Detection of cancer predisposition by hypervariable region analysis.
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DNA polymorphisms are based on variations in the nucleotide sequences of the DNA within a given population and are transmitted from parents to offspring by Mendelian inheritance. Most of these mutations are phenotypically silent. Two different types of DNA polymorphisms are restriction fragment length polymorphisms and highly variable regions (HVRs), the latter with many different alleles at a given locus. Molecular probes for HVRs (or DNA minisatellites) can detect a great number of cross-hybridising fragments dispersed throughout the genome. The polymorphic patterns of these fragments are completely individual-specific, hence termed DNA "fingerprints". DNA "fingerprinting" has been shown to be a powerful tool for establishing family relationships, for example in paternity disputes, and for the positive identification of individuals in forensic medicine. The technique may be used to document marrow engraftment in patients who have undergone allogeneic bone marrow transplantation. DNA "fingerprinting" is a new method of assessing clonality in human tumours by identifying clonal somatic mutations in the tumour DNA. Cloning of individual DNA "fingerprint" fragments yields locus-specific HVR probes which, due to their high rate of heterozygosity, are ideal for linkage analysis and prenatal diagnosis in single gene disorders. This is exemplified by adult polycystic kidney disease, which has been found by a 3'alpha-globin-HVR probe to be closely linked to the alpha-globin-gene cluster on chromosome 16p. Locus-specific HVR probes have been used for the molecular diagnosis of clonal chromosomal deletions or loss of heterozygosity at particular loci in a large variety of tumours. These findings are the basis for the identification of anti-oncogenes or putative tumour-suppressor genes in the human genome.
In order to study the mechanisms for the generation of length diversity within the 5' flanking region of the human insulin gene, we have isolated and sequenced a previously uncharacterized allele. This allele, of a size intermediate between those three already described in the literature, encompasses 1,156 base pairs (bp) and contains 81 reiterated tandem oligonucleotides of 14-15 bp each. Population analysis on 298 independently sampled individuals by Southern blotting of genomic DNA demonstrates that the polymorphic portion of the insulin 5' flanking region varies from 400 to more than 8,000 nucleotides, being encoded by from 30 to over 540 oligomeric repeats. Length variability 5' to the insulin gene is a result primarily of unequal crossing over, which generates an expansion or contraction in the number of tandem repeat units per chromosome. A similar mechanism probably accounts for nondispersed reiterated sequences at other loci in the human genome.
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We have determined the sequence of the DNA of a germ-line gene for the variable region of a mouse immunoglobulin light chain, the VlambdaII gene. The sequence confirms that the variable region gene lies on the DNA separated from the constant region. Hypervariable region codons appear in the germ-line sequence. A sequence for the hydrophobic leader, 19 amino acids that are cleaved from the amino terminus of the protein, appears near, but not continuous with, the light chain structural sequence: most of the leader sequence is separated from the rest of the gene by 93 bases of untranslated DNA.
Simplified procedures for determining amino acid sequences in proteins and nucleotide sequences in DNA have rapidly expanded the number of MHC molecules for which primary amino acid structure is known. These molecules will be especially valuable as tools to study the structure-function relationships of globular proteins because of the extensive polymorphism of genes coding the MHC genes products. The general three-dimensional structure of class I MHC molecules was recently deduced, but the more subtle topographical microconformations are still undefined. Definition and topographical mapping of epitopes, defined by serological or cellular immune effector products, will be critical probes for these three-dimensional studies. Comparative studies of amino acid sequences among various MHC and molecules have revealed distinct regions of hypervariability in the alpha-1 and -2 domains of class I heavy chains and the alpha-1 and beta-1 domains of most class II molecules. Mutant MHC molecules that differ from each other by no more than one to three amino acids can have structural changes which may result in a loss of the private epitopes that defined the allelic gene product. On the basis of these studies, the private epitopes are thought to be determined by one or more of the hypervariable regions. Similar studies of the relationships between specific regions of the molecule and public epitopes are not fully explored. Because public epitopes are partially conserved structures, one might expect that their structure is not principally determined by hypervariable region. In fact, however, some public epitopes, such as A2/B17 and BW4/Bw6, do map to diversity regions. Epitope mapping as a means of identifying specific topographic sites and relating these sites to specific functional regions of the molecule will be difficult unless the epitopes themselves are better defined. Thus, the capacity to distinguish spatially distinct public epitopes from cross-reactive homologous private epitopes will be important if epitope-specific immunological probes are use to map specific regions of an MHC molecule. Many investigators are interested in the possibility that some components of HLA alloimmunization are regulated through idiotypic networks. Suciu-Foca and colleagues have provided preliminary evidence that epitope-specific HLA alloantibodies bear dominant idiotypic determinants. Antibodies to these determinants appear during pregnancy, following blood tranfusion, and following renal allograft transplantation, also, the antibodies have been correlated with renal allograft survival.(ABSTRACT TRUNCATED AT 400 WORDS)
