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Hyperexpression of interferon-gamma-induced MHC class II genes associated with reorganization of the cytoskeleton.

Class I and class II major histocompatibility complex (MHC) gene products are key recognition units in the induction and regulation of the immune response. Expression of class I and class II may be constitutive or inducible by cytokines such as interferon-gamma (IFN-gamma). A key step in the induction of MHC genes is recognition of IFN-gamma by its membrane receptor. The work described here examines the regulation of the occupied IFN-gamma receptor by the cytoskeleton. To do this the authors have used the fungal metabolites dihydrocytochalasin B (DHCB) and cytochalasin D (CD), substances that bind to actin filaments and thereby disrupt the cytoskeleton. The authors have studied the effect of DHCB and CD on IFN-gamma-induced MHC gene expression in 143 B cells, a human osteosarcoma-derived cell line. Herein the authors demonstrate that alterations in the cytoskeleton induced by DHCB and CD can lead to increases in IFN-gamma-induced MHC gene expression. Dihydrocytochalasin B added up to 3 hours after IFN-gamma results in a threefold to sixfold increase in levels of class II mRNA while producing minimal enhancement of class I gene expression. In contrast, glyceraldehyde-3-phosphate dehydrogenase mRNA expression was unaltered by IFN-gamma or by the cytochalasins. The increased amount of class II mRNA can be accounted for by a concomitant increase in transcription rate of this gene. Studies using 125I-IFN-gamma demonstrate that the occupied IFN-gamma receptor associates with a Triton X-100 insoluble fraction of 143 B cells and that DHCB and CD markedly inhibit this association. The results described here provide evidence that is consistent with the hypothesis that the activity of the occupied IFN-gamma receptor may be modulated by interactions with the cytoskeleton of the cell. This receptor may be one of a group of plasma membrane receptors that are sensitive to the action of cytochalasins after ligand binding.

B-Lymphocytes↗

Evidence for retinoblastoma protein (RB) dependent and independent IFN-gamma responses: RB coordinately rescues IFN-gamma induction of MHC class II gene transcription in noninducible breast carcinoma cells.

The class II major histocompatibility (MHC) genes encode cell surface heterodimers that present processed antigen to CD4 positive T-cells. The class II genes are expressed constitutively on B-cells and can be induced by IFN-gamma on a variety of other cell types. Because the class II genes are aberrantly expressed on many mesenchymal tumors, which are frequently defective for the retinoblastoma tumor suppressor protein (RB), we investigated the role of RB in the regulation of HLA-DR and -DP. The RB defective breast carcinomas cell line, MDA-468-S4 (S4), as well as S4 subclones reconstituted with RB coding sequences under the control of a zinc inducible promoter, were treated with IFN-gamma and examined for DR and DP expression. Surface DR is not inducible in S4 cells, but inducibility is rescued by RB. DP is only slightly inducible in S4, but inducible to a much higher level in the RB positive subclones of S4. IFN-gamma induction of DR and DP mRNAs are correspondingly dependent on RB. IFN-gamma receptors are present on S4 cells, and the guanylate binding protein and ICAM-1 genes respond to IFN-gamma, ruling out the possibility that all IFN-gamma signal transduction pathways are defective in S4 cells. These data indicate RB regulates the coordinate response of class II genes to IFN-gamma. Possible roles for RB in this process are discussed, as well as the role of the class II-noninducible phenotype in tumor rejection.

Breast Neoplasms↗

Regulation of MHC class II gene transcription.

The transcriptional regulation of MHC class II genes involves the interaction of DNA-binding proteins with specific DNA sequences. The cis elements of the promoter region have now been well delineated functionally, while the proteins that interact with these elements are just beginning to be identified and their functional importance assessed.

Animals↗

Expressed MHC class II genes in sea otters (Enhydra lutris) from geographically disparate populations.

