. Nucleic acid sequences preceding several eucaryotic genes that are transcribed by RNA polymerase III were analyzed and the following common features were found: a purine-rich region; at least one direct repeat; the absence of dyad symmetry; transcription beginning with a purine; a pyrimidine residue immediately preceding the first nucleotide of the gene; and the oligonucleotides AAAAG, AGAAG and GAC, located approximately 15, 25 and 35 nucleotides, respectively, before the start of transcription. The 10 base pair (bp) spacing between the homologous oligonucleotides is that expected for a recognition signal on one face of a DNA double helix. The extensive sequence differences between most of the spacers that precedes these genes make the three conserved oligonucleotides more striking. Parts of the 5' flanking regions of the three Xbo1 gene (-12 to -40), which include the conserved oligonucleotides, are identical. In contrast, 7 of the first 11 nucleotides that precede the third 5S RNA gene in Xbo1 differ from those that precede the first gene. The sequences following the X. borealis oocyte and somatic 5S genes are identical in 12 of the first 14 residues and contain two or more T clusters, as does the corresponding region of X. laevis oocyte 5S DNA. The 3' sequences of the Xenopus 5S rRNA genes and several other eucaryotic genes contain features in common with procaryotic transcription termination sites. The 3' end of the gene is GC-rich and contains a dyad symmetry. Termination occurs in an AT-rich region containing one or more T clusters on the noncoding strand.

Animals

Sequences at the somatic recombination sites of immunoglobulin light-chain genes.

The entire nucleotide sequence of a 1.7-kilobase embryonic DNA fragment containing five joining (J) DNA segments for mouse immunoglobulin kappa chain gene has been determined. Each J DNA segment can encode amino acid residues 96--108. Comparison of one of the five J DNA sequences with those of an embryonic variable (V) gene and a complete kappa chain gene permitted localisation of a precise recombination site. The 5'-flanking regions of J DNA segments could form an inverted stem structure with the 3'-non-coding region of embryonic V genes. This hypothetical structure and gel-blotting analysis of total embryo and myeloma DNA suggest that the somatic recombination may be accompanied by excision of an entire DNA segment between a V gene and a J DNA segment. Antibody diversity may in part be generated by modulation of the precise recombination sites.

Animals

Association of CYP19 gene SNPs (rs7176005 and rs6493497) with polycystic ovary syndrome susceptibility in Northern Chinese women.

PURPOSE: The objective of this study was to elucidate the relationship between two single nucleotide polymorphisms (SNPs) rs7176005 and rs6493497 in CYP19 gene and the risk of polycystic ovary syndrome (PCOS) in Northern Chinese women. METHODS: In this case-control study, a total of 340 women with PCOS and 340 matched healthy controls were recruited. Polymerase chain reaction ligase detection reaction (PCR-LDR) method was used to investigate two SNPs (rs7176005 and rs6493497) in the 5'-flanking region of CYP19 gene exon 1. RESULTS: We observed a significant association of rs7176005 and rs6493497 with reduced risk of PCOS. Compared with CC genotype, a significant association of CT genotype (p&#x2009;=&#x2009;0.019), TT genotype (p&#x2009;<&#x2009;0.001) and combined CT&#x2009;+&#x2009;TT genotype (p&#x2009;<&#x2009;0.001) with reduced risk of PCOS was observed. The result of linkage disequilibrium analysis showed that these two SNPs are in complete linkage disequilibrium (r2 = 1). For rs7176005 SNP, compared with CC genotype, CT, TT and CT&#x2009;+&#x2009;TT genotypes reduced the risk of PCOS. The age, BMI-adjusted OR were 0.650 (95% CI&#x2009;=&#x2009;0.460-0.917), 0.158 (95% CI&#x2009;=&#x2009;0.066-0.376) and 0.545(95% CI&#x2009;=&#x2009;0.391-0.759), respectively. CONCLUSIONS: These findings highlight a significant association between CYP19 gene polymorphisms and PCOS susceptibility, implying potential protective effects of T and A alleles. Of course, the major limitation of this study is the sample size of the case-control study. Larger cohort studies are needed to confirm these findings and investigate the underlying causes.

Adult

Molecular structure and flanking nucleotide sequences of the natural chicken ovomucoid gene.

