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At least 433 records · Page 24Linked to original sources

Identification of a novel cytokeratin 19 pseudogene that may interfere with reverse transcriptase-polymerase chain reaction assays used to detect micrometastatic tumor cells.

In many recent publications, it has been claimed that reverse transcriptase-polymerase chain reaction (RT-PCR) assays involving genes with tissue-restricted expression can be used for specific and sensitive detection of cancer cells in blood, bone marrow and lymph nodes. Many different target mRNAs have been evaluated for such purposes. One of the most extensively studied genes, CK19, is predominantly expressed in cells of epithelial origin and normally not at detectable levels in hematopoietic or lymphatic tissues. Based on previous reports on CK19 we wanted to establish a useful assay for detection of micrometastatic cells. RNA and DNA specimens extracted from peripheral blood nucleated cells of healthy volunteers, as well as cell lines positive and negative for CK19 expression, were used in nested RT-PCR assays. Using previously published primers, we found a novel pseudogene that shows a high degree of identity with the CK19 gene sequence, except for differences caused by 3 small deletions and a number of point mutations, resulting in termination codons and frameshifts. The gene has therefore no coding potential. Importantly, published primer sequences and reaction conditions used by several other groups to detect CK19 mRNA may have led to the amplification of this pseudogene. The data illustrate one of the problems that must be addressed in validating RT-PCR assays for micrometastasis detection, and it is suggested that previous work using CK19 as a marker should be reassessed in view of the present finding.

Artifacts↗

Molecular analysis of a patient with hydrops fetalis caused by beta-glucuronidase deficiency, and evidence for additional pseudogenes.

A patient with hydrops fetalis caused by beta-glucuronidase deficiency was found to be homozygous for a C to T transition at nucleotide position 672 in his cDNA. Genomic analysis showed the presence of pseudogenes for the beta-glucuronidase gene. After separation of PCR products of the gene and the pseudogenes it was shown that the patient and his father were heterozygous for the C-T 672 transition and the mother did not carry the mutation.

Base Sequence↗

Characterization of iduronate-2-sulfatase gene-pseudogene recombinations in eight patients with Mucopolysaccharidosis type II revealed by a rapid PCR-based method.

Various types of complex genetic rearrangements involving the iduronate-2-sulfatase (IDS) and its homologous pseudogene (IDS2, IDSP1) have so far been reported as the cause of Mucopolysaccharidosis type II (MPS2 or MPS II; Hunter syndrome). When using conventional mutational analyses, the occurrence in intronic regions of these rearrangements can be misleading. Here, we describe a rapid PCR-based method set up to detect possible gene/pseudogene recombinations among a series of Italian male patients who had negative results in the mutation analysis of the IDS gene. Our approach selected eight unrelated patients showing recombinations. The characterization of the proximal regions containing the breakpoints in the eight patients identified four different rearrangements due to both inversion and conversion events. Comparison of our data with previous publications confirmed that the recombinations between the IDS gene and the IDS2 pseudogene result from separate events, considering their occurrence at different positions within the same "hotspot" genomic region in unrelated patients. The RT-PCR analysis of the available cDNAs pointed out the different effects of similar rearrangements on the expression of the IDS gene. This method can be utilized effectively in the absence of the patients' cDNA, as well as for carrier detection among female family members. This advantageous approach reduces costs, is less time-consuming, and requires a smaller DNA quantity in comparison to the Southern blot hybridization technique often utilized for such complex rearrangements.

DNA Mutational Analysis↗

Generation of processed pseudogenes in murine cells.

Using as a reporter gene a non-coding proviral structure marked with an intron-containing indicator, we demonstrate the de novo formation, via a retrotransposition pathway, of canonical processed pseudogenes in cultured mammalian cells. Their structural features include endings corresponding to the start and termination of the RNA intermediate, intron loss, acquisition of a 3' poly(A) tail, and target site duplications of variable length. The absence of extracellular intermediates for these processes, and the elimination during retrotransposition of sequences in the reporter gene essential in cis for a retroviral cycle, further suggest that endogenous retroviruses or related elements are not involved. Pseudogene formation frequency is markedly increased (up to 10-fold) by several treatments including treatment with 5-azacytidine or tetradecanoyl phorbol acetate, or serum starvation, which do not act at the reporter gene transcription level, but rather on endogenous genes--including the LINE elements--necessarily involved in trans-complementation for retrotransposition.

