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Molecular structures of human argininosuccinate synthetase pseudogenes. Evolutionary and mechanistic implications.

In the human genome there is one expressed gene for argininosuccinate synthetase and 14 pseudogenes. A cDNA coding for human argininosuccinate synthetase was used to screen a human genomic library. Twenty-five unique genomic clones were isolated and extensively characterized. At least seven clones represented processed argininosuccinate synthetase pseudogenes that lost the introns in the expressed gene. Restriction mapping demonstrated that these processed pseudogenes were located in distinct regions of the human genome. Complete nucleotide sequences of two processed pseudogenes, psi AS-1 and psi AS-3, and a partial sequence of psi AS-7 were determined. Both psi AS-1 and psi AS-3 had an adenine-rich region at their 3' end and were flanked by distinct imperfect direct repeats. A comparison of these pseudogene sequences to that of the cDNA demonstrated that psi AS-1 and psi AS-3 were 93% homologous to the cDNA, whereas psi AS-7 was 89% homologous to the cDNA. Therefore, it is estimated that psi AS-1 and psi AS-3 were created 10-11 million years ago, whereas psi AS-7 arose approximately 21 million years ago. We have estimated the evolutionary rate for the expressed argininosuccinate synthetase gene based on the sequences of psi AS-1 and psi AS-3. These data indicate that the expressed argininosuccinate synthetase gene is evolving at a rate similar to that of the beta-globin gene and much faster than the alpha-tubulin gene. Furthermore, a comparison of the sequences of psi AS-1 and psi AS-3 suggests the possibility that these pseudogenes arose from a common intermediate.

Argininosuccinate Synthase↗

The structure of the prostaglandin EP4 receptor gene and related pseudogenes.

The EP4 prostaglandin receptor (EP4R) is a member of the seven transmembrane receptor superfamily. We have obtained the human EP4 receptor gene sequence and determined its structure relative to EP4R cDNA synthesized from peripheral blood lymphocytes. The EP4R gene spans approximately 22 kb and consists of three exons separated by two introns. The first exon (530 bp) is noncoding. After an intron of 472 bp, the second exon contains a short (43 bp) 5' sequence before a 289-amino-acid open reading frame (ORF). An 11.5-kb intron is found at the end of transmembrane 6, and the rest of the ORF is in exon 3. The gene structure is analogous to those of the thromboxane, PGI, and PGD receptors. The deduced initiation site does not contain a conventional TATA box but is 70% GC-rich and contains CCAAT boxes, SP1 and AP2 motifs, and motifs consistent with activation by proinflammatory cytokines. Southern blot analysis of human genomic DNA shows two genes with homology to the EP4R gene. Both appear to be pseudogenes with 70% amino acid identity to the EP4R up to the "ERY" sequence at the end of transmembrane 3, where an Alu-like repetitive sequence element was found. The ORF sequence is also interrupted by a stop codon. The pseudogenes differ in that one contains a second "repetitive element" (a line 1 repeat) in the 5' end of the ORF. Northern blot analysis of human mRNA using a pseudogene probe showed hybridization only to the EP4 receptor transcript. PCR also failed to detect expression of either pseudogene. This study defines the gene structure of EP4R and suggests the existence of two related pseudogenes.

Amino Acid Sequence↗

Pseudogenes and short repeated sequences in the rice chloroplast genome.

The rice chloroplast genome has been derived from a tobacco-like ancestral form by three major inversions. In the rice genome we have found six pseudogenes, psi trnG, psi trnI, psi 3'-rps 12a, psi trnT, psi trnE and psi trnfM/G, all located near inversion endpoints, as well as four short repeated sequences. A comparison of rice, wheat and tobacco sequences indicated that similar pseudogenes are present in wheat but not in tobacco, suggesting that the creation of these pseudogenes occurred before the divergence of rice and wheat. The region downstream of rbcL is a variable region and contains psi rpl23 in rice and wheat and another psi 3'-rps 12b further downstream in rice. This psi 3'-rps 12b shows a higher homology to the functional rps 12 than psi 3'-rps 12a, which suggests that it appeared more recently. The involvement of these pseudogenes in genome inversions and the creation of the pseudogenes and short repeated sequences are discussed.

Base Sequence↗

Tail-to-head arrangement of a partial chicken glyceraldehyde-3-phosphate dehydrogenase processed pseudogene.