Adult polycystic kidney disease (APKD) is one of the most common inherited diseases in man. A diagnosis based on the demonstration of renal cysts with ultrasonography or computerised tomography may be inconclusive in early adulthood, the crucial years before child-bearing is complete. Here we describe the improved diagnostic probability that is possible using genetic linkage studies. A 24-year-old woman, whose father and younger sister were affected by APKD, was demonstrated to have a single cyst in each kidney. These findings were insufficient for a diagnosis of APKD and for this reason genetic linkage studies were undertaken. DNA was extracted from peripheral blood leukocytes from the presenting individual, and her immediate and extended family; the DNA was cut with the restriction enzyme PvuII, electrophoresed in a 0.7% agarose gel and blotted onto nitrocellulose before probing with a 32P-labelled 4 kb fragment. This contained DNA from the hypervariable region (3' hypervariable region, 3'HVR) that is linked to the gene for APKD on the short arm of chromosome 16 and has been used in other family studies by Reeders et al. We correlated the findings on Southern blotting with ultrasound evidence of APKD and found that the disease segregated with a 7.0 kb fragment in the presenting individual's father and sister. She was shown to have inherited this allele also; the use of this technique thus increased the probability of her having APKD from 50% to 96.5%.
On the basis of extensive shared idiotypic specificities, two human IgM anti-gamma-globulins (Lay/Pom) were selected for complete amino acid sequence analysis of their variable domains. Previous studies on the variable regions of the heavy chains of these proteins had shown but eight amino acid differences, only one of which was within a complementarity-determining hypervariable region. The complete amino acid sequence of the variable regions of the light chains of these two proteins is the subject of this report. Protein Lay is a typical VchiI protein with only five 'framework' differences when compared with protein Roy. Protein Pom is best classified as a VchiII, but in the 'framework' there are 16 differences between it and protein Ti. Although there are extensive differences in the first hypervariable region, the second and third light-chain hypervariable regions have an identical sequence. The finding of two identical light-chain and two identical heavy-chain hypervariable regions in these two proteins, which were selected on the basis of their combining specificities and their idiotypic cross-reactions, strongly implicates hypervariable regions in the constitution of the idiotypic determinants and the antibody combining site. Additionally, the finding of identical hypervariable regions in light chains of different V-region subgroups fulfills a prediction of the gene-interaction concept of antibody variability.
An analysis of the amino acid sequences of variable regions of human and mouse antibody molecules was performed. It involved comparison of their constituent tetrapeptides with those found in a reference set (the somatic self) built with non-immunological proteins found in a protein data base. It appeared that hypervariable regions, particularly CDR1 and CDR3, are often made up of rare tetrapeptides not present in the reference set. As assessed by simple statistical tests, this bias was significant. We discuss its possible connection with the problem of antibody immunogenicity. This result provides indirect support for the existence of idiopeptides predicted by the "peptidic self model".
The complete amino acid sequence of the heavy chain variable regions of two different molecules of immunoglobulin M anti-gamma globulin has been determined. These proteins, from different human patients, had independently been shown to share idiotypic specificity. Only eight sequence differences were discernible for the entire length of their heavy chain variable regions. Five of the differences occurred outside hypervariable regions, while three were placeable within such regions. A comparison of these molecules of anti-gamma globulin with the seven human V(H)III variable region sequences presently available for immunoglobulins without known antibody activity showed that the great majority of sequence differences between the two idiotypically similar antibodies and these seven proteins were confined to hypervariable regions. This study illustrates in precise terms a convergence of the distinct immunological properties of idiotypy, hypervariable region structure, and combining site specificity as they relate to the variable region of the immunoglobulin molecule. To a great degree these properties now appear to be a reflection of the same structural attributes of the variable region.
