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Biomedical subjects

T I Prigozy

Publications and source records attributed to T I Prigozy.

9 recordsLinked to original sources

Glycolipid antigen processing for presentation by CD1d molecules.

The requirement for processing glycolipid antigens in T cell recognition was examined with mouse CD1d-mediated responses to glycosphingolipids (GSLs). Although some disaccharide GSL antigens can be recognized without processing, the responses to three other antigens, including the disaccharide GSL Gal(alpha1-->2)GalCer (Gal, galactose; GalCer, galactosylceramide), required removal of the terminal sugars to permit interaction with the T cell receptor. A lysosomal enzyme, alpha-galactosidase A, was responsible for the processing of Gal(alpha1-->2)GalCer to generate the antigenic monosaccharide epitope. These data demonstrate a carbohydrate antigen processing system analogous to that used for peptides and an ability of T cells to recognize processed fragments of complex glycolipids.

Amino Acid Motifs↗

Three adenovirus E3 proteins cooperate to evade apoptosis by tumor necrosis factor-related apoptosis-inducing ligand receptor-1 and -2.

Adenovirus encodes multiple gene products that regulate proapoptotic cellular responses to viral infection mediated by both the innate and adaptive immune systems. The E3-10.4K and 14.5K gene products are known to modulate the death receptor Fas. In this study, we demonstrate that an additional viral E3 protein, 6.7K, functions in the specific modulation of the two death receptors for tumor necrosis factor-related apoptosis-inducing ligand (TRAIL). The 6.7K protein is expressed on the cell surface and forms a complex with the 10.4K and 14.5K proteins, and this complex is sufficient to induce down-modulation of TRAIL receptor-1 and -2 from the cell surface and reverse the sensitivity of infected cells to TRAIL-mediated apoptosis. Down-modulation of TRAIL-R2 by the E3 complex is dependent on the cytoplasmic tail of the receptor, but the death domain alone is not sufficient. These results identify a mechanism for viral modulation of TRAIL receptor-mediated apoptosis and suggest the E3 protein complex has evolved to regulate the signaling of selected cytokine receptors.

Adenoviridae↗

The alphabeta T cell response to self-glycolipids shows a novel mechanism of CD1b loading and a requirement for complex oligosaccharides.

The structural basis for the T cell recognition of lipoglycans remains to be