A chicken glyceraldehyde 3-phosphate dehydrogenase (GAPDH) processed pseudogene was identified by inverse PCR using oligonucleotide primers specific for the 5' region of the GAPDH mRNA. Molecular cloning and sequence analysis of this genomic sequence shows that the processed pseudogene is incomplete and arranged in a permuted tail-to-head order. We propose that the tail-to-head organization is the result of circularization and breakage of a GAPDH retrogene prior to chromosomal integration. PCR analysis of DNAs from quail, pheasant, and various jungle fowl, shows that the processed pseudogene was formed after the three genera diverged but prior to Gallus speciation. This is the first report of a chicken GAPDH processed pseudogene sequence. This is also the first published report of a processed pseudogene with a tail-to-head organization.

Animals↗

A translocated mitochondrial cytochrome b pseudogene in voles (Rodentia: Microtus)

A full-length cytochrome b pseudogene was found in rodents; it has apparently been translocated from a mitochondrion to the nuclear genome in the subfamily Arvicolinae. The pseudogene (psi cytb) differed from its mitochondrial counterpart at 201 of 1143 sites (17.6%) and by four indels. Cumulative evidence suggests that the pseudogene has been translocated to the nucleus. Phylogenetic reconstruction indicates that the pseudogene arose before the diversification of M. arvalis/M. rossiaemeridionalis from M. oeconomus, but after the divergence of the peromyscine/sigmodontine/ arvicoline clades some approximately 10 MYA. Published rates of divergence between mitochondrial genes and their nuclear pseudogenes suggest that the translocation of this mitochondrial gene to the nuclear genome occurred some 6 MYA, in agreement with the phylogenetic evidence.

Animals↗

Inferring the pattern of spontaneous mutation from the pattern of substitution in unitary pseudogenes of Mycobacterium leprae and a comparison of mutation patterns among distantly related organisms.

The pattern of spontaneous mutation can be inferred from the pattern of substitution in pseudogenes, which are known to be under very weak or no selective constraint. We modified an existing method (Gojobori T, et al., J Mol Evol 18:360, 1982) to infer the pattern of mutation in bacteria by using 569 pseudogenes from Mycobacterium leprae. In Gojobori et al.'s method, the pattern is inferred by using comparisons involving a pseudogene, a conspecific functional paralog, and an outgroup functional ortholog. Because pseudogenes in M. leprae are unitary, we replaced the missing paralogs by functional orthologs from M. tuberculosis. Functional orthologs from Streptomyces coelicolor served as outgroups. We compiled a database consisting of 69,378 inferred mutations. Transitional mutations were found to constitute more than 56% of all mutations. The transitional bias was mainly due to C-->T and G-->A, which were also the most frequent mutations on the leading strand and the only ones that were significantly more frequent than the random expectation. The least frequent mutations on the leading strand were A-->T and T-->A, each with a relative frequency of less than 3%. The mutation pattern was found to differ between the leading and the lagging strands. This asymmetry is thought to be the cause for the typical chirochoric structure of bacterial genomes. The physical distance of the pseudogene from the origin of replication (ori) was found to have almost no effect on the pattern of mutation. A surprising similarity was found between the mutation pattern in M. leprae and previously inferred patterns for such distant taxa as human and Drosophila. The mutation pattern on the leading strand of M. leprae was also found to share some common features with the pattern inferred for the heavy strand of the human mitochondrial genome. These findings indicate that taxon-specific factors may only play secondary roles in determining patterns of mutation.

Animals↗

The Old World sparrows (genus Passer) phylogeography and their relative abundance of nuclear mtDNA pseudogenes.

The phylogenetic relationships of genus Passer (Old World sparrows) have been studied with species covering their complete world living range. Mitochondrial (mt) cyt b genes and pseudogenes have been analyzed, the latter being strikingly abundant in genus Passer compared with other studied songbirds. The significance of these Passer pseudogenes is presently unclear. The mechanisms by which mt cyt b genes become pseudogenes after nuclear translocation are discussed together with their mode of evolution, i.e., transition/transversion mitochondrial ratio is decreased in the nucleus, as is the constraint for variability at the three codon positions. However, the skewed base composition according to codon position (in 1st position the percentage is very similar for the four bases, in 2nd position there are fewer percentage of A and G and more percentage of T, and in 3rd codon position fewer percentage of G and T and is very rich in A and C) is maintained in the translocated nuclear pseudogenes. Different nuclear internal mechanisms and/or selective pressures must exist for explaining this nuclear/mitochondrial differential DNA base evolutive variability. Also, the phylogenetic usefulness of pseudogenes for defining relationships between closely related lineages is stressed. The analyses suggest that the primitive genus Passer species comes from Africa, the Cape sparrow being the oldest: P. hispaniolensis italiae is more likely conspecific to P. domesticus than to P. hispaniolensis. Also, Passer species are not included within weavers or Estrildinae or Emberizinae, as previously suggested. European and American Emberizinae sparrows are closely related to each other and seem to be the earliest species that radiated among the studied songbirds (all in the Miocene Epoch).