The major histocompatibility complex (MHC) is central to maintaining the immunologic vigor of individuals and populations. Classical MHC class II genes were targeted for partial sequencing in sea otters (Enhydra lutris) from populations in California, Washington, and Alaska. Sequences derived from sea otter peripheral blood leukocyte mRNAs were similar to those classified as DQA, DQB, DRA, and DRB in other species. Comparisons of the derived amino acid compositions supported the classification of these as functional molecules from at least one DQA, DQB, and DRA locus and at least two DRB loci. While limited in scope, phylogenetic analysis of the DRB peptide-binding region suggested the possible existence of distinct clades demarcated by geographic region. These preliminary findings support the need for additional MHC gene sequencing and expansion to a comprehensive study targeting additional otters.

Alaska↗

Functional significance of polymorphism among MHC class II gene promoters.

The functional significance of polymorphism among MHC class II promoters in man and mouse is here reviewed, mainly in terms of the hypothesis of differential expression. The hypothesis proposes that differences between antigen-presenting cells in MHC class II expression exert a co-dominant effect on the Th1-Th2 cytokine balance, such that class II molecules of one type come to control to a greater extent the production of one group of cytokines, and those of another type the production of the alternative group. The survey deals with the influence of signal strength and antigen-presenting cell type on T-cell subset differentiation; functional differences between MHC class II molecules not obviously related to determinant selection; disease protection mediated by HLA alleles; mechanisms possibly responsible for allotypic and isotypic bias; overdominance (heterozygous advantage) in selection for expression of class II alleles; MHC class II promoter structure and function; inter-locus and inter-allele variability within human MHC class II gene upstream regulatory regions; a comparison of these polymorphisms in mouse and man; read-out of class II promoter function; and a comparison with expression of MHC class I. We conclude that the evidence that this variation is functionally active (i.e. controls expression) is increasing, but is not yet compelling. The crucial test still to come, we suggest, is whether or not the biological effects attributable to this polymorphism will line up with molecular studies on expression.

Alleles↗

IL-1 beta inhibits IFN-gamma-induced class II MHC expression by suppressing transcription of the class II transactivator gene.

Class II MHC Ags are critical for the initiation of immune responses by presenting Ag to T lymphocytes, leading to their activation and differentiation. The transcriptional activation of class II MHC genes requires the induction of the class II transactivator (CIITA) protein, a master regulator that is essential for both constitutive and IFN-gamma-inducible class II MHC expression. The cytokine IL-1beta has been shown to inhibit IFN-gamma-induced class II MHC expression in various cell types. We investigated the underlying mechanism of this inhibitory effect of IL-1beta using human astroglioma cell lines. Our findings demonstrate that IL-1beta prevents the expression of class II MHC mRNA and protein upon treatment with IFN-gamma. Furthermore, we demonstrate that IFN-gamma induction of CIITA mRNA expression is inhibited by treatment of cells with IL-1beta. IL-1beta suppressed IFN-gamma activation of the type IV CIITA promoter in astroglioma cells, indicating that the inhibitory influence of IL-1beta is mediated by inhibition of CIITA transcription. IL-1beta did not interfere with IFN-gamma receptor signal transduction, since tyrosine phosphorylation, nuclear translocation, and DNA binding of STAT-1alpha to an IFN-gamma activation sequence of the type IV CIITA promoter were not affected by IL-1beta. As well, IL-1beta treatment did not affect the ability of IFN-gamma-induced interferon-regulatory factor-1 (IRF-1) to bind the IRF-1 element within the type IV CIITA promoter. This study suggests that IL-1beta may play a role in regulating immunoreactivity by inhibiting transcription of the CIITA gene, thereby reducing subsequent class II MHC expression.

Astrocytoma↗

Regulation of class II MHC gene expression by interferons: insights into the mechanism of action of interferon (review).