3T3 Cells↗

HnRNP A3 genes and pseudogenes in the vertebrate genomes.

The hnRNP A/B type proteins are abundant nuclear factors that bind to Pol II transcripts and are involved in numerous RNA-related activities. To date most data on the hnRNP A/B family have been obtained with recombinant proteins and cell cultures. Further characterization can result from an examination of the impact of various modifications in intact functional loci; however, such characterization is hampered by the presence of numerous and widely dispersed hnRNP A/B-related sequences in the mammalian genome. We have found hnRNP A3, a poorly recognized member of the hnRNP A/B family, among candidate transcription factors that interact with the regulatory region of the Hoxc8 gene and screened the human and mouse genomes for genes that encode hnRNP A3. We demonstrate that the sequence reported previously as the human hnRNP A3 gene (Accession number S63912) and located on 10p11.1 belongs to a processed pseudogene of the functional intron-containing locus HNRPA3, which we have identified on 2q31.2. We have also identified its murine orthologs on mouse chromosome 2D and rat chromosome 3q23. Alternative splices were revealed at the N-terminus and in the middle of hnRNP A3. 14 and 28 additional loci in the human and mouse genome, respectively, were mapped and identified as hnRNP A3 processed pseudogenes. In addition, we have found and compared hnRNP A3 orthologous genes in Gallus gallus, Xenopus tropicalis, and Danio rerio. The present in silico analysis serves as a necessary step toward a further functional characterization of hnRNP A3.

Alternative Splicing↗

Multiple copies of coding as well as pseudogene c-mos sequence exist in three lacertid species.

The analysis of a 581 bp section of the nuclear gene c-mos revealed multiple copies of putative functional sequences as well as pseudogenes in three closely related lacertid species Lacerta laevis, L. kulzeri and L. cyanisparsa. A phylogenetic analysis of c-mos in comparison with a molecular phylogeny based on the mitochondrial cytochrome b gene supports our findings. The study also provides new insights into the phylogenetic relationships of L. cyanisparsa and L. laevis. Pseudogenes of the three species share 11 single-nucleotide substitutions, a 1 bp deletion and a premature stop codon but differ by group-specific mutations. This result suggests that the c-mos gene has become duplicated and subsequently silenced already in the common ancestor of the three species. Sequence divergence suggests that the duplication and the loss of function occurred in the late Miocene/early Pliocene, i.e., about 5 million years ago. Indications of gene conversion are discussed. We suggest that future studies using c-mos for phylogenetic studies should provide evidence for the orthology of the sequences compared.

Animals↗

KLK31P is a novel androgen regulated and transcribed pseudogene of kallikreins that is expressed at lower levels in prostate cancer cells than in normal prostate cells.

BACKGROUND: Fifteen human tissue kallikrein (KLK) genes have been identified as a cluster on chromosome 19. KLK expression is associated with various human diseases including cancers. Noncoding RNAs such as PCA3/DD3 and PCGEM1 have been identified in prostate cancer cells. METHODS: Using massively parallel signature sequencing (MPSS) technology, RT-PCR, and 5' rapid amplification of cDNA ends (RACE), we identified and cloned a novel gene that maps to the KLK locus. RESULTS: We have characterized this gene, named as KLK31P by the HUGO Gene Nomenclature Committee, as an unprocessed KLK pseudogene. It contains five exons, two of which are KLK-derived while the rest are "exonized" interspersed repeats. KLK31P is expressed abundantly in prostate tissues and is androgen regulated. KLK31P is expressed at lower levels in localized and metastatic prostate cancer cells than in normal prostate cells. CONCLUSIONS: KLK31P is a novel androgen regulated and transcribed pseudogene of kallikreins that may play a role in prostate carcinogenesis or maintenance.