Five independent clones containing the natural chicken ovomucoid gene have been isolated from a chicken gene library. One of these clones, CL21, contains the complete ovomucoid gene and includes more than 3 kb of DNA sequences flanking both termini of the gene. Restriction endonuclease mapping, electron microscopy and direct DNA sequencing analyses of this clone have revealed that the ovomucoid gene is 5.6 kb long and codes for a messenger RNA of 821 nucleotides. The structural gene sequence coding Ifor the mature messenger RNA is split into at least eight segments by a minimum of seven intervening sequences of various sizes. The shortest structural gene segment is only 20 nucleotides long. All seven intervening sequences are located within the peptide coding region of the gene, and the sequences at the 5' and 3' untranslated regions of the mRNA are not interrupted by intervening sequences. The DNA sequences of the regions flanking the 5' and 3' termini of the gene have been determined. Thirty nucleotides before the start of the messenger RNA coding sequence is the heptanucleotide TATATAT, which is also present in a similar location relative to the chicken ovalbumin gene and other unique sequence eucaryotic genes. This sequence resembles that of the Pribnow box in procaryotic genes where a promoter function has been implicated. Seven nucleotides past the 3' end of the gene is the tetranucleotide TTGT, a sequence found to be present at identical locations as either TTTT or TTGT in other eucaryotic genes that have been sequenced. These conserved DNA sequences flanking eucaryotic genes may serve some regulator function in the expression of these genes.

Animals

Organic anion and cation transporters occur in pairs of similar and similarly expressed genes.

Organic anion and cation transporters (OATs, OCTs, OCTNs, and ORCTLs), transmembrane proteins essential to renal xenobiotic excretion, are encoded by a group of related genes. As yet there have been no studies of the transcriptional regulation of this important gene family. While such studies have traditionally been labor-intensive, comparative genomics approaches are now available that have proven reliable guides to critical regulatory elements. We report here the genomic sequencing of murine OAT1 (the cDNA of which was originally cloned by us as NKT) and OAT3 (Roct), and derivation of phylogenetic footprints (evolutionarily conserved non-coding sequences) by comparison to the human genome. We find binding sites within these footprints for several transcription factors implicated in kidney development, including PAX1, PBX, WT1, and HNF1. Additionally, we note that OATs and OCTs occur in the human and mouse genomes as tightly linked pairs (OAT1 and OAT3, UST3 and OAT5, OAT4 and URAT1/RST, OCT1 and 2, OCTN1 and 2, ORCTL3 and 4) that are also close phylogenetic relations, with Flipt1 and 2, and OAT2 the only unpaired family members. Finally, we find that pair-members have similar tissue distributions, suggesting that the pairing might exist to facilitate the co-regulation of the genes within each pair.

5' Flanking Region

The primary structure of rabbit beta-globin mRNA as determined from cloned DNA.

The rabbit beta-globin DNA insertion of the hybrid plasmid PbetaG1 (Maniatis et al., 1976) was sequenced by the method of Maxam and Gilbert (1977). A sequence of 576 nucleotides was determined and verified by pyrimidine tract analysis of double-stranded DNA, synthesized in vitro starting from beta-globin mRNA. The derived sequence is in complete agreement with previously reported partial mRNA sequencing data and with the predictions from the primary structure of the protein. Moreover, the globin DNA insertion is missing only 13 nucleotides corresponding to the 5' terminal sequence of the mRNA. The rabbit beta-globin mRNA consists of a coding region of 438 nucleotides, flanked by a 5' noncoding region of 56 nucleotides (including the initiation codon AUG but not the 7-methyl-guanine of the "cap structure") and by a 3' noncoding region of 95 nucleotides (including a UGA termination codon). The features of the mRNA sequence are discussed with specific attention to the selective use of particular codons, the probable existence extensively base-paired segments at the 5' terminal region and the ribosome binding site. The faithful representation of beta-globin mRNA in the PbetaG1 DNA insertion establishes the validity of used cloned DNA, initially derived from double-stranded DNA transcripts of mRNA, for studying the structure of eucaryotic genes.

Animals

Nucleotide sequence of turnip yellow mosaic virus coat protein mRNA.

The primary structure of the coat protein messenger RNA of turnip yellow mosaic virus is presented. This sequence is the first complete nucleotide sequence of the coat protein messenger of a plant virus to be reported. The coding region, consisting of 567 nucleotides, is flanked by a 5' noncoding region of 19 nucleotides (not including the initiation codon and the cap structure) and by a 3' noncoding region of 109 nucleotides (including the termination signal). The coat protein mRNA has a base composition identical to that of the genome RNA with, in particular, the same high content in cytosine (38%). The codons that govern the incorporation of amino acids into the coat protein are nonrandomly utilized: is greater than 50% of the time the third base of the codons used is a cytosine. This pattern of codon preference is particularly marked for Leu, lle Val, Thr and Cys.

Base Sequence

Sequence of the cloned gene for the constant region of murine gamma 2b immunoglobulin heavy chain.