Modulation of class I and II MHC antigen expression by interferons has been the focus of considerable attention because the regulation of these molecules serves as a useful model system to study factors exerting transcriptional control of gene expression and because of the relevance of these molecules to expression of the neoplastic phenotype. While our knowledge of the molecular mechanisms regulating the ability of interferon to mediate enhancement of MHC genes has increased, this information is primarily based on studies employing established cell lines, and it remains to be determined whether similar controls are also exerted in short term cultured cell lines. In this short review, we have discussed the structural organization of the 5' flanking regions of the MHC genes, with special emphasis on class II genes, and the implications of these data for the transcriptional regulation of these and of other interferon inducible genes. Present evidence indicates the existence of at least four conserved upstream sequences which are shared by interferon responsive genes and which appear to be involved in the transcriptional control of these genes. The pattern of metabolic requirements for IFN-alpha and IFN-beta versus IFN-gamma upregulation of the class I and II MHC genes suggests that the regulation of gene expression by IFN-gamma requires unique regulatory molecules, i.e. newly synthesized proteins, which are not required by IFN-alpha and IFN-beta treated cells. These putative mediators of gene expression are likely to be shared by many of the biochemical induction pathways involved in the regulation of genes which exhibit interferon responsive sequences. However, in addition to common regulatory signals, other specific pathways and possibly additional regulatory sequences, are also required to account for locus--or subunit-specific patterns of antigenic modulation. Future studies are required, including those employing short term tumor cell cultures, to precisely define the molecular details of gene regulation of class I and II MHC genes, as well as other interferon--responsive--genes, by interferons. These investigations will not only prove valuable on a fundamental scientific level, but they will also be crucial for the more effective application of interferons in clinical oncology.

Gene Expression Regulation↗

Retroviral transfer of donor MHC class I or MHC class II genes into recipient bone marrow cells can induce operational tolerance to alloantigens in vivo.

Infusion of allogeneic, donor bone marrow (BM) can induce specific immunological unresponsiveness in vivo resulting in long-term acceptance of subsequent fully allogeneic, donor-type solid organ grafts, but this may be associated with graft-versus-host disease. We hypothesize that transfer of donor MHC gene(s) to recipient-type BM or hematopoietic stem cells would enable delivery of donor alloantigens to the recipient without the risk of graft-versus-host disease. This strategy could also potentially take advantage of linked suppression to induce specific unresponsiveness to additional alloantigens expressed by the solid organ graft. We found that infusion of 5 x 10(6) CBA (H-2(k)) recipient mouse BM cells transduced with a recombinant replication-defective retrovirus encoding either a single donor MHC class I or class II gene (H-2K(b) or H-2IA(b)) in combination with anti-CD4 monoclonal antibody resulted in long-term survival of C57BL/10 (H-2(b)) but not third-party NZW (H-2(z)) heart grafts. BM cells (3 x 10(3)) enriched for hematopoietic stem cells by sorting for c-Kit(+), lineage-negative cells, were able to induce long-term allograft survival in 50% of recipients after transduction with the vector encoding a single donor MHC class I gene. These results have important implications for future strategies to enhance clinical allograft survival by delivery of donor alloantigens.

3T3 Cells↗

Regulation of class II MHC gene expression by the inducible anti-sense RNA in transgenic mice.

We have established a gene regulatory system in mice by the inducible anti-sense RNA. We have generated transgenic mice carrying the anti-sense DNA composed of the class II MHC gene under the control of the human metallothionein IIa gene promoter. The detectable amount of anti-sense RNA was constitutively produced in spleen and bone marrow from transgenic mice and the amount in spleen was increased about fivefold by the stimulation of mice with heavy metal ions. We have previously reported that the reduction of class II MHC molecules on early B lineage cells by the anti-sense RNA results in delay of their development in the bone marrow culture. The early B cell development was slightly delayed in the culture from the transgenic mice. This delay was augmented in the culture by the addition of heavy metal ions in proportion to its concentration. These results suggest that the inducible anti-sense RNA reduces the expression of class II MHC molecules on B lineage cells.

Animals↗

In vivo footprinting of MHC class II genes: bare promoters in the bare lymphocyte syndrome.

Major histocompatibility complex (MHC) class II genes are coordinately regulated and show tissue-specific expression. With the use of in vivo footprinting, common promoter sites in these genes were found to be occupied only in cells that expressed the genes, in spite of the presence of the promoter binding proteins. In vivo analysis of mutant cell lines that exhibited coordinate loss of class II MHC expression, including several from individuals with bare lymphocyte syndrome, revealed two in vivo phenotypes. One suggests a defect in gene activation, whereas the other suggests a defect in promoter accessibility.

