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A Dugaiczyk

Publications and source records attributed to A Dugaiczyk.

At least 37 records · Page 2Linked to original sources

Origin of structural domains of the serum-albumin gene family and a predicted structure of the gene for vitamin D-binding protein.

We have recently determined complete DNA sequences for the human albumin and alpha-fetoprotein [AFP] genes and thus have identified their detailed structures. Each is composed of three domains of four exons, three of which are internal and one of which is a domain-linking exon. Equivalent exons in each domain show sufficient sequence and structural similarity to be considered homologous; additional unique exons at each end of the gene show no similarity to the internal triplicated structures. Since earlier, conflicting evolutionary models were based on analysis of single gene structures, we derived from five genes a series of consensus sequences representing the three internal exons as well as the domain-linking exon. The five genes were human and rat albumin and human, mouse, and rat AFP genes. Structurally equivalent exons of the different domains are shown to have arisen from a single exon in a one-domain precursor. Exons that bridge the domains arose from an unequal crossover that fused two exons of the precursor. Our model suggests that part of the coding sequence of the one-domain precursor may have been derived from an intron, by way of loss of a splice site. The consensus sequences were used to propose an intron-exon structure for the related gene encoding the serum vitamin D-binding protein (DBP). DBP is truncated relative to albumin and AFP, and we submit that this results from deletion of two internal exons in the third domain of the gene rather than from premature termination of the coding sequence.

Amino Acid Sequence↗

Molecular structure of the human albumin gene is revealed by nucleotide sequence within q11-22 of chromosome 4.

The human albumin gene spans 16,961 nucleotides from the putative "Cap" site to the first poly(A) addition site. It is split into 15 exons by 14 intervening sequences which are symmetrically placed within the three domains of albumin. The 5' region is highly conserved up to position -250 and contains the putative TATA (-32) and CAT (-88) boxes. A consensus 5' splice sequence reads /GTAGAGT while the 3' splice sequence is pyrimidine rich and contains CTAG/ at the splice junction. The gene contains three polyadenylation signals, and this 3' region presumably arose by triplication of a shorter fragment prior to mammalian radiation. The albumin gene exhibits a high degree of DNA polymorphism and appears to have been recently invaded by Alu repetitive sequences.

Amino Acid Sequence↗

The rate of molecular evolution of alpha-fetoprotein approaches that of pseudogenes.

We conducted the present study in an attempt to correlate function with the rate of molecular evolution for serum albumin and alpha-fetoprotein. We found a high rate of silent substitution (between 5 X 10(-9) and 7 X 10(-9)/site/year) for both the albumin and alpha-fetoprotein genes, perhaps the highest so far reported for an expressed nuclear gene. The rates of effective substitution and amino acid changes were also very high, but in contrast to silent substitutions, they are higher for alpha-fetoprotein than for albumin by approximately 70%. For alpha-fetoprotein, the rate of effective substitution (1.5 X 10(-9)/site/year) may be approaching that for nonfunctional pseudogenes (about 3 X 10(-9)/site/year). Evolutionary divergence was also estimated at the amino acid level. It was found that the rate of change of alpha-fetoprotein (55% amino acids replaced in 100 Myr) approaches that of the fastest-evolving fibrinopeptides (92% amino acids replaced in 100 Myr). This high rate may indicate that alpha-fetoprotein can tolerate a great deal of molecular variation without its function being impaired in the process. Albumin evolves at a slower rate (39% amino acids replaced in 100 Myr), although still faster than either hemoglobin (17% amino acids replaced in 100 Myr) or cytochrome c (5% amino acids replaced in 100 Myr). The slower evolutionary rate may indicate that albumin has more refined functional specifications and hence can tolerate fewer mutational changes. The latter conclusion remains, however, to be reconciled with the condition of inherited analbuminemia, where a virtually complete absence of albumin produces surprisingly few symptoms.

Amino Acid Sequence↗

Chromosomal localization, structure, and expression of the human alpha-fetoprotein gene.

By in situ hybridization of cloned human alpha-fetoprotein cDNA to human mitotic chromosome preparations, the alpha-fetoprotein gene was localized within the q11-22 region on the long arm of human chromosome 4. In addition, the human alpha-fetoprotein gene was isolated from a genomic phage library. The gene is split into 15 exons and 14 introns, and the entire structure is contained within two large (9.5 and 9.0) and two small (0.3 and 0.25 kb) EcoRI fragments of contiguous chromosomal DNA. The structure of alpha-fetoprotein and its gene is very similar to the corresponding structures of serum albumin, indicating a common evolutionary origin of these two serum proteins. However, the two genes are differentially expressed during normal development and under certain pathological conditions such as hepatomas, germ-cell tumors, or ataxia-telangiectasia. The molecular basis of this differential gene expression remains to be understood.

