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B R Jordan

Publications and source records attributed to B R Jordan.

At least 73 records · Page 4Linked to original sources

Absence of cell surface fixation of a monoclonal antibody detectable by conventional immunoassays does not exclude expression of and interaction with the corresponding antigenic determinant.

No specific binding of anti-HLA class I B.10.6 monoclonal antibody (mAb) could be demonstrated by cell surface radioimmunoassay and cytofluorographic studies at the surface of murine transformed L cells expressing HLA-A3 or Cw3 molecules. However, specific interaction of this antibody with these molecules at the surface of these transformed cells was indirectly established, since it inhibited specifically the binding to the same HLA class I molecules of other anti-HLA class I mAb. Therefore, the absence of detectable binding of mAb, in conventional immunoassays, does not exclude expression by these cells of the corresponding antigenic determinant.

Animals↗

Complete nucleotide sequence of a gene encoding a functional human class I histocompatibility antigen (HLA-CW3).

The HLA-CW3 gene contained in a cosmid clone identified by transfection expression experiments has been completely sequenced. This provides, for the first time, data on the structure of HLA-C locus products and constitutes, together with that of the gene coding for HLA-A3, the first complete nucleotide sequences of genes coding for serologically defined class I HLA molecules. In contrast to the organisation of the two class I HLA pseudogenes whose sequences have previously been determined, the sequence of the HLA-CW3 gene reveals an additional cytoplasmic encoding domain, making the organisation of this gene very similar to that of known H-2 class I genes and also the HLA-A3 gene. The deduced amino acid sequences of HLA-CW3 and HLA-A3 now allow a systematic comparison of such sequences of HLA class I molecules from the three classical transplantation antigen loci A, B, C. The compared sequences include the previously determined partial amino acid sequences of HLA-B7, HLA-B40, HLA-A2 and HLA-A28. The comparisons confirm the extreme polymorphism of HLA classical class I molecules, and permit a study of the level of diversity and the location of sequence differences. The distribution of differences is not uniform, most of them being located in the first and second extracellular domains, the third extracellular domain is extremely conserved, and the cytoplasmic domain is also a variable region. Although it is difficult to determine locus-specific regions, we have identified several candidate positions which may be C locus-specific.

Amino Acid Sequence↗

Complete nucleotide sequence of a functional class I HLA gene, HLA-A3: implications for the evolution of HLA genes.

The complete nucleotide sequence of an active class I HLA gene, HLA-A3, has been determined. This sequence, together with that obtained for the HLA-CW3 gene, represents the first complete nucleotide sequence to be determined for functional class I HLA genes. The gene organisation of HLA-A3 closely resembles that of class I H-2 genes in mouse: it shows a signal exon, three exons encoding the three extracellular domains, one exon encoding the transmembrane region and three exons encoding the cytoplasmic domain. The complete nucleotide sequences of the active HLA genes, HLA-A3 and HLA-CW3, now permit a meaningful comparison of the nucleotide sequences of class I HLA genes by alignment with the sequence established for a HLA-B7-specific cDNA clone and the sequences of two HLA class I pseudogenes HLA 12.4 and LN- 11A . The comparisons show that there is a non-random pattern of nucleotide differences in both exonic and intronic regions featuring segmental homologies over short regions, which is indicative of a gene conversion mechanism. In addition, analysis of the frequency of nucleotide substitution at the three base positions within the codons of the functional genes HLA-A3, HLA-B7 and HLA-CW3 shows that the pattern of nucleotide substitution in the exon coding for the 3rd extracellular domain is consistent with strong selection pressure to conserve the sequence. The distribution of nucleotide variation in the other exons specifying the mature protein is nearly random with respect to the frequencies of substitution at the three nucleotide positions of their codons. The evolutionary implications of these findings are discussed.

Amino Acid Sequence↗

Transformation of LMTK- cells with purified HLA class I genes--IV. A determinant on beta 2-microglobulin is controlled by HLA heavy chain in a mouse-human hybrid complex: a biochemical analysis.

Transformation of LMTK- murine fibroblast cells with purified HLA class I heavy chain genes resulted in the expression of serologically detectable HLA-A3 molecules. Surprisingly, such cells also react with a murine monoclonal antibody specific for a serological determinant notably not expressed by murine but by human beta 2-microglobulin. The human HLA molecules expressed by the transformed cells were characterized on two-dimensional gels. The heavy chain was shown to be associated with a murine beta 2-microglobulin molecule, which could be distinguished from human beta 2-microglobulin by its higher isoelectric point. This heterodimer molecule was immunoprecipitated with the mouse anti-human beta 2-microglobulin monoclonal antibody showing that indeed the complex of mouse beta 2-microglobulin and human heavy chain expresses a human beta 2-microglobulin determinant.

Animals↗

Transformation of LMTK- cells with purified HLA class I gene. VI. Serological characterization of HLA-B7 and AW24 molecules.