Cell Nucleus↗

Characterization of the mouse Tdgf1 gene and Tdgf pseudogenes.

Cripto protein is a member of the "EGF family" of growth factors present in colon tumors and in human and mouse undifferentiated teratocarcinoma cells. During gastrulation in the mouse, cripto-encoding transcripts are expressed in the forming mesoderm and later in the truncus arteriosus of the developing heart. As a necessary step prior to investigating the in vivo role of cripto through gene disruption, we have isolated all the genomic cripto-related sequences in the mouse. One gene (Tdgf1) and two pseudogenes (Tdgf2 and Tdgf3) have been isolated and characterized. The mouse Tdgf1 (coding for cripto), like the human gene, is divided into six exons. Comparison of the human and mouse genomic sequences reveals that mouse exons 1 and 3 are shorter than the corresponding human exons. The pseudogene Tdgf2 corresponds to about 1 kb of the mRNA and contains five base substitutions in the coding region that represent both silent and replacement substitutions. The pseudogene Tdgf3 corresponds only to the coding portion of Tdgf. Many mutations have been introduced in this pseudogene, suggesting its early origin. Alignments of the Tdgf3, human and mouse mRNA sequences, shows that this pseudogene has retained the 33 nucleotides of the human exon 3 that are missed in the Tdgf1 gene. Taken together, these data suggest that Tdgf3 is derived from an ancestral gene and that the human and mouse genes are probably evolving separately.

3T3 Cells↗

Identification of ABCC6 pseudogenes on human chromosome 16p: implications for mutation detection in pseudoxanthoma elasticum.

Pseudoxanthoma elasticum (PXE), a heritable disorder affecting the skin, eyes, and the cardiovascular system, has recently been linked to mutations in the ABCC6 gene on chromosome 16p13.1. The original mutation detection strategy employed by us consisted of the amplification of each exon of the ABCC6 gene with primer pairs placed on the flanking introns, followed by heteroduplex scanning and direct nucleotide sequencing. However, this approach suggested the presence of multiple copies of the 5'-region of the gene when total genomic DNA was used as a template. In this study, we have identified two pseudogenes containing sequences highly homologous to the 5'-end of ABCC6. First, by the use of allele-specific polymerase chain reaction (PCR), two bacterial artificial chromosome (BAC) clones containing a putative pseudogene of ABCC6, designated as ABCC6-psi 1, were isolated from the human BAC library. Sequence analysis of ABCC6-psi 1 revealed it to be a truncated copy of ABCC6, which contains the upstream region and exon 1 through intron 9 of the gene. Secondly, a homology search of a high-throughput sequence database revealed the presence of another truncated copy of ABCC6, which was designated as ABCC6-psi 2, and which was shown to harbor upstream sequences and a segment spanning exon 1 through intron 4 of ABCC6. In addition to several nucleotide differences in the flanking introns and the upstream region, both pseudogenes contain several nucleotide changes in the exonic sequences, including stop codon mutations, which complicate mutation analysis in patients with PXE. Nucleotide differences in flanking introns between these two pseudogenes and ABCC6 allowed us to design allele-specific primers that eliminated the amplification of both pseudogene sequences by PCR and provided reliable amplification of ABCC6-specific sequences only. The use of allele-specific PCR has revealed, thus far, two novel 5'-end PXE mutations, 179del9 and T364R in exons 2 and 9, respectively, and several polymorphisms within the upstream region and exons 1-9 of ABCC6. These strategies facilitate comprehensive analysis of ABCC6 for mutations in PXE.

Alleles↗

Two pseudogenes among three rat immunoglobulin lambda chain genes.

In order to examine the number and organization of the immunoglobulin lambda light chain genes of the rat, we have used mouse lambda chain cDNA probes to isolate hybridizing fragments from a partial EcoRI rat liver DNA library. We have determined the partial nucleotide sequence of two such clones. One clone, containing a 5.8 kb EcoRI insert which hybridizes to both mouse C lambda 1 and C lambda 2 probes, includes an apparently expressible C lambda 2-like gene as well as a C lambda 1-like pseudogene (psi C lambda 1.1), arranged similarly to the mouse C lambda gene complexes. Sequence analysis of a second cloned EcoRI fragment (1.15 kb in length) revealed part of a second C lambda 1-like pseudogene (psi C lambda 1.2), the coding regions of both pseudogenes being interrupted by multiple frame-shifting size differences. In the case of psi C lambda 1.2, the degree of sequence identity with mouse C lambda 1 drops abruptly immediately following the termination codon, suggesting that translocation events have played a role in its generation. These two rat pseudogenes, and the mouse C lambda 4 pseudogene, clearly have been rendered unexpressible by separate evolutionary events. Comparisons between C lambda coding and non-coding regions of rats and mice indicate that some of the unusual patterns of divergence we have observed in recently diverged Ck genes may exist in C lambda genes as well.