Chromosome Mapping↗

Structural integrity of the human albumin gene in congenital analbuminemia.

The human serum albumin gene was analyzed by restriction endonuclease mapping of chromosomal DNA isolated from a patient with congenital analbuminemia. Following digestion with a variety of restriction endonucleases, the DNA from this individual produced the same fragments with homology to a serum albumin cDNA probe as did a control DNA specimen. Therefore, the genetic condition of congenital analbuminemia is not caused by any gross structural rearrangement or deletion of the gene itself, but may result from an abnormality in the gene's fine structure, perhaps affecting regulation or processing of the primary RNA transcript.

Base Sequence↗

Cloning and sequencing of a deoxyribonucleic acid copy of glyceraldehyde-3-phosphate dehydrogenase messenger ribonucleic acid isolated from chicken muscle.

Glyceraldehyde-3-phosphate dehydrogenase (GAPDH) was purified from the breast muscles of 3-week-old chickens and used to raise a specific antiserum in rabbits. This antiserum was coupled to an in vitro translation assay to monitor the purification of GAPDH mRNA. RNA was isolated from identical breast muscles and consecutively fractionated with several techniques to yield a preparation of GAPDH mRNA which was at least 50% pure. Double-stranded cDNA was made against this purified RNA, inserted into pBR322, and used to transform Escherichia coli. Recombinants were screened by colony filter hybridization with a cDNA probe made against the purified RNA. The hybridization-positive clone with the largest insert, pGAD-28, was then characterized by using pGAD-28-cellulose to select complementary RNA from total poly(A) RNA and then translating the hybridization-selected RNA in vitro. The single translation product was shown to be GAPDH by (1) comigration with pure GAPDH on sodium dodecyl sulfate-polyacrylamide gels, (2) precipitation with specific anti-GAPDH antiserum, (3) cyanylation fingerprinting, and (4) AMP-agarose affinity chromatography. pGAD-28 was mapped with several restriction enzymes and then sequenced by the method of Maxam and Gilbert [Maxam, A. M., & Gilbert, W. (1977) Proc. Natl. Acad. Sci. U.S.A. 74, 560]. The 1261-nucleotide insert was found to contain 29 nucleotides of noncoding sequence at the 5' end, the entire coding region, and 230 nucleotides of the 3'-noncoding region including a poly(A) addition signal (AATAAA) and the first five residues of the poly(A) tail.

Animals↗

Molecular cloning of a vitamin D-dependent calcium-binding protein mRNA sequence from chick intestine.

We have constructed a recombinant cDNA library to facilitate study of the genomic actions of vitamin D3 and its hormonally active metabolite 1,25-dihydroxyvitamin D3 in initiation of the de novo biosynthesis of a 28,000-dalton vitamin D-dependent calcium binding protein (CaBP) present in chick intestine. The recombinant plasmids were prepared by the homopolymeric tailing and hybridization method using as a starting template poly(A)-enriched mRNA obtained from the intestinal mucosa of vitamin D3-replete (+D) chicks. Screening of 9,516 clones in this library was effected by using a comparative in situ colony hybridization technique with two [32P]cDNA probes; these probes were prepared from total poly(A)-RNA from chick intestinal mucosa of vitamin D-deficient (-D) chicks and a poly(A)-RNA specifically enriched for chick intestinal CaBP mRNA by immunoprecipitation of polysomes derived from vitamin D-replete (+D) chicks. We identified 26 clones that consistently displayed a significantly increased hybridization signal when comparing the -D vs. CaBP-enriched probe. Further evaluation of these clones by hybrid-selected translation showed the presence of CaBP-specific sequences. By "RNA gel" analysis of poly(A)-RNA, three independent mRNA species were found to hybridize to a CaBP clone; none of these RNA species were found in -D poly(A)-RNA. With this comparative colony hybridization procedure, we were able to identify CaBP-specific clones corresponding to a mRNA that is 0.1% of the total poly(A)-mRNA. The differential colony hybridization procedure using an enriched vs. a nonenriched probe should be of value in screening for other cDNA clones complementary to rare mRNA species.