The complete nucleotide sequence of the gamma 2b constant region gene cloned from BALB/c liver DNA is reported. The sequence of approximately 1870 base pairs includes the 5' flanking, 3' untranslated, and 3' flanking regions and three introns. The C gamma 2b coding region is divided by these introns into four segments corresponding to the homology domains and hinge region of the protein. The introns separating the hinge from the CH2 domain and the CH2 from the CH3 domain are small (106 and 119 base pairs). A larger intervening sequence of 314 base pairs separates the CH1 and hinge regions. The stretch of DNA comprising this large intron plus the hinge shows a strong homology with the other CH domains.

Animals

The first complete genome sequence of Ammi majus latent virus from the new natural host culantro.

A potyvirus (isolate AMLV-CQ) infecting culantro (Eryngium foetidum L.) imported from Vietnam was identified by RT-PCR. The complete genome sequence of AMLV-CQ was determined to be 9,549 nucleotides in length. It contains a large open reading frame encoding a 3,082-amino-acid putative polyprotein, flanked by 5&#xb4; and 3&#xb4; untranslated regions (UTRs) of 77 and 226 nt, respectively. AMLV-CQ is closely related to five other completely sequenced potyviruses, sharing 68-69% nucleotide and 69-70% amino acid sequence identity. However, the coat protein (CP) gene shares 89% nucleotide and 93% amino acid sequence identity with that of a partially sequenced potyvirus, Ammi majus latent virus (isolate AMLV-WF17). These results suggest that AMLV-CQ and AMLV-WF17 are isolates of the same species. To our knowledge, this is the first report of a complete genome sequence of an AMLV isolate, and culantro was identified as a new natural host for this virus. In addition, a one-step RT-PCR assay was developed that provides a rapid, robust, and highly sensitive approach for the detection of AMLV.

Eryngium

Structural analysis of the fibroin gene at the 5' end and its surrounding regions.

Using the genomic clones of the fibroin gene with its flanking sequences, a detailed restriction map was prepared with particular attention given to the region neighboring the 5' end of the gene. About 60% of the fibroin mRNA has a complete cap (m7GpppAmUmCXG), and the remaining 40% has an unmethylated cap (GpppAPyXXG). The latter can be radioactively labeled by the use of vaccinia capping enzymes. Using the labeled mRNA, we mapped the 5' end of the gene by hybridization to restriction enzyme digests. DNA sequencing of this region revealed a sequence ATCAGCATCAG that corresponds to ApyXXG in tandem. The 5' end of mRNA with a complete cap was also located in these 11 nucleotides. Since the second ATCAG region was protected from S1 digestion following hybridization with total fibroin mRNA, we have tentatively assigned it as the sole 5' end of the transcription unit. About 700 bp were sequenced in the region from -800 + 1700 bp. The region of about 210 bp preceding the 5' end of the gene which may accommodate a promoter sequence is very AT-rich and contains clusters of A and T residues. This region contains statistically significant dyad symmetries, direct repeats and inverted repeats. At -30 to -24, the sequence TATAAAA was observed, and this is similar to a Pribnow-type sequence (TATAGATG). The sequence that codes for the gly-ala repetitious peptide characteristic of fibroin begins somewhere between 1340 and 1600 bp from the 5' end. An intervening sequence of about 1.1 kb that interrupts the gene about 70 bp from the 5' end was detected by R loop formation. Structures of the fibroin gene cloned from fibroin producing and nonproducing cells look the same, especially around the 5' end and the intervening region.

Animals

THE DNA components of the chicken genome.

The organization of the chicken genome was investigated by centrifuging chicken DNA (Mr = 57 X 10(6) in preparative Cs2SO4/Ag+ and Cs2SO4/BAMD density gradients [BAMD = 3.6-bis(acetato-mercurimethyl)dioxane]. An analysis by CsCl density gradient of the DNA fractions obtained from the preparative experiments revealed that 88% of the genome is made up of four DNA components, characterized by buoyant densities of 1.699, 1.702(5), 1.704(5) and 1.708 g/cm3 and representing 39%, 25%, 15%, and 9%, respectively, of the total DNA. The remaining 12% of the genome is formed by seven minor and/or satellite components. The distribution of the ovalbumin gene in a Cs2CO4/BAMD density gradient, as tested with a cloned cDNA probe, coincides with the distribution of the 1.702(5)-g/cm3 component. This shows that the DNA regions flanking the ovalbumin gene are homogeneous in base composition over along distances and that the gene is located on a DNA segment belonging to the 1.702(5)-g/cm3 component.