Animals↗

The presence of a DNA binding complex correlates with E beta class II MHC gene expression.

The class II major histocompatibility complex (MHC, Ia) antigens are a family of membrane proteins whose expression is strictly regulated. They have a limited tissue distribution and their expression is regulated both developmentally and in response to external stimuli. Here we report the identification of a DNA binding protein complex (termed complex A) within the murine E beta MHC gene, which is restricted to cells that express Ia antigens. Complex A binding activity is developmentally regulated in cells of the B lineage in accordance with class II expression and is responsive to two different Ia-inducing lymphokines, interferon-gamma in macrophages and interleukin-4 in pre-B cells. The DNA target sequence in complex A includes three previously defined transcriptional motifs W, X and Y, and acts as a cis-acting transcription element. Complex A is present both in cells that are constitutive for class II MHC expression and in cells that have been induced for class II MHC expression. These results suggest that complex A may play a critical role in the regulation of class II MHC gene expression.

Animals↗

A 39-kb sequence around a blackbird Mhc class II gene: ghost of selection past and songbird genome architecture.

To gain an understanding of the evolution and genomic context of avian major histocompatibility complex (Mhc) genes, we sequenced a 38.8-kb Mhc-bearing cosmid insert from a red-winged blackbird (Agelaius phoeniceus). The DNA sequence, the longest yet retrieved from a bird other than a chicken, provides a detailed view of the process of gene duplication, divergence, and degeneration ("birth and death") in the avian Mhc, as well as a glimpse into major noncoding features of a songbird genome. The peptide-binding region (PBR) of the single Mhc class II B gene in this region, Agph-DAB2, is almost devoid of polymorphism, and a still-segregating single-base-pair deletion and other features suggest that it is nonfunctional. Agph-DAB2 is estimated to have diverged about 40 MYA from a previously characterized and highly polymorphic blackbird Mhc gene, Aph-DAB1, and is therefore younger than most mammalian Mhc paralogs and arose relatively late in avian evolution. Despite its nonfunctionality, Agph-DAB2 shows very high levels of nonsynonymous divergence from Agph-DAB1 and from reconstructed ancestral sequences in antigen-binding PBR codons-a strong indication of a period of adaptive divergence preceding loss of function. We also found that the region sequenced contains very few other unambiguous genes, a partial Mhc- class II gene fragment, and a paucity of simple-sequence and other repeats. Thus, this sequence exhibits some of the genomic streamlining expected for avian as compared with mammalian genomes, but is not as densely packed with functional genes as is the chicken Mhc.

Amino Acid Sequence↗

MHC class II genes in Mexican patients with idiopathic dilated cardiomyopathy.

The purpose of the present study was to evaluate the relationship between class II major histocompatibility complex (MHC) genes (HLA-DR and HLA-DQB) and the genetic susceptibility to idiopathic dilated cardiomyopathy (IDC) in Mexican patients. The HLA-DR and DQB alleles were analyzed in 53 patients with IDC and 99 ethnically matched healthy controls using the polymerase chain reaction-sequence specific oligonucleotides (PCR-SSO) technique. IDC patients showed increased frequencies of HLA-DR4 (pC=0.02, OR=1.87), HLA-DQB1*0301 (pC=0.02, OR=1.92) and HLA-DQB1*0302 (pC=0.02, OR=1.87) when compared to healthy controls. On the other hand, IDC patients also showed decreased frequencies of HLA-DR11 allele (pC=0.03, OR=0.26) and HLA-DQB1*0201 (pC=0.04, OR=0.41). These data suggest that variation in class II HLA alleles could be a genetic factor involved in the susceptibility to IDC of the Mexican Mestizo population.

Cardiomyopathy, Dilated↗

Role of protein kinase C and tyrosine kinase activity in IFN-gamma-induced expression of the class II MHC gene.