Serological characterization of HLA-B7 and HLA-AW24 class I molecules following transfection of murine LMTK- cells with purified HLA class I genes was performed using human alloantisera. Induction by murine alpha interferon of the expression of class I molecules was required to obtain unambiguous identification of these molecules which appear serologically identical to the HLA-B7 and HLA-AW24 molecules expressed at the surface of human peripheral blood lymphocytes of 20 unrelated individuals. Analysis of the transformed cells with 8 different anti-HLA class I monoclonal antibodies results in the definition of 3 separate clusters of antigenic determinants shared by all HLA class I molecules. These studies further suggest the existence of locus-specific serological reactivities associated either with the HLA-A or with the HLA-B and C gene products.

Animals↗

Transformation of LMTK- cells with purified class I genes. V. Antibody-induced structural modification of HLA class I molecules results in potentiation of the fixation of a second monoclonal antibody.

A potentiation phenomenon was observed with HLA-A3 and CW3 transformed murine L cells between anti-HLA class I B10.6 (potentiated) and B10.8 (potentiating) monoclonal antibodies (m.Ab.). Further studies of this phenomenon with these transformed L cells indicated that: 1) no significant specific binding of B10.6 m.Ab. to HLA-A3 and CW3 transformed L cells could be demonstrated by conventional radioimmunoassay or cytofluorometric study in the absence of B10.8 m.Ab.; 2) potentiation of the fixation of B10.6 m.Ab. was induced by other anti-HLA class I m.Ab., which all reacted with the same cluster of antigenic determinants; 3) potentiation reflects an increased specific fixation of B10.6 m.Ab. to HLA class I molecules implicating its combining site; 4) potentiation was mediated by B10.8 Fab fragments. These results indicate that potentiation of the fixation of B10.6 m.Ab. to the HLA-A3 and CW3 molecules expressed by the transformed L cells reflects conformational changes of these molecules after interaction with B10.8 m.Ab.

Animals↗

Transformation of LMTK- cells with purified HLA class I genes. II. Serologic characterization of HLA-A3 and CW3 molecules.

The expression of two different HLA class I genes was observed after transformation of LMTK- cells. The corresponding class I molecules reacted differentially with monomorphic monoclonal antibodies (m.Ab). Absorption and elution studies of the human alloantibodies reacting with the transformed cells and cellular radioimmunoassay of these cells with polymorphic m.Ab resulted in the identification of HLA-A3 and CW3 molecules. These transformed cells were used to immunize C3H mice and induce the production of xenogeneic antisera, which, following absorption, showed polymorphic reactivity with human cells, suggesting that some of these sera could be used as typing reagents.

Animals↗

Transformation of murine LMTK- cells with purified HLA class I genes. I. Modification of conformation of murine beta 2-microglobulin upon its association with HLA heavy chains.

Murine LMTK- cells were unexpectedly found to cross-react with a murine anti-human beta 2-microglobulin (beta 2-m)monoclonal antibody (m.Ab) after transformation with cosmid clones containing different purified HLA class I genes. The same cross-reactivity was observed with CTP 34 B4 (murine x human) somatic hybrid cells, which express class I molecules constituted of human HLA heavy chains and murine beta 2-m. Inhibition studies of the complement-dependent cytolysis mediated by the cross-reacting m.Ab indicated that isolated murine beta 2-m does not express the cross-reacting determinant, suggesting that its expression by the transformed cells reflects conformational modification of murine beta 2-m upon its association with HLA heavy chains. These results illustrate one of the possible post-translational mechanisms through which the antigenicity of a polypeptide chain can be modified. They might provide a serologic marker of the third domain of HLA class I heavy chains. Finally, because quantitative differences of reactivity with the anti-human beta 2-m m.Ab were observed, depending on the HLA class I genes used for transformation, these results individualize two families of HLA class I heavy chains responsible for different conformational modifications of murine beta 2-m.

Animals↗

Lipase-induced alterations of fatty acid synthesis by subcellular fractions from germinating pea (Pisum sativum L.).

1. The effect of exogenous lipases on fatty acid synthesis from [14C]malonyl-CoA by the microsomal and soluble fractions from germinating peas was studied. 2. Addition of phospholipase A2 or the lipase from Rhizopus arrhizus had no effect on total fatty acid synthesis by the soluble fraction but caused severe inhibition of that by the microsomal fraction. 3. The addition of enzymes with phospholipase activity particularly inhibited the microsomal stearate elongase. 4. Control studies indicated that the phospholipase-induced inhibition of fatty acid synthesis was due to the location of fatty acid synthetase, palmitate elongase and stearate elongase on the outside of the microsomal vesicles. 5. Experiments with a trypsin-like proteinase showed that approximately half the microsomal fatty acid synthesis was resistant to proteolysis. 6. Although addition of exogenous phospholipases had no effect on total fatty acid synthesis by the soluble fraction, it did increase alpha-hydroxylation of newly-formed palmitate and stearate. 7. The results provide further evidence for differences between the soluble and particulate fatty acid synthetase and palmitate elongase activities of germinating pea.

