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C Boccazzi

Publications and source records attributed to C Boccazzi.

18 recordsLinked to original sources

Molecular characterization of immunoglobulin G4 gene isoallotypes.

The molecular bases of classical serological immunoglobulin allotypes are progressively uncovered through detailed characterization of the relevant genes. Here we describe two isoallotypic determinants of the G4 gene. In the first, Leu 309, as in G1 and G3, is changed to Val, as in G2; studies on myeloma proteins have long assigned the immunologically defined nG4 m(a)/(b) to the same position. The two molecular variants, here called IGHG4*L309 and IGHG4*V309, are allelic in IGHC haplotypes with a single G4 gene, but can be found together in cis in G4-duplicated haplotypes. A second isoallotypic variant was found at codon 409, where either Arg, as in G1 and G3, or Lys, as in G2, can be found. Both isoallotypes are associated with several 'silent isoallotypic' substitutions dispersed through the hinge, CH2 and CH3 domains. This suggests segmental gene conversion as the common mechanism of origin.

Base Sequence↗

The G4 gene is duplicated in 44% of human immunoglobulin heavy chain constant region haplotypes.

The structure of the human immunoglobulin heavy chain constant region (IGHC), on chromosome 14q32, comprises nine CH genes and two pseudogenes, all originating from multiple duplication events. Continuing evolution of the region is demonstrated by the finding of various types of duplicated and deleted haplotypes, which together add up to 6%. Here we provide molecular and genetic evidence that the G4 gene is duplicated in 44% of IGHC haplotypes in the Italian population. The duplication spans about 20 kb of genomic DNA and probably originated through unequal crossing over. Refined characterisation of the genomic region downstream from the G4 gene improves our knowledge of the evolutionary history of CH genes.

Blotting, Southern↗

Molecular characterization of Gm(n+) and G2m(n-) allotypes.

Immunoglobulin (Ig) allotype typing is usually performed with serological methods based on hemagglutination inhibition. The recent development of molecular techniques has allowed the molecular typing of several Ig markers. The hinge, CH2, and CH3 domains of the G2 gene from six unrelated individuals (three G2m(n+) and three G2m(n-)) were amplified and cloned to establish the molecular basis of the G2mn+ and G2mn- . Comparison of the allele sequences revealed three changes: two (codons 308 and 437) are silent exonic substitutions, one is a G to A transition corresponding to an amino acid difference in position 282: Val (GTG) in G2mn- , Met (ATG) in G2mn+ . These substitutions were identified via two approaches: 282 polymorphism, after digestion of a specific polymerase chain reaction product with Nla III followed by acrylamide electrophoresis; 308 and 437, by a dot-blot technique using allele-specific oligonucleotides. These molecular typing results correspond exactly to those obtained serologically; moreover, the three substitutions defining the G2mn+ and G2mn- alleles are always associated in a strict linkage disequilibrium.

Base Sequence↗

Variability of the immunoglobulin heavy chain constant region locus: a population study.

The Immunoglobulin Heavy chain Constant region (IGHC) locus is a multigene family composed of highly homologous segments often involved in unequal crossings over that lead to deleted and duplicated haplotypes. The frequencies of these haplotypes in 558 individuals from Lombardy, Veneto, Puglia and Sardinia were determined by Pulsed Field Gel Electrophoresis (PFGE), followed by Southern blotting with four IGHC probes, and compared with those observed in 110 subjects from Piedmont. Twenty deletions and 60 duplications were characterized, all in heterozygous individuals except for 2 homozygous deletions. The differences in frequency between the five populations were not significant. The deletions/duplications involved one or more genes: GP-A2, A1-E and G4 duplications, and A1-E and GP-A2 deletions were the most common. Four new duplications are described: three, involving the genes from GP to A2, from G2 to G4, and G4, are counterparts of known deletions. The fourth duplication spans from GP to G2. A G1 deleted heterozygous individual never previously described in Italy is reported. All the rearranged haplotypes seem to be the result of unequal crossing over. The difference between the number of duplications and deletions was significant in Sardinia, Lombardy, Puglia and in the total of 668 subjects (P < 0.001). This may be due to selection or genetic drift.

Blotting, Southern↗

Serum immunoglobulin levels in heterozygous subjects with immunoglobulin heavy chain constant region gene deletions.

The immunoglobulin heavy chain constant region locus is a multigene family composed of nine genes and two pseudogenes, whose high homology is often responsible for meiotic mispairings leading to deleted and duplicated haplotypes. These rearrangements have a population frequency of about 1.5% and 4.5% respectively, with a significant difference between deletions and duplications (P < 0.001). Both positive selection of duplications or negative selection against deletions can account for this imbalance. Serum levels of IgG and IgA subclasses, of IgE, of isohemagglutinins and of IgG antibodies to tetanus toxoid and pneumococcal antigens were evaluated in 11 heterozygous carriers of constant region deletions. There was no gross abnormality in serum IgG and IgA subclass levels, with the possible exception of G1-deleted individuals; furthermore, isohemagglutinins and anti-tetanus toxoid and pneumococcal IgG antibodies are in the normal range, suggesting that the humoral immune response is normal in these carriers. The influence of single and multiple immunoglobulin heavy chain constant region gene deletions on the humoral response is discussed.

Adult↗

Structural and immunologic analysis of gene triplications in the Ig heavy chain constant region locus.

