G7c in the lung tumor susceptibility (Lts) region of the Mhc class III region encodes a von Willebrand factor type A domain protein.
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Biomedical subjects
Publications and source records attributed to A Kumánovics.
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A bacterial artificial chromosome (BAC) contig was constructed across the proximal part of the H2-M region from the major histocompatibility complex (Mhc) of mouse strain 129 (H2bc). The contig is composed of 28 clones that span approximately 1 megabasepair (Mb), from H2-T1 to Mog, and contains three H2-T genes and 18 H2-M genes. We report the fine mapping of the H2-M class I gene cluster, which includes the previously reported M4-M6, the M1 family, the M10 family, and four additional class I genes. All but two of the H2-M class I genes are conserved among haplotypes H2k, H2b, and H2bc, and only two genes are found in polymorphic HindIII fragments. Six evolutionarily conserved non-class I genes were mapped to a 180 kilobase interval in the distal part of the class I region in mouse, and their order Znf173-Rfb30-Tctex5-Tctex6- Tctex4-Mog was found conserved between human and mouse. In this Znf173-Mog interval, three mouse class I genes, M6, M4, and M5, which are conserved among haplotypes, occupy the same map position as the human HLA-A class I cluster, which varies among haplotypes and is diverged in sequence from the mouse genes. These results further support the view that class I gene diverge and evolve independently between species.
We have assembled a contig of 81 yeast artificial chromosome clones that spans 8 Mb and contains the entire major histocompatibility complex (Mhc) from mouse strain C57BL/6 (H2b), and we are in the process of assembling an Mhc contig of bacterial artificial chromosome (BAC) clones from strain 129 (H2bc), which differs from C57BL/6 in the H2-Q and H2-T regions. The current BAC contig extends from Tapasin to D17Leh89 with gaps in the class II, H2-Q, and distal H2-M regions. Only four BAC clones were required to link the class I genes of the H2-Q and H2-T regions, and no new class I gene was found in the previous gap. The proximal 1 Mb of the H2-M region has been analyzed in detail and is ready for sequencing; it includes 21 class I genes or fragments, at least 14 olfactory receptor-like genes, and a number of non-class I genes that clearly establish a conserved synteny with the class I regions of the human and rat Mhc.
Detection and monitoring the expression and level of intracellular glucocorticoid receptor (GCR) is necessary in many clinical and experimental situations. Binding of radioactive steroids (3H dexamethasone) to the cytosolic fractions of cells has been recently used. However, it is an expensive, time-consuming technique difficult to use in routine diagnostics. In this article we describe a novel, simple method for GCR detection, using a FITC-conjugated anti-GCR monoclonal antibody (mAb) for flow cytometric measurements in permeabilized cells. The monoclonal antibody was raised against a conserved sequence (150-176 amino acids) of the regulatory part of the receptor. Synthetic peptide (called APTEK-26) fragment of the receptor conjugated to different carriers (TG, BSA) was used for immunization and screening of the hybridomas. The a-GCR 8E9, 3C8 and 5E4 clones (IgG1) were further characterized by immunoserological methods for their reactivity against overlapping synthetic peptide fragments of the receptor and by Western blot technique on cytosolic fraction of HEP G2 cells (containing the GCR). Furthermore the mAbs could be used for the FACS based detection of GCR, despite its low number of antigen structure within the cells. Solving the problem of nonspecific binding of the secondary antibodies we used our high affinity IgG1 a-GCR mAbs directly labeled with the fluorescent dye FITC. The fluorescent labeling of the GCRs in HEP G2 cell line and human peripheral blood mononuclear cells (PBMC) were demonstrated by flow cytometric analysis after fixation with 4% paraformaldehyde and permeabilization with saponin. Competition with molar excess of unlabelled antibodies and with the GCR peptide fragment confirmed the specific binding of the 8E9 and 5E4 mAbs to the GCRs. Monitoring the GCR level by flow cytometry would be useful in clinical diagnostics, e.g., in steroid-treated patients and in steroid-resistant states.