Amino Acid Sequence↗

Discriminative quantification of cytochrome P4502D6 and 2D7/8 pseudogene expression by TaqMan real-time reverse transcriptase polymerase chain reaction.

The human drug oxidizing cytochrome P450, CYP2D6, is expressed at highly variable levels mainly due to a common genetic polymorphism which leads to the poor metabolizer phenotype in carriers of two nonfunctional alleles and to the extensive metabolizer phenotype in carriers of one or more functional alleles. Investigation of the role of CYP2D6 mRNA for expression and the possibility of using mRNA expression as a surrogate marker has been hampered by the presence of two pseudogenes, CYP2D7P and CYP2D8P. We therefore developed highly specific TaqMan real-time reverse transcriptase-PCR assays for the discriminative quantification of CYP2D6 and CYP2D7/8P transcripts. By in vitro transcription of plasmids containing the CYP2D6 cDNA or a hybrid CYP2D6/7 cDNA constructed by in vitro mutagenesis, authentic cRNAs were synthesized to be used for specificity testing and for absolute quantification. The method was used to determine CYP2D transcripts in a large number of human livers samples. CYP2D6 was not normally distributed with a median mRNA content of 3.2 transcripts per picogram of total RNA in all livers (range 0.32-14.8, N = 74). Expression in genetic poor metabolizers (1.81, N = 6) was significantly lower compared to extensive metabolizers (3.33, N = 68, P = 0.022). Similar expression levels were found for CYP2D7/8P (median 3.38 transcripts/pg, range 0.46-14.3), which were correlated to CYP2D6 mRNA (r(S) = 0.46, P < 0.0001) but did not depend on CYP2D6 genotype. These data demonstrate genotype-dependent mRNA expression for CYP2D6 and they emphasize the necessity of differentiating between the functional CYP2D6 and the CYP2D pseudogenes.

Base Sequence↗

Evidence that two reports of mtDNA cytochrome c oxidase "mutations" in Alzheimer's disease are based on nDNA pseudogenes of recent evolutionary origin.

Recently, two reports [R. E. Davis et al. (1997) Proc. Natl. Acad. Sci. USA 94, 4564-4569 and E. Fahy et al. (1997) Nucleic Acids Res. 25, 3102-3109] described a series of heteroplasmic mitochondrial DNA (mtDNA) mutations in the genes encoding two cytochrome c oxidase subunits (CO1 and CO2) which segregated in higher abundance with Alzheimer's disease subjects than controls. Using mtDNA-depleted NT2 cells, we provide further evidence that these two reports are erroneously based on a PCR artifact arising from the amplification of nuclear DNA encoded mtDNA pseudogenes (mtDNA psi s). Our findings are similar, but not identical, to other recent studies of these putative mtDNA psi sequences. This sequence variability may indicate that multiple mtDNA psi s, all of comparatively recent evolutionary origin are involved. While such pseudogenes are interesting in that they provide a molecular evolutionary "snapshot" of human ancestral mtDNA, it is unlikely that they play any role in the etiology of Alzheimer's disease.

Alzheimer Disease↗

Complete sequence of a bovine alpha-lactalbumin pseudogene: the region homologous to the gene is flanked by two directly repeated LINE sequences.

A 3-kb fragment hybridizing with a bovine alpha-lactalbumin cDNA probe was isolated from a bovine genomic library and completely sequenced. An internal fragment beginning downstream from exon 2, as already reported for another pseudogene, but ending in the 3'-untranslated region of exon 4 shares 78% sequence similarity with the bovine alpha-lactalbumin gene. This region is flanked by two directly repeated LINE sequences. The 5' ends of the fragment and of the aforementioned pseudogene share a specific nucleotide stretch, which suggests that they might have had a common origin.

ATP Synthetase Complexes↗

Identification of a TXREB pseudogene (TXREBP) located between the genes for p55 (MPP1) and G6PD on Xq28.