Animals

Physical map of the Bombyx mori DNA containing the gene for silk fibroin.

A physical map of the DNA containing the gene for silk fibroin was developed from direct hybridization analysis of restriction endonuclease digests of total Bombyx mori DNA using fibroin 125I-mRNA. The orientation of mRNA transcription relative to this map was deduced from the sensitivity of the mRNA coding strand within certain DNA restriction segments to lambda-exonuclease and exonuclease III. The map includes the entire gene coding region (Mr approximately 11 x 10(6)) and large DNA elements which flank the gene at its 5' end (Mr approximately 3 x 10(6)) and 3' end (Mr approximately 6.5 x 10(6)). The coding region is remarkably uniform in its sensitivity to restriction endonucleases. It is completely devoid of sites for most of the enzymes tested, including Hae III, the recognition sequence (d-pG-G C-C) of which might be expected to occur frequently in this large DNA block of 60% G + C content. The fibroin coding region does contain an enormous number of sites for enzymes predicted to have activity from known fibroin mRNA sequences. These results suggeste that the fibroin gene core is a large homogeneously repetitive block of DNA with little evidence for sequence divergence, or the presence of qualitatively different sequences, which might creat other restriction sensitivities. The map also allowed a comparison to be made of the fibroin gene "context" in DNA from tissues either active or inactive in fibroin synthesis.

Animals

Isolation and characterization of a cloned rat insulin gene.

The two nonallelic genes, insulin I and II of the rat, are separated by at least 7 kb of DNA. There is no obvious similarity in the sequence organization surrounding each gene, although the coding regions of the genes themselves share extensive homology. In three strains of rat, the insulin II gene lies predominantly on a 4.0 kb Eco RI restriction fragment, whereas the insulin I gene is located on a 9.4 kb Eco RI fragment in the Hooded strain, on a 7.2 kb Eco RI fragment in the Osborne-Mendel strain, and on both a 9.4 and a 7.2 kb Eco RI fragment in Sprague-Dawley rats. The 9.4 kb Eco RI fragment from Hooded rat DNA was isolated using the lambda cloning system, and the nucleotide sequence of this isolated rat insulin I gene and adjacent regions was determined. A translation in one frame of the sequence of the cloned gene confirms the protein sequence determined for rat pre-proinsulin I. The coding region of this gene lacks intervening sequences, although a presumptive intervening sequence of 119 bp is located in the 5 untranslated region preceding the prehormone sequence. The junctions around the 119 bp segment are identical to those which flank intervening sequences of other eucaryotic genes, AGGT. The site of polyadenylation was determined by direct sequence comparison with rat insulin cDNA clones, and a potential 5 "capping" site is proposed. A DNA sequence preceding this 5 "capping" site in the rat insulin I gene, TATAAAGC, is homologous to corresponding regions in other eucaryotic genes that have been proposed as putative promoter sites for the initiation of transcription.

Animals

Comparison of total sequence of a cloned rabbit beta-globin gene and its flanking regions with a homologous mouse sequence.

The nucleotide sequence of a cloned rabbit chromosomal DNA segment of 1620 nucleotides length which contains a beta-globin gene is presented. The coding regions are separated into three blocks by two intervening sequences of 126 and 573 base pairs, respectively. The rabbit sequence was compared with a homologous mouse sequence. The segments flanking the rabbit gene, as well as the coding regions, the 5' noncoding and part of the 3' noncoding messenger RNA sequences are similar to those of the mouse gene; the homologous introns, despite identical location, are distinctly dissimilar except for the junction regions. Homologous introns may be derived from common ancestral introns by large insertions and deletions rather than be multiple point mutations.

Animals

The primary structure of a glyceraldehyde-3-phosphate dehydrogenase gene from Saccharomyces cerevisiae.

The complete nucleotide sequence of the coding, as well as the flanking noncoding regions, of a yeast glyceraldehyde-3-phosphate dehydrogenase gene was determined. Both the 5' and 3' noncoding sequences are extremely AT-rich and regions of partial dyad symmetry are present immediately adjacent to the 5' and 3' ends of the translated portion of the gene. The sequence AAUAAA is present in the 3' noncoding region of this gene and is a part of an extensive region of dyad symmetry which is structurally related to the 3'-terminal portion of both procaryotic mRNAs, as well as some eukaryotic mRNAs. The coding region of this gene does not contain intervening sequences. Establishment of the primary structure of this glyceraldehyde-3-phosphate dehydrogenase gene provides a basis for further studies involving in vitro mutation of the gene and subsequent analysis of gene expression in vivo.

Base Sequence