The Ig H chain C region is a multigene family often involved in genomic rearrangements leading to deleted and duplicated haplotypes, most probably through unequal crossing over between homologous regions within the locus. The frequency of these haplotypes in Italy is around 2.7% each. Using PFGE analysis in two unrelated Italian families we found an abnormal high m.w. band, inherited in a Mendelian fashion. To assess the extension of the haplotype we performed Southern blot analysis using several specific Ig H chain C probes. In both cases, the haplotype turned out to be triplicated, with three copies of the genes from A1 to E. In one family segregation of a duplication from EP to G4 was also observed. Analysis of polymorphic loci suggests that the two triplications are of independent origin. Serological detection of IgA2 allotypes demonstrated the functional activity of the genes at the 3' end of the triplicated locus, ruling out any major effect of these large genomic rearrangements on Ig class switching. Furthermore, the triplicated haplotype does not seem to give rise to any clinically significant immunological impairment or increase in Ig serum concentrations.

Gene Deletion↗

Familial clustering of IGHC deletions and duplications: functional and molecular analysis.

The human immunoglobulin heavy chain constant region locus (IGHC) comprises nine genes and two pseudogenes clustered in a 350 kilobase (kb) region on chromosome 14q32. Several IGHC haplotypes with single or multiple gene deletions and duplications have been characterized. The most likely mechanism accounting for these unusual haplotypes is the unequal crossing-over between homologous regions within the locus. Here we report the analysis of an unusual case of familial clustering of deletions/duplications. In the two branches of the BON family, three duplicated and two deleted haplotypes, all probably independent in origin, have been characterized. The structure of the haplotypes, one of which is described here for the first time, supports the hypothesis of homologous unequal crossing-over as the origin of recombinant haplotypes. The analysis of serological markers in a subject carrying one deleted and one duplicated haplotype allowed us the first direct inferences concerning the functions of the duplicated IGHC haplotypes.

Adolescent↗

The genetics of IgG4 deficiency: role of the immunoglobulin heavy chain constant region and HLA loci.

IgG4 deficiency is very common (1/400 in the Italian population) and provides a good model for analyzing the genetic factors involved in Ig subclass deficiencies. We have previously reported an association between some immunoglobulin heavy chain constant region (IGHC) polymorphisms and the IgG4 deficiency. The associated polymorphisms spanned the region between the GP and the G4 genes. A larger sample composed of 50 healthy blood donors with IgG4 deficiency (less than 0.001 g/l IgG4), not carrying homozygous gene deletions, together with 82 first-degree relatives is now examined. The results confirmed the association of the deficiency with IGHC polymorphisms, and detected a new association with the HLA-D locus with a strong additive effect between the two systems. However, despite these associations and a highly significant risk for IgG4 deficiency within families, close linkage with either IGHC or HLA loci was not apparent by the affected sib pair method. These findings suggest that several concomitant, possibly cooperating, genetic factors may be involved in IgG4 deficiency.

Chromosome Mapping↗

Human IGHC locus restriction fragment length polymorphisms in IgG4 deficiency: evidence for a structural IGHC defect.

In man, IgG4 is the least abundant of the four IgG subclasses, and its serum levels vary considerably from one subject to another. Its deficiency has been thought to lead to recurrent infections; nevertheless, it is also commonly found in healthy individuals (1/400 in the Italian population). In 39 subjects with IgG4 serum levels less than 1 microgram/ml, we used 4 different probes (described in the accompanying study, Bottaro et al., Eur. J. Immunol. 1989. 19: 2151) to examine 13 loci within the IGHC region and analyzed the RFLP for 7 of them. No aberrant restriction patterns were identified in any of the subjects, showing the absence of major IGHC structural alterations. The allele frequency of some loci, however, was significantly different from that of a control group of 95 random subjects. This variation was shown to depend on a selective increase in the number of homozygotes for the associated alleles, that reached significant levels for the IGHGP, G2, PG2, PG4 and SG4 loci, but not for SG1 and A2T. The highest value was reached for alleles in the PG4 region, just 5' of SG4. These data indicate that a minor structural IGHC defect is probably the cause of a significant fraction of IgG4 deficiencies. Moreover, the different association levels of the PG4 and SG4 regions suggest that this defect is likely to lie in an upstream regulatory region rather than in the structural G4 gene.

Gene Frequency↗

New types of multiple and single gene deletions in the human IgCH locus.

The locus for human immunoglobulin heavy chain constant region genes (IgCH) is characterized by a significant frequency of deleted or duplicated haplotypes, due to unequal crossing-over events. Four types of deletions and one duplication have been reported so far. We describe here a molecular study of four cases of IgCH deletions. Two of the three types of deletions are reported here for the first time. Analysis of genetic markers associated with the deleted haplotypes pointed to the independent origin of similar deletions and the involvement of intergenic sequences in the mispairing-recombination process. The reduced or absent transcription of the C gamma 4 gene in two C gamma 2-deleted haplotypes offers an insight into the requirements for the isotype switch mechanism.

Blotting, Southern↗

A rapid alpha-fetoprotein radioimmunoassay.

A simple, reliable and inexpensive alpha-fetoprotein radioimmunoassay is described, in which polyethylene-glycol (PEG) is used as a precipitating agent of antibody-bound AFP. The concentrations of AFP found in amniotic fluid, newborn and maternal sera are in agreement with those reported by others. This assay fulfills the requirements of a screening test for fetal abnormalities and other clinical applications.

Amniotic Fluid↗