A fibroblast cDNA library was screened by hybridization to a yeast artificial chromosome containing genomic sequences from human Xq28. The majority of positive cDNA clones were found to correspond to the cDNA coding for TXREB, an HTLV-1 enhancer-binding protein. Sequence analysis of the Xq28 genomic DNA revealed a number of deleterious changes compared to the previously reported cDNA. In addition, both the genomic DNA and cDNA isolates were found to be lacking a 599-bp sequence, bracketed by GT and AG, in the 5' untranslated region. These results suggest that the Xq28-linked gene is a processed pseudogene for TXREB and that the previously reported cDNA was only partially processed. Southern blot analysis on a hybrid mapping panel confirmed the presence of at least one autosomal gene for TXREB, and Northern blot hybridization with the 599-bp putative intron probe confirmed that the sequence is not part of the mature mRNA. Further analysis showed that the gene is expressed in a variety of human tissues and that the pseudogene is located between the genes for the proteins p55 and G6PD.

Base Sequence↗

Cloning and chromosomal localization of the human A2b adenosine receptor gene (ADORA2B) and its pseudogene.

To determine the chromosomal localization of the human A2b adenosine receptor, the corresponding genomic clone was isolated and used as a probe for fluorescence in situ hybridization to metaphase chromosomes. Partial sequence analysis of the A2b gene (AD-ORA2B) revealed an intron that interrupted the coding region corresponding to the second intracellular loop similar to that reported for A1 and A2a adenosine receptor genes. A pseudogene for the A2b receptor was also identified; it exhibited 79% identity to the A2b adenosine receptor cDNA coding sequence and contained multiple deletions, point mutations, and frame shifts and two in-frame stops. These changes would result in the inability to encode a functional receptor. The genomic clones were utilized to localize the A2b receptor to chromosome 17p12 and the A2b pseudogene to chromosome 1q32.

Chromosome Mapping↗

The chromosomal location of the mouse mammary tumor gene Int6 and related pseudogenes in the mouse genome.

The Int6 gene is a common insertion site for the mouse mammary tumor virus (MMTV) in mouse mammary tumors. We have determined that this gene is located centromeric of the Myc protooncogene on mouse chromosome 15. In the mouse genome there are several other Int6-reactive restriction fragments that are located on mouse chromosomes 6, 11, 14, 17, and 18. Nucleotide sequence analysis of four of six of these additional Int6 fragments showed that they contain processed Int6 pseudogenes. Comparisons between the Int6 genes of the inbred mouse laboratory strains and the wild mouse species Mus spretus and Mus mus musculus indicate that some pseudogenes were present before divergence of these species and others were acquired since their separation.

Animals↗

Chromosomal mapping of a family of human glutamine synthetase genes: functional gene (GLUL) on 1q25, pseudogene (GLULP) on 9p13, and three related genes (GLULL1, GLULL2, GLULL3) on 5q33, 11p15, and 11q24.

Glutamine synthetase (GS) is a ubiquitous enzyme that catalyzes the ATP-dependent conversion of glutamate to glutamine using ammonia as the nitrogen source. Using human GS cDNA as a probe, a bacterial artificial chromosome (BAC) library consisting of two-fold coverage of the human genome was screened, and 18 clones were obtained. The restriction analysis of the human insert DNAs provided a basis to divide these 18 BAC clones into five groups, suggesting the existence of a GS gene family in the human genome. PCR analysis using three sets of primers designed from the reported sequences for GS cDNA and a processed pseudogene identified the corresponding BAC clones. Fluorescence in situ hybridization analysis revealed the chromosomal localization of these five genes: the GS gene to 1q25 (GLUL), the processed pseudogene to 9p13 (GLULP), and three related gene to 5q33 (GLULL1), 11p15 (GLULL2), and 11q24 (GLULL3), respectively.

Chromosome Mapping↗

Mapping of the mouse actin capping protein alpha subunit genes and pseudogenes.

