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J F Kaufman

Publications and source records attributed to J F Kaufman.

12 recordsLinked to original sources

The major histocompatibility complex in the chicken.

The chicken B complex is the first non-mammalian MHC characterized at the molecular level. It differs from the human HLA and murine H-2 complexes in the small size of the class I (B-F) and class II (B-L) genes and their close proximity. This proximity accounts for the absence of recombination between B-F and B-L genes and leaves no space for class III genes. Moreover the B-F and B-L genes are tightly linked to unrelated genes absent from mammalian MHCs, such as the polymorphic B-G genes and a member of the G protein beta subunit family. This linkage could form the basis for resistance to viral-induced tumors associated with some B complex haplotypes.

Animals

Two cell surface proteins bind the sponge Microciona prolifera aggregation factor.

Two extracellular matrix cell surface proteins which bind the proteoglycan-like aggregation factor from the marine sponge Microciona prolifera (MAF) and which may function as physiological receptors for MAF were identified and characterized for the first time. By probing nitrocellulose blots of nonreducing sodium dodecyl sulfate gels containing whole sponge cell protein with iodinated MAF, a 210- and a 68-kDa protein, which have native molecular masses of approximately 200-400 and 70 kDa, were identified. MAF binding to blots is species-specific. It is also sensitive to reduction and is completely abolished by pretreatment of live cells with proteases, as was cellular aggregation, indicating that the 210- and 68-kDa proteins may be located on the cell surface. The additional observations that the 68 kDa is an endoglycosidase F-sensitive glycoprotein and that antisera against whole sponge cells or membranes can immunoprecipitate the 210 kDa when prebound to intact cells are consistent with a cell surface location. Both proteins can be isolated from sponge cell membranes and from the sponge skeleton (insoluble extracellular matrix), but the 210-kDa MAF-binding protein can also be found in the soluble extracellular matrix (buffer washes of cells and skeleton) as well. A third MAF-binding protein of molecular mass 95 kDa was also found in the sponge extracellular matrix but rarely on cells. Both of the cell-associated 210- and 68-kDa proteins are nonintegral membrane proteins, based on Triton X-114 phase separation, flotation of liposomes containing sponge membrane lysates, and their extraction from membranes by buffer washes. Both proteins bind MAF affinity resins, indicating that they each exhibit a moderate affinity for MAF under native conditions. They can also be separated from each other and from the bulk of the protein in an octylpolyoxyethylene extract of membranes by fast protein liquid chromatography Mono Q anion exchange chromatography, as assessed by native dot blot and denaturing Western blot assays. Although neither protein bound to heparin, gelatin, hexosamine, or uronic acid-Sepharose resins, their affinity for an invertebrate proteoglycan, their roles in sponge cell adhesion, and their peripheral membrane protein natures suggest that they may represent early invertebrate analogs of cell-associated vertebrate extracellular matrix adhesion proteins, such as fibronectin or vitronectin, or else an entirely novel set of cell adhesion molecules.

Animals

Major histocompatibility complex-encoded class I molecules are absent in immunologically competent Xenopus before metamorphosis.

The expression of class I and class II major histocompatibility complex (MHC)-encoded antigens has been examined at various stages of the development of the clawed frog, Xenopus. By immunoprecipitation with alloantisera or xenoantisera from radio-labeled spleen and thymus lysates, and by mixed lymphocyte reaction analysis, it was determined that the same class II molecules are expressed throughout ontogeny. In contrast, by fluorescence on frozen sections of tadpoles and by immunoprecipitation, the class I molecule is not detected in tadpoles, but appears on all tissues at the climax of metamorphosis. Animals maintained as tadpoles for long periods of time by chemical treatment do express class I antigens; thus, their expression can be independent of other biochemical and morphological changes that occur at metamorphosis. Immunofluorescence detects an otherwise uncharacterized MHC-linked alloantigen on tadpole thymic epithelium from the earliest stages of thymus differentiation.

Animals

Xenopus MHC class II molecules. I. Identification and structural characterization.

Class II antigens from the Xenopus laevis MHC (f haplotype) were identified by using a rabbit antihuman class II beta-chain serum (anti-p29boost). This xenoantiserum inhibits bidirectional Xenopus MLR (but not PHA-stimulation), recognizes the same molecules as certain MHC-linked Xenopus alloantisera, and immunoprecipitates class II molecules from Xenopus cells consistent with the tissue distribution of mammalian class II molecules. The Xenopus class II molecules are composed of two different chains, both of which are 30 to 35kD transmembrane glycoproteins. The alpha-chains have some N-terminal sequence homology with mammalian class II alpha-chains (both I-E/DR and I-A/DC); the beta-chains are directly recognized by anti-p29boost and have a markedly increased SDS gel mobility under nonreducing conditions. During biosynthesis, they are noncovalently associated with a number of other chains, including ones at 25kD, 33kD, and 40 to 45kD. The alpha-chains bear three N-linked glycans (two Endo H insensitive in mature material) and the beta-chains bear two (one Endo H insensitive). Unlike most mammalian class II molecules, the deglycosylated beta-chains are significantly larger and more acidic than the alpha-chains.