A combination of the polymerase chain reaction (PCR), asymmetric PCR (A-PCR) and DNA sequencing was used to determine the nucleotide sequence of a hypervariable region of the bipartite genome of bean golden mosaic geminivirus (BGMV). This region, which was part of the intergenic region of the DNA-B component, was amplified using primers designed from the nucleotide sequence of a DNA-B component clone (pDRB1) of an isolate of BGMV from the Dominican Republic (BGMV-DR). pDRB1 is infectious on beans when coinoculated with the DNA-A component of BGMV-DR (pDRA1), and typical bean golden mosaic symptoms are observed on infected plants. Bean leaf tissue infected with BGMV was collected at five separate field locations in the Dominican Republic and the hypervariable region was amplified by PCR, ssDNA was produced using A-PCR, and partial nucleotide sequences were determined. The sequences of the hypervariable region from the field-collected samples ranged from 95% (one sample) to 98% (four samples) identical to the sequence of pDRB1. This contrasts with sequence identities of 86, 75 and 46% between the pDRB1 hypervariable region and the hypervariable regions of BGMV isolates from Guatemala, Puerto Rico and Brazil respectively, and 42% with bean dwarf mosaic geminivirus. These results indicate that Dominican Republic isolates of BGMV are very similar and should be considered isolates of the same virus (BGMV-DR), and that the infectious clones of BGMV-DR are representative of BGMV isolates in the Dominican Republic. The procedures described for DNA extraction from leaf tissue and for production of high quality ssDNA using PCR and A-PCR are rapid and efficient and could be applied to studies of variability and epidemiology of other viruses.
We report the complete variable region sequences of three homogeneous rabbit antibody light chains and the partial sequences of five others. Wehn these are compared to other published rabbit light chain sequences, two regions of markedly increased variability are revealed, which are homologous in position to the first and third hypervariable regions of murine and human myeloma light chains. In addition, there is increased variability among the first three residues at the aminoterminal end. A hypervariable region homologous to that identified at positions 50 to 56 in myeloma light chains is not present in these rabbit antibody light chains. The available three-dimensional models of Fab fragments based on x-ray crystallography indicate that neither the amino-terminal portion of the light chain nor the region homologous to positions 50 to 56 forms a part of the combining site. Comparison of the hypervariable regions among six light chains from antibodies to Type III pneumococcal polysaccharide and among four from antibodies to Type VIII pneumococcal polysaccharide suggests that a large number of different sequences may be found in antibodies specific for these relatively simple antigens. Certain residues outside of the hypervariable regions are invariant in the rabbit light chains and correspond to residues that are required for proper chain folding in human and murine myeloma light chains, indicating that the general conformation of myeloma light chains is the same as that of light chains of elicited antibodies.
Class 5 outer membrane proteins of Neisseria meningitidis show both phase- and antigenic variation of expression. The proteins are encoded by a family of opa genes that share a conserved framework interspersed with three variable regions, designated the semivariable (SV) region and hypervariable regions 1 (HV1) and 2 (HV2). In this study, we determined the number and DNA sequence of all of the opa genes of meningococcal strain FAM18, to assess the structural and antigenic variability in the family of proteins made by one strain. Pulsed field electrophoresis and Southern blotting showed that there are four opa genes in the FAM18 chromosome, and that they are not tightly clustered. DNA sequence analysis of the four cloned genes showed a modest degree of diversity in the SV region and more extensive differences in the HV1 and HV2 regions. There were four versions of HV1 and three versions of HV2 among the four genes. Each of the FAM18 opa loci contained a gene with a unique combination of SV, HV1, and HV2 sequences. We used lambda gt11 cloning and synthetic peptides to demonstrate that HV2 sequences completely encode the epitopes for two monoclonal antibodies specific for different class 5 proteins of FAM18.
The motives for mimicking enzymes are twofold: 1) to gain information and deeper understanding which will be relevant to biochemical catalysis, and 2) to extend the chemistry of living organisms in order to be able to invent new reactions--reactions that enzymes either cannot perform, or can perform only with difficulty. It has taken a long time for the bridge of catalytic antibodies to be erected and join organic chemistry and immunology. This is certainly in part because of differences in language, approach, and goals. Increasingly, many researchers in both disciplines are coming closer as a result of the unifying nature of molecular biology. The importance of the basic questions being addressed as well as the tremendous potential for application in diverse areas ensures that the recent initial results will be greatly expanded in the future. Concurrent developments in biology, chemistry, and physical techniques may also have great impact on the use of catalytic antibodies. Chimeric antibodies, where the binding site (variable region or hypervariable region) is derived from a mouse and chosen at will, while the majority of the antibody molecule is human-derived, may allow wide human application. Bifunctional antibodies with two different catalytic reactions taking place in each antibody molecule may be considered. The accurate depiction of the details of antigen-antibody interaction from x-ray crystallography and the prediction of structure will greatly assist those planning experiments. The future of "dial-a-property" catalytic antibodies looks promising and exciting.