Capping protein (CP), a heterodimer of alpha and beta subunits, is found in all eukaryotes. CP binds to the barbed ends of actin filaments in vitro and controls actin assembly and cell motility in vivo. Vertebrates have three alpha isoforms (alpha 1, alpha 2, alpha 3) produced from different genes, whereas lower organisms have only one gene and one isoform. We isolated genomic clones corresponding to the alpha subunits of mouse CP and found three alpha 1 genes, two of which are pseudogenes, and a single gene for both alpha 2 and alpha 3. Their chromosomal locations were identified by interspecies backcross mapping. The alpha 1 gene (Cappa1) mapped to chromosome 3 between D3Mit11 and D3Mit13. The alpha 1 pseudogenes (Cappa1-ps1 and Cappa1-ps2) mapped to Chromosomes 1 and 9, respectively. The alpha 2 gene (Cappa2) mapped to Chromosome 6 near Ptn. The alpha 3 gene (Cappa3) also mapped to Chromosome 6, approximately 68 cM distal from Cappa2 near Kras2. One mouse mutation, de, maps in the vicinity of the alpha 1 gene. No known mouse mutations map to regions near the alpha 2 or alpha 3 genes.

Actin Capping Proteins↗

Cloning and mapping of human Rab7 and Rab9 cDNA sequences and identification of a Rab9 pseudogene.

Rab GTPases reside in specific intracellular compartments and are key regulators of vesicular transport. To facilitate studies of the mechanism of lysosomal integral membrane protein (LAMP-1) transport, cDNAs for human Rab7 and Rab9 were isolated, and their nucleotide sequences were determined. During isolation and characterization of these cDNAs a Rab9 pseudogene was identified. The sequences are highly homologous to other mammalian Rab proteins and also share homology with proteins of the Rab GTPase family. Rab7 and the Rab9 pseudogene were mapped to chromosomes 3 and 5, respectively, by amplification of their sequences from human monochromosomal somatic cell hybrids. In addition, preliminary studies using antisense expression indicate that down-regulation of either Rab7 or Rab9 proteins induces severe cell vacuolation that resembles the phenotype seen in fibroblasts from patients with Chediak-Higashi syndrome.

Animals↗

Structures and chromosomal localizations of the glycosylphosphatidylinositol synthesis gene PIGC and its pseudogene PIGCP1.

More than 10 genes are involved in the biosynthesis of glycosylphosphatidylinositol (GPI), which anchors many mammalian cell surface proteins to the membrane. Paroxysmal nocturnal hemoglobinuria (PNH) is caused by a somatic mutation in a GPI biosynthesis gene within the hematopoietic stem cell. The X-linked gene PIGA has been found to be mutated in all patients with PNH. This is probably because all other GPI synthesis genes are autosomal; hence two somatic mutations must occur to cause PNH, whereas one somatic mutation is sufficient to inactivate PIGA. Consistent with this notion, three other genes, PIGB, PIGF, and PIGH, are autosomal. Here we isolated a genomic clone of another GPI-synthesis gene, PIGC, and mapped it to chromosome 1q23-q25, further supporting this notion. PIGC is an intronless gene. We found an intronless pseudogene of PIGC, PIGCP1, and mapped it to chromosome 11p12-p13. The presence of a processed pseudogene is a common feature of PIGA, PIGF, and PIGC.

Amino Acid Sequence↗

Chromosomal mapping of the human and murine orphan receptors ERRalpha (ESRRA) and ERRbeta (ESRRB) and identification of a novel human ERRalpha-related pseudogene.

The estrogen-related receptors ERRalpha and ERRbeta (formerly ERR1 and ERR2) form a subgroup of the steroid/thyroid/retinoid receptor family. ERRalpha and ERRbeta are homologous to the estrogen receptor and bind similar DNA targets; however, they are unable to activate gene transcription in response to estrogens. We have used interspecific backcross analysis to map the murine Estrra locus to chromosome 19 and Estrrb to mouse chromosome 12. Using fluorescence in situ hybridization, we have mapped the human ESRRA gene to chromosome 11q12-q13 and the human ESRRB gene to chromosome 14q24.3. In addition, we report the isolation of a processed human ERRalpha pseudogene mapping to chromosome 13q12.1. To our knowledge, this represents the first report of a pseudogene associated with a member of the nuclear receptor superfamily.

Amino Acid Sequence↗