The development of B cells is accompanied by their ability to specifically enter the peripheral lymphoid tissues. Recently, we described a novel rat monoclonal antibody (IBL-2; IgG2b/kappa) reacting with a 26/29-kD heterodimeric structure of the cell surface. This mAb has been found to recognize differentially the peripheral B cells of mice depending on their tissue origin. The majority of splenic B cells as well as the mature B cells in the bone marrow were stained with this mAb, whereas the B lymphocytes isolated from LN or Peyer's patches displayed only negligible reactivity. We extended these observations by analyzing the relationship between the expression of IBL-2 antigen and L-selection on the surface of B-cell precursors in the bone marrow by multiparameter flow cytometry. Within the B220 positive compartment, a significant difference of L-selectin expression could be observed between the various IBL-2-reactive subsets. Furthermore, we investigated whether evidences for the establishment of tissue-associated phenotypic heterogeneity similar to that found in normal mice could be found upon the adoptive transfer of normal unselected splenic lymphocytes into SCID recipients (Spl-SCID). It has been found that a large part of the splenic B cells preserved their IBL-2 reactivity, whereas the LN B cells had lost the IBL-2 antigen in Spl-SCID. These data indicate that the phenotypic difference within the SCID mice may be the result of the migration of B lymphocytes from the spleen toward the lymph nodes, and the altered expression of the IBL-2 antigen correlates with this process.
A 5-Mb YAC contig, partly supplemented with BAC contigs, was created from the distal Mhc class I region on mouse Chr 17. The gene order of Znf173-Tctex5-Mog-D17Tu42-D17Leh 89 is conserved between mouse and human but not the physical distance, supporting the independent expansion of Mhc class I genes in the so-called accordion model of Mhc evolution. The distal H2-M region includes the breakpoint of conserved synteny between mouse and human as well as the In(17)4 t-inversion. The H2-M region is rich in L1 repeats, implying that the insertion of L1 repeats may be associated with the evolutionary flexibility to break a chromosome.
After their primary differentiation and selection in the bone marrow, the cells of B lineage are distributed to the peripheral lymphoid system. Here we report that, with the use of a novel rat monoclonal antibody (IBL-2), a tissue-related phenotypic difference could be observed in the peripheral B-cell compartment in mouse. The antigen recognized by this antibody is a 25,000/29,000 MW heterodimeric cell surface molecule which is resistant to phosphatidylinositol-phospholipase C treatment, but is sensitive to proteases. The antigen was found to be expressed by the majority of B cells from the spleen, whereas the B cells from other peripheral sources (lymph nodes and Peyer's patches) proved to be negative. The staining pattern of splenic B cells was heterogeneous, containing a substantial dim population (IBL-2lo), and a smaller, intensely stained fraction (IBL-2hi) within the positive subset. Unlike the B cells, the T cells were negative in every peripheral lymphoid tissue analysed. In addition, the ratios between the various IBL-2-reactive B cells (positive to negative and, within the positive population, the IBL-2lo to IBL-2hi, respectively) in the spleen were quite similar to that of B cells in the bone marrow. Furthermore, the levels of L-selectin expressed by the various IBL-2-reactive subpopulations were found to be heterogeneous both in the bone marrow and in the spleen. The bone marrow cells could be resolved into double negative, L-selectin +/-/IBL-2lo, L-selectin--IBL-2lo, and L-selectin-/IBL-2hi populations, respectively. In the spleen, an additional fraction with L-selectin+/IBL-2- phenotype could be detected. In both tissues, the overwhelming majority of IBL-2hi cells were found at the MEL-14- compartment. We conclude that either these findings may reflect a heterogeneous development state within the peripheral B-cell pool, with a substantial fraction of splenic B cells being less differentiated than those in other peripheral lymphoid tissues, or alternatively, the differential reactivity of murine B cells with the IBL-2 monoclonal antibody is due to their tissue location.