Animals

Xenopus MHC class II molecules. II. Polymorphism as determined by two-dimensional gel electrophoresis.

The class II antigens from four inbred strains of Xenopus laevis (r, f, g, and j haplotypes) and six gynogenetic LG clones (two Xenopus laevis, two Xenopus gilli haplotypes) with functionally well-defined MHC types have been immunoprecipitated with the rabbit anti-human class II beta-chain serum anti-p29boost and analyzed by two-dimensional gel electrophoresis. The glycosylated material from 15-hr biosynthetically labeled cells runs as a broad fuzzy band around 33kD that, upon removal of N-linked glycans by Endo F, resolves into upper beta-chain bands and lower alpha-chain bands. Both the glycosylated and deglycosylated class II antigens give rise to multiple IEF spots in evenly spaced arrays (alpha-chain: two to eight spots in one to three arrays, beta-chain: two to 12 spots in one to five arrays). Both chains are polymorphic and both map to the functionally defined MHC. The large number of spots argues for multiple class II antigens; by radioactive N-terminal sequencing, two homologous alpha-chains and five beta-chains are present in the f haplotype. By comparison with MHC-linked alloantisera, anti-p29boost recognizes all major polymorphic class II molecules in Xenopus laevis. A selection of outbred animals were typed by using an IEF procedure requiring only a million PHA-stimulated blood cells.

Animals

Both chains of HLA-DR bind to the membrane with a penultimate hydrophobic region and the heavy chain is phosphorylated at its hydrophilic carboxyl terminus.

The HLA-DR antigen, a complex of two glycoproteins of 29,000 and 34,000 daltons, can be isolated from the membranes of human B-lymphoblastoid cell lines. Extensive proteolysis releases only 5-10% of the antigen, whereas detergent solubilizes all of it. Detergent solubilization after papain proteolysis of membranes produces antigen with chains cleaved near the carboxyl termini. Comparison of these three preparations demonstrates that each chain contains a carboxyl-terminal hydrophilic region that is sensitive to proteolytic degradation and a penultimate hydrophobic region, responsible for membrane binding, that is more resistant to papain. This two-step cleavage of each chain is also observed during the proteolysis of detergent-solubilized HLA-DR antigen. Both chains of HLA-DR in the membrane can be labeled with the lipophilic photoactivatable carbene reagent adamantane diazirine. This label is released from both chains during the second cleavage. The heavy chain can be reduced and alkylated under mild conditions, and this label is also lost during the second cleavage. The heavy chain is phosphorylated in vivo, and this label is lost upon the first cleavage. This observation suggests that the carboxyl terminus of the heavy chain is intracellular. Cumulatively, these data suggest that both chains of HLA-DR antigens are comprised of large extracellular NH2-terminal regions, small penultimate intramembranous regions, and small carboxyl-terminal intracellular regions.

Amino Acid Sequence

Purification of HLA-linked B lymphocyte alloantigens in immunologically active form by preparative sodium dodecyl sulfate-gel electrophoresis and studies on their subunit association.

The HLA-linked B cell alloantigen (p29,34) is composed of two subunits of 29,000 (p29) and 34,000 (p34) molecular weight. The partially purified HLA-linked B cell alloantigen was purified by a final step of preparative sodium dodecyl sulfate-gel electrophoresis. An antiserum was prepared against p29,34 which specifically lysed B lymphocytes. In sodium dodecyl sulfate at 21 degrees, p29 and p34 remained noncovalently associated and retained immunologic activity; subunit dissociation at higher temperatures correlated with loss of immunologic activity. Although the pI values of p29 and p34 are 6.1 and 5.2, respectively, the subunits co-electrofocus under nondenaturing conditions. In addition, cross-linking studies showed the B cell antigen has a (p29)1(p34)1 subunit structure.

Antigen-Antibody Reactions

Purification and structural characterisation of human HLA-linked B-cell antigens.

The human B cell-specific alloantigen which is closely linked genetically to HLA contains two non-covalently associated, sialogycoprotein subunits of molecular weight (MW) 29,000 (p29), and 34,000 (p34). Although p29 and p34 have different amino-terminal sequences, their tyrosine peptide maps indicate considerable similarity in other portions of their polypeptide chains. Thus the genes for their proteins may have evolved by duplication of a common ancestral gene. Another lymphocyte cell surface protein of MW 16,000 (p16) has also been characterised. Both p16 and p44 (the heavy chain of HLA-A,B antigens) have been compared with p29 and p34.

Amino Acid Sequence

HLA-D associated alloantisera react with molecules similar to Ia antigens.

Two human alloantisera specific to bone marrow-derived lymphocytes (B cells) were shown to precipitate polypeptide chains of 29,000 and 34,000 daltons from human lymphoblastoid B cell lines. These molecules are similar to murine Ia antigens and are also precipitated by a rabbit B-cell specific heteroantiserum. Since the alloantisera are thought to recognize determinants coded by HLA-D or closely linked loci, these data support the hypothesis that these B-cell specific alloantigens are the human counterpart of the mouse Ia antigens and may be the products of HLA-D.

B-Lymphocytes