In an effort to investigate the structure-function relationship of HLA class II molecules vis-à-vis alloepitope expression, cloned T-cell reagents were used to define polymorphic epitopes associated with DR and DQ molecules. DNA sequences of genes encoding allelic or isotypic DR or DQ molecules that appear to express the same T-cell-defined epitopes were compared in an attempt to identify association of shared sequences with shared epitopes. When sequence sharing is associated with shared epitope expression, we suggest that it is the shared sequence that encodes the epitope in question. Based on the hypothetical three-dimensional structure of the class II molecule, an approximation is made as to which parts of the HLA class II molecule are involved in alloepitope expression. T-cell clones were generated from cells primed against HLA-DR2 haplotypes representing the cellularly defined subgroups Dw2 or Dw21 (previously designated MN2, FJ0, or Tb24). Those clones determined to be DR- or DQ-directed based on monoclonal antibody inhibition assays were tested by panel cell analysis utilizing DR2-positive and DR2-negative target cells. The data support the concept that amino acids 67, 70, 71, and 74 for DR molecules and amino acids 57, 70, and 71 for DQ molecules, which appear to comprise one face of the alpha helix, are of primary importance in T-cell recognition. In other cases, sharing of both the second hypervariable region (amino acids 25-33) and the third hypervariable region (amino acids 67-74) appears necessary to explain epitope sharing for DR molecules. We emphasize that the involvement of these two hypervariable regions may indicate that alloepitope expression involves the complex of class II molecule plus peptide, with the second HVR primarily involved in determining which peptides are bound and the third in T-cell receptor (TcR) recognition and/or peptide binding; we do not rule out that conformational changes of the second HVR can induce conformational changes in the third HVR. Finally, shared alloepitopes detected by some clones could not be explained based on shared primary sequences.
The VH gene segments produce the part of the VH domains of antibodies that contains the first two hypervariable regions. The sequences of 83 human VH segments with open reading frames, from several individuals, are currently known. It has been shown that these sequences are likely to form a high proportion of the total human repertoire and that an individual's gene repertoire produces about 50 VH segments with different protein sequences. In this paper we present a structural analysis of the amino acid sequences produced by the 83 segments. Particular residue patterns in the sequences of V domains imply particular main-chain conformations, canonical structures, for the hypervariable regions. We show that, in almost all cases, the residue patterns in the VH segments imply that the first hypervariable regions have one of three different canonical structures and that the second hypervariable regions have one of five different canonical structures. The different observed combinations of the canonical structures in the first and second regions means that almost all sequences have one of seven main-chain folds. We describe, in outline, structures of the antigen binding site loops produced by nearly all the VH segments. The exact specificity of the loops is produced by (1) sequence differences in their surface residues, particularly at sites near the centre of the combining site, and (2) sequence differences in the hypervariable and framework regions that modulate the relative positions of the loops.
Immunoglobulin heavy chains have been shown to be encoded by at least 3 widely separated genetic elements, designated variable (V), diversity (D), and joining (J), which undergo rearrangement during somatic differentiation to produce the active gene form. The D segment codes for a portion of the 3rd hypervariable region and thus potentially contributes significantly to structural diversity in this portion of the molecule. Heavy chains from anti-inulin proteins are unusual in that they essentially lack a 3rd hypervariable region. Thus, if a D segment exists in these proteins, it is extremely short, possibly 1 to 2 amino acids, and more likely serves a framework function rather than introduces structural diversity in the 3rd hypervariable region. We have completed the heavy chain variable region amino acid sequence from proteins AMPC1 and T957 bringing to 6 the number of complete sequences from this group. All of these proteins lack a 3rd hypervariable region. In addition, substitutions are found within the J segments of AMPC1 and T957, which are unlikely to be generated by the recombination event. The occurrence of Pro at position 105 in both of these J segments in contrast to the Gln found in all other heavy chains using this J segment suggests the possible existence of a previously unidentified J segment gene.
Human immunodeficiency virus type 1 evolves rapidly, and random base change is thought to act as a major factor in this evolution. However, segments of the viral genome differ in their variability: there is the highly variable env gene, particularly hypervariable regions located within env, and, in contrast, the conservative gag and pol genes. Computer analysis of the nucleotide sequences of human immunodeficiency virus type 1 isolates reveals that base substitution in this virus is nonrandom and affected by local nucleotide sequences. Certain local sequences 6 base pairs long are excessively frequent in the hypervariable regions. These sequences exhibit base-substitution hotspots at specific positions in their 6 bases. The hotspots tend to be nonsilent letters of codons in the hypervariable regions--thus leading to marked amino acid substitutions there. Conversely, in the conservative gag and pol genes the hotspots tend to be silent letters because of a difference in codon frame from the hypervariable regions. Furthermore, base substitutions in the local sequences that frequently appear in the conservative genes occurred at a low level, even within the variable env. Thus, despite the high variability of this virus, the conservative genes and their products could be conserved. These may be some of the strategies evolved in human immunodeficiency virus type 1 to allow for positive-selection pressures, such as the host immune system, and negative-selection pressures on the conservative gene products.