Animals↗

A processed J chain pseudogene on human chromosome 8 that is shared by several primate species.

Human DNA contains two sequences that hybridize to a human J chain gene probe: the J chain gene itself and a second previously uncharacterized sequence. By cloning and sequence analysis we now show this related sequence to be a processed pseudogene, which we have localized using somatic hybrids to chromosome 8 (distinct from the functional gene on chromosome 4) and mapped by linkage analysis to 8q13-q21. The pseudogene provides evidence of an additional DNA insertion event as it contains an AluI element embedded in sequence corresponding to the 3' untranslated region of the gene. The extent of sequence divergence between the pseudogene and the functional J chain gene suggests that the pseudogene was created roughly 40-50 million years ago; consistent with this estimate, Southern blots suggest that the pseudogene is shared by great apes as well as Old World monkeys.

Animals↗

A mouse thymidylate synthase pseudogene derived from an aberrantly processed RNA molecule.

A DNA fragment containing a mouse-thymidylate-synthase(TS) processed pseudogene was cloned and analyzed. Comparison with the sequences of the mouse TS-encoding gene (ts) and cDNA revealed that the pseudogene started at one of the normal 5' termini of TS mRNA, ended with a poly(A) tail, and was flanked by 16-nucleotide (nt) direct repeats. The region corresponding to the open reading frame was 97.3% identical to that of the cDNA. Two unusual features were observed. First, the poly(A) tail of the pseudogene was located 2 kb downstream from the normal location. Second, the final 10 nt of intron 5 were retained in the 'coding region' of the pseudogene. Therefore, it appears that the pseudogene was derived from a nonfunctional TS 'mRNA' that was aberrantly spliced and polyadenylated. Analysis of the sequence of intron 5 of the ts gene revealed the presence of an alternative 3' splice site 10 nt upstream from the normal splice site. S1-nuclease protection assays showed that about 10% of TS mRNA isolated from mouse cells was spliced at the alternative site.

Amino Acid Sequence↗

Characterization of the transcription unit and two processed pseudogenes of chimpanzee triosephosphate isomerase (TPI).

Three members of the chimpanzee TPI (encoding triosephosphate isomerase) gene family, the transcription unit and two processed pseudogenes, have been characterized by genomic blotting and nucleotide sequence analysis. The bona fide TPI gene spans 3.5 kb with seven exons and six introns, and is the first hominoid TPI gene to be completely sequenced. The chimpanzee gene exhibits a very high degree of sequence identity with human and rhesus TPI genes. For example, the polypeptides of 248 amino acids (aa) encoded by the chimpanzee and human TPI genes are identical, but the codons for five of these aa differ in the third codon wobble position. No alternative splice sites could be identified in the intervening sequences of the gene and, thus, the molecular basis for the synthesis of the proliferation-specific TPI isozyme observed in hominoids remains elusive. An Alu member occurs upstream from one of the processed pseudogenes, and short sequences with significant identity to the primate LINE-1 element flank the region encompassing the Alu member and TPI pseudogene. A solitary endogenous retroviral long terminal repeat occurs within the structural region of the other processed pseudogene. The ages of the processed pseudogenes are estimated to be 2.6 and 10.4 million years, implying that one was inserted into the genome before and one after the divergence of the chimpanzee and human lineages.

Amino Acid Sequence↗

Characterization of rat pseudogenes for enhancer factor I subunit A: ripping provides clues to the evolution of the EFIA/dbpB/YB-1 multigene family.