Animals↗

Linkage of the evolutionarily-related serum albumin and alpha-fetoprotein genes within q11-22 of human chromosome 4.

Albumin and alpha-fetoprotein are structurally related serum proteins, having a similar gene structure and, conceivably, a common evolutionary origin. To test their relative arrangement in the human genome, the serum albumin and alpha-fetoprotein genes were mapped by in situ hybridization of cloned human albumin or alpha-fetoprotein cDNA to human mitotic chromosome preparations. Analysis of cells hybridized with the serum albumin probe showed that 39% of cells exhibited grains on the proximal portion of the long arm of chromosome 4 (bands q11-22), with these grains comprising 30% of all labeled sites throughout these mitoses. Similarly, in cells hybridized with the alpha-fetoprotein probe, 39% of cells were observed to contain silver grains on 4q11-22, these grains constituting 20% of all labeled sites in these cells. These results demonstrate chromosomal localization and linkage of the serum albumin and alpha-fetoprotein genes within bands q11-22 of the long arm of human chromosome 4.

Biological Evolution↗

Assignment of the structural gene coding for albumin to human chromosome 4.

Albumin is a developmentally regulated serum protein synthesized in the liver mainly during adulthood. Family studies using variant forms of albumin established autosomal linkage between albumin and group-specific component protein (GS). Since GC has been assigned to human chromosome 4, albumin can be indirectly assigned to the same chromosome; however no direct assignment has been made. Recently, the human albumin cDNA probe has been isolated and characterized. It thus permits a direct chromosomal assignment of the albumin gene in the human genome. When the cDNA probe was hybridized to the HindIII digested total human DNA, an intense band at 6.8 kb was present. When the probe was hybridized to the HindIII digested Chinese hamster CHO-K1 DNA, a less intense band at 3.5 kb was found, plus three other faint bands. When the probe was hybridized to a series of human/CHO-K1 cell hybrids retaining a complete hamster genome and various combinations of human chromosomes, it was evident that hybrids containing human albumin gene sequences could be readily distinguished from hybrids containing no human albumin gene. Analysis of 22 primary cell hybrids for the presence or absence of human albumin sequences has assigned the albumin gene to human chromosome 4. Similar results were obtained using another restriction endonuclease EcoR1. Thus, by direct assay of the genomic albumin gene sequences in the cell hybrids, we provide evidence for a direct assignment of the structural gene for human albumin to chromosome 4.

Albumins↗

Structure and evolution of human alpha-fetoprotein deduced from partial sequence of cloned cDNA.

The nucleotide sequence of a recombinant DNA clone, containing a partial mRNA sequence for human alpha-fetoprotein (AFP) in the plasmid vector pBR322, has been determined. Two regions of the cloned nucleotide sequence were found to agree with published amino acid sequences of two cyanogen bromide peptides derived from human AFP. Examination of the amino acid sequence, deduced from the cloned portion of the mRNA coding region, reveals extensive homology with the third domain of the human serum albumin molecule. A total of 44% (56/128) amino acids and 54% (207/384) nucleotides are identical in the two structures. The landmark cysteine residues are found in the same positions in both polypeptide chains, presumably forming the same disulfide bridges in AFP as those found in the albumin. The sequence homology reinforces the evidence that human AFP and albumin constitute a gene family, in analogy to the same family found in rodents. A comparison of the human and rodent sequence data suggests that the rate of molecular evolution has been faster for AFP than for albumin.

Amino Acid Sequence↗

Nucleotide sequence and the encoded amino acids of human serum albumin mRNA.

The complete nucleotide sequence of human serum albumin mRNA has been determined from recombinant cDNA clones and from a primer-extended cDNA synthesis on the mRNA template. The sequence is composed of 2078 nucleotides, starting upstream from a potential ribosome binding site in the 5' untranslated region. It contains all the translated codons and extends into the poly(A) at the 3' terminus. Part of the translated sequence codes for a hydrophobic prepeptide, Met-Lys-Trp-Val-Thr-Phe-Ile-Ser-Leu-Leu-Phe-Leu-Phe-Ser-Ser-Ala-Tyr-Ser, followed by a basic propeptide, Arg-Gly-Val-Phe-Arg-Arg. These signal peptides are absent from mature normal serum albumin and, so far, have not been identified in their nascent state in humans. A remaining 1755 nucleotides of the translated mRNA sequence code for 585 amino acids, which are in agreement, with few exceptions, with the published amino acid sequence for human serum albumin. The mRNA sequence verifies and refines the repeating homology in the triple-domain structure of the serum albumin molecule.