Astrocytes are induced by interferon-gamma (IFN-gamma) to express class II major histocompatibility complex (MHC) antigens. Our previous studies demonstrated that IFN-gamma-initiated signaling events important for class II expression include activation of protein kinase C (PKC) and the Na+/H+ antiporter. We have extended these studies and found that protein tyrosine kinase (PTK) activity is also required for class II expression. Treatment of astrocytes with inhibitors specific for PKC and PTK blocked INF-gamma-induced class II gene transcription, mRNA expression, and protein expression. Immunoblotting and immunoprecipitation experiments demonstrated that IFN-gamma induced tyrosine phosphorylation of the p91 component of ISGF3, which is blocked by preincubation of cells with PTK inhibitors. Treatment of astrocytes with IFN-gamma and either PKC and PTK inhibitors changed the mobility and intensity of a nuclear factor, IFN-gamma-enhanced factor X, which binds to the X box of the class II MHC promoter. Taken together, these data provide evidence that activation of both PTK and PKC is required for IFN-gamma-induced expression of the class II gene.

Animals↗

Regulation of class II MHC gene expression by macrophages from Bcgr and Bcgs mice.

The presence of class II mRNA was determined following stimulation of macrophages from Bcgr and Bcgs mice with rIFN-gamma. Despite the continuous expression of surface I-A glycoprotein by macrophages from Bcgr mice, class II mRNA was no longer present. The transient expression of I-A by macrophages from Bcgs mice, however, was accompanied by the disappearance of class II mRNA from the cells. Restimulation of macrophages from Bcgs mice, with rIFN-gamma resulted in the reappearance of class II mRNA and surface I-A expression. The reappearance of class II mRNA and the surface expression of I-A glycoprotein was inhibited by PGE2. These results indicate that differences in I-A expression by macrophages from Bcgr and Bcgs are not at the level of class II gene expression.

Animals↗

Bone marrow-derived macrophage expression of endogenous and transfected class II MHC genes during differentiation in vitro.

C57BL/6 (H-2b) mice fail to express I-E molecules on the surface of their cells and thus are unable to respond to I-E-restricted antigens such as GL phi and cytochrome c. Previous experiments in our laboratory have involved developing a system for studying differentiation of bone marrow cells into mature macrophage to gain a better understanding of class II MHC gene expression and function. In this study, we have used this system to transfect the E alpha d gene (cosmid 17.2) into C57BL/6 bone marrow cells and subsequently observed I-E expression on bone marrow-derived macrophages (BMDM) after differentiation in vitro. By using a modified calcium phosphate protocol, we found that the optimal period for transfection of the bone marrow cells was after 2 days of culture in vitro. By using the anti-I-E monoclonal antibody (Ia.7) derived from hybridoma 14-4-4, we detected the I-E molecule on the surface of transfected macrophages by a radiobinding assay and immunoprecipitation. BMDM expressed the I-E product maximally at 5 days of differentiation, and expression then declined. Furthermore, we have found that the expression of the I-E molecule on transfected macrophage was dependent upon exposure to interferon-gamma. Expression of I-E molecules was also detected by the generation of an allogeneic response. Transfected BMDM were compared with (CB6)F1 BMDM for their ability to stimulate C57BL/6 T cells and they were found to be equally effective. By using these initial findings, we hope to further optimize the conditions for insertion and expression of class II MHC genes in bone marrow cells.

Animals↗

How are class II MHC genes turned on and off?

Fragments of foreign antigen are detected by CD4+ helper T cells via the T cell receptor for antigen in the context of major histocompatibility complex (MHC) class II molecules. Very few cells normally express class II MHC molecules, and these cells play critical roles in antigen presentation and in the thymic selection of T lymphocytes before their exit into the periphery. Because of the central role the class II MHC molecules play in immune system function, it is not surprising that the lack of expression of these molecules results in a severe combined immunodeficiency disorder (called bare lymphocyte syndrome) and that the aberrant expression of the molecules is frequently observed in the target organs of various autoimmune disorders (e.g., multiple sclerosis and rheumatoid arthritis). Because both classes of disease could conceivably be treated by molecular approaches targeted at either restoring or inhibiting expression of class II MHC genes, there has been an intense effort during the past decade to elucidate the regulatory mechanisms of class II MHC genes. An analysis of recent advances in this effort is provided in this review article.

Animals↗