Genomic Southern blot analysis of rat EFIA (gene encoding enhancer factor I subunit A) reveals a complex band pattern when cDNA subfragment probes are used. Screening a rat genomic library with a rat EFIA cDNA probe yields two different processed EFIA pseudogenes, designated rat psi EFIA#(2/3) and #(4/7), in addition to two other different, but less extensively characterized clones. psi EFIA#(4/7) has no open reading frame (ORF) sequences. psi EFIA#(2/3) contains two ORFs (83 and 178 codons), the products of which (if expressed) might be negative-acting EFIA transcription factors. Located nearly 0.6 kb upstream from psi EFIA#(2/3) is a perfect 69-bp dinucleotide (CT) tandem repeat, a sequence element associated with other isolated pseudogenes. Additionally, the 3' end of this processed gene is interrupted by an unusual retroposon, an inverted dimeric B1-like short interspersed repetitive element (SINE). The isolation of several independent clones of the same EFIA processed pseudogenes indicates that they comprise a significant component of the rat EFIA copy multiplicity. The phenomenon of repeat induced point mutagenesis (ripping) at rat EFIA pseudogene CpG doublets occurs at a frequency at least 6.5 times higher than predicted from random mutagenesis. This is consonant with the proposal that ripping may be the mechanism which inactivates the ectopic recombination potential of the rat EFIA pseudogenes.

Amino Acid Sequence↗

Evolutionary trail of the mitochondrial genome as based on human 16S rDNA pseudogenes.

In the course of studies on mutations in human mitochondrial (mt) DNA, we have uncovered and sequenced four new nuclear pseudogenes corresponding to bp 2457-2657 of the mt 16S rDNA. The four genes and their homologies with human mtDNA are E2 (62.4%), K10 (74.4%), E1 (84.6%) and LE6 (93.2%). When these five pseudogene sequences and another previously reported pseudogene sequence are compared with each other, they display what appears to be an ordered series of steps from a hypothetical common ancestor. The sequence of the hypothetical ancestor closely resembles that found in a wide variety of present-day mammalian mt genomes. The pseudogene sequences suggest an evolutionary trail of mt mutation dominated by base pair transitions punctuated by integration into the nuclear genome. Once integrated into the nuclear genome, the pseudogenes appear to follow the distinctive nuclear mutational pathway in which GC to AT transitions predominate and CpG sequences are preferentially eliminated.

Animals↗

Characterization of a caprine beta-lactoglobulin pseudogene, identification and chromosomal localization by in situ hybridization in goat, sheep and cow.

A beta-lactoglobulin (beta-LG) pseudogene has been isolated and sequenced (7634 bp) in goat. Its structure is remarkably similar to that of the beta-LG gene with all seven exons placed in the same relative position. The pseudogene seems to have originated by gene duplication, but a non uniform distribution of similarities along the sequence suggests that events of gene conversion have also occurred during its evolution. The comparison of the predicted ancestral protein encoded by the pseudogene shows its evolutionary relationship to the monomeric beta-LG II forms of the beta-LG reported in some non-ruminant species. Southern-blot analysis shows that similar pseudogenes are also found in the genome of sheep and cow. The pseudogene has been mapped by fluorescent in situ hybridization (FISH) to sheep chromosome 3p28 and cattle and goat chromosomes 11q28, in the same mapped position as that found for the beta-LG gene in all these species.

Animals↗

Oct4 pseudogenes are transcribed in cancers.

Octamer-binding transcription factor 4 (Oct4) plays a critical role for maintaining pluripotent and the self-renewing state of stem cells. Recent studies demonstrated that Oct4 gene was expressed in human cancers. Six pseudogenes of Oct4 have been proposed by using bioinformatics approach to analyze the genomic nucleotide sequences. Here, we reported that an Oct4 pseudogene localized in human chromosome 10 (Oct4-pg5) and a pseudogene in chromosome 8 (Oct4-pg1) were transcribed in cancer cell lines as well as cancer tissues tested, and they were not found transcribed in embryonic carcinoma cells, human fibroblasts, and normal tissues tested. Our results suggest that pseudogenes Oct4-pg5 and Oct4-pg1 may be involved in the regulation of Oct4 gene activity thus might be pertinent to carcinogenesis. Transcription of these Oct4 pseudogenes may have contributed artifacts to the current knowledge of Oct4 gene expression and function in cancers.

Cell Line, Tumor↗

Comparative analysis of processed pseudogenes in the mouse and human genomes.

Pseudogenes are important resources in evolutionary and comparative genomics because they provide molecular records of the ancient genes that existed in the genome millions of years ago. We have systematically identified approximately 5000 processed pseudogenes in the mouse genome, and estimated that approximately 60% are lineage specific, created after the mouse and human diverged. In both mouse and human genomes, similar types of genes give rise to many processed pseudogenes. These tend to be housekeeping genes, which are highly expressed in the germ line. Ribosomal-protein genes, in particular, form the largest sub-group. The processed pseudogenes in the mouse occur with a distinctly different chromosomal distribution than LINEs or SINEs - preferentially in GC-poor regions. Finally, the age distribution of mouse-processed pseudogenes closely resembles that of LINEs, in contrast to human, where the age distribution closely follows Alus (SINEs).

Alu Elements↗