Amino Acid Sequence↗

Complete nucleotide sequence of the chicken chromosomal ovalbumin gene and its biological significance.

The nucleotide sequence of the entire chicken chromosomal ovalbumin gene has been determined. The gene is 7564 nucleotides in length to code for a mature messenger RNA of 1872 nucleotides. Comparison of the sequence at the 5'-terminal region of the gene with that reported by others has revealed multiple polymorphic nucleotides in the structural, intervening, and flanking DNA sequences. Some of the polymorphic sites occur at positions very close to splice junctions or the eucaryotic promoter sequence, yet apparently have little or no effect on the expression of this gene. The heptanucleotide promoter sequence TATATAT present in the 5'-flanking region of the ovalbumin gene does not occur within the confines of the gene. Nevertheless, multiple Hogness box sequences similar to those found in other eucaryotic genes were delineated within the boundaries of the gene. These internal Hogness box sequences are not used for transcription initiation. Similarly, the hexanucleotide sequence AATAAA common to all eucaryotic messenger RNAs at the 3'-untranslated region occurs seven additional times within the ovalbumin gene. These sites are not used for transcription termination or polyadenylation. Thus, although these sequences may play important roles in the initiation or termination of gene transcripts as well as polyadenylation of the transcripts, the specificity for such biological functions must not reside within these sequences alone. Furthermore, sequences complementary to the highly conserved rat U1 small nuclear RNA have been found throughout the gene. Many of these regions of complementarity occur in the structural sequences. If the small nuclear RNA does play a role in splicing, the specificity must be provided also by other as yet undefined components.

Animals↗

Homology between the primary structure of alpha-fetoprotein, deduced from a complete cDNA sequence, and serum albumin.

The entire DNA complementary to murine alpha-fetoprotein mRNA has been cloned in the plasmid vector pBR322 and its complete nucleotide sequence determined. The deduced amino acid sequence identifies a hydrophobic prepeptide of 19 amino acids and the complete primary structure of alpha-fetoprotein. Its structure reveals extensive homology to serum albumin and suggests that there are 15 disulphide bridges in the alpha-fetoprotein molecule, all at the same positions as those found in albumin. The AFP molecule can be organized into a three-domain structure almost identical to that of serum albumin, suggesting a common ancestral origin of the two proteins.

Amino Acid Sequence↗

Comparison of the nucleotide sequence of cloned DNA coding for an apolipoprotein (apo VLDL-II) from avian blood and the amino acid sequence of an egg-yolk protein (apovitellenin I): equivalence of the two sequences.

We have compared the amino acid sequences of two low-molecular-weight avian apoproteins: apoVLDL-II from very low-density lipoproteins of hen plasma and apovitellenin I from hen egg yolk. The sequence of White Leghorn apoVLDL-II was derived from the nucleotide sequence of cloned apoVLDL-II DNA (Chan et al., 1980). The sequenator was used to determine the amino acid sequence of apovitellenin I from two breeds of hen (White Leghorn and Australorp). The sequences from the two breeds were not only identical, but they also completely matched the predicted sequence derived from the apoVLDL-II DNA sequence. The identity reported here establishes that this protein is transported intact from the blood to the egg yolk.

Amino Acid Sequence↗

Single-stranded poly(deoxyguanylic acid) associates into double- and triple-stranded structures.

Circular plasmid deoxyribonucleic acid (DNA), pBR322, was digested with the restriction endonuclease PstI to give full-length double-stranded DNA molecules, terminated by two self-complementary single-stranded sequences: (formula: see text). The protruding 3' termini were extended with dG by using calf thymus terminal deoxynucleotidyl transferase and dGTP, to form single-stranded tails of oligo(dG). At a length of about dG15, such tails become resistant to single strand specific endonuclease S1, and also cease to function as substrate (initiator) for the terminal deoxynucleotidyl transferase. This altered reactivity arises from association of the oligo(dG) tails into double- and triple-stranded structures, resulting in linear, circular, and branched polymers of the monomeric linear plasmid DNA. All these polymeric structures of the plasmid DNA are stable at room temperature, can be observed in the electron microscope, and can be separated from each other by agarose gel electrophoresis. At 60 degrees C or in 50% formamide, most of the oligo(dG) self-association can be reversed (melted), and the plasmid DNA is again found as the original linear monomer.

Base Sequence↗