Fabaceae↗

Rat immunoglobulin delta heavy chain gene: nucleotide sequence derived from cloned cDNA.

Rat immunoglobulin delta heavy-chain mRNA has been isolated. RNA blot analysis revealed that this mRNA with a length of 1.8 kb encodes for the secreted form of IgD. The corresponding cDNA was cloned in plasmid pBR322 and its sequence was determined. The hybrid plasmid contains a 775-bp insert comprising a partial C delta 1 sequence and complete C delta H, C delta 3, C delta DC and 3' untranslated sequences. Rat and mouse IgD amino acid sequences show striking homology in C delta 3 and C delta DC regions.

Amino Acid Sequence↗

HLA cosmid clones show complete, widely spaced human class I genes with occasional clusters.

To understand the organization of the human leukocyte antigen (HLA) gene region and its relationship to the transplantation antigens expressed at the cell surface we have isolated clones containing HLA class I genes from a cosmid library (Grosveld et al., Gene 13, 227, 1981) constructed with the DNA from an individual of defined haplotype. Most of the cosmids contain a single HLA gene in 30-40 kb of human DNA, indicating that human class I genes are rather widely spaced; two contain two genes and one contains three. Most of these genes appear to be complete; the double or multiple genes are found in the same orientation. Differences in restriction maps are evident but some common features are observed in particular in the 5' half of these genes.

Bacteriophage lambda↗

Exon/intron organization and complete nucleotide sequence of an HLA gene.

We have isolated and determined the sequence of a genomic clone containing the gene for a human class I transplantation antigen. The gene contains seven exons. The first five exons code respectively for a signal peptide, for the first, second, and third extracellular domains of the protein molecule, and for the transmembrane region. The cytoplasmic segment is encoded by part of the fifth and the sixth and the seventh exons. The structure of the protein encoded by this unit is closely homologous with known class I transplantation antigens.

Bacteriophage lambda↗

Human HLA gene segment isolated by hybridization with mouse H-2 cDNA probes.

The products of the highly polymorphic genes known as the major histocompatibility complex (MHC) have been shown to play a major part in the control of several aspects of the immune response and of susceptibility to certain diseases. The major transplantation antigens are membrane proteins composed of two noncovalently associated polypeptide chains: a light, non-polymorphic chain of molecular weight 12,000 (MW), called beta 2-microglobulin, and a polymorphic, glycosylated heavy chain of approximately 45,000 MW. The heavy chains in man and mouse are encoded in at least three loci of the MHC named HLA-A, -B and -C, and H-2D, K and L respectively. The available amino acid sequence data indicate extensive homology between human and mouse heavy chains. We therefore used a recently isolated cloned mouse H-2 cDNA probe to screen a human gene library. We have now characterized one of the recombinant phages obtained, lambda HLA-12, and shown that it contains an authentic HLA sequence with evidence of a second one close by.

Animals↗

Fatty acid elongation by a particulate fraction from germinating pea.

The synthesis of fatty acids from [14C]malonyl-CoA was studied with a high-speed particulate fraction from germinating pea (Pisum sativum). The variety used (Feltham First) produced mainly saturated fatty acids with palmitate (30--40%) and stearate (40--60%) predominating. Several palmitate-containing lipids stimulated overall synthesis and, in addition, increased the percentage of label in stearate. The production of stearate was severely inhibited by preincubation of the microsomal fraction with snake venom phospholipase A2 or by incubation with Rhizopus arrhizus lipase. Addition of a series of di-saturated phosphatidylcholines, with different acyl constituents, resulted in stimulation of overall fatty acid synthesis as well as an increase in the radiolabelling of the fatty acid two carbon atoms longer than the acyl chain added. This chain lengthening of fatty acids donated from phosphatidylcholine was due to the action of both fatty acid synthetase and palmitate elongase. The latter would utilize dipalmitoyl phosphatidylcholine and was sensitive to arsenite whereas fatty acid synthetase would use dilauroyl phosphatidylcholine and was sensitive to cerulenin. The results are discussed in relation to previous data obtained in vivo on plant fatty acid synthesis and current suggestions for the role of phosphatidylcholine in this process.

Arsenic↗

Coding and spacer sequences in the 5.8S-2S region of Sciara coprophila ribosomal DNA.

The sequence of 436 nucleotides around the region coding for 5.8S RNA in the Sciara coprophila rDNA transcription unit (1) has been determined. Regions coding for 5.8S and 2S RNAs have been identified; they are 80 - 90% homologous to the corresponding Drosophila sequences and are separated by a 22 nucleotide long spacer. This sequence as well as the two before the 5.8 and after the 2S coding region are very different from the corresponding Drosophila sequences. The main features reported in the Drosophila study (2) are however also found, i.e. all three spacers are very rich in A-T; the sequence of the internal spacer allows base pairing; 5.8S and 2S RNAs can pair through their 3' and 5' terminal regions respectively. The features previously proposed as processing sites in the Drosophila case are thus all found in Sciara in spite of very different spacer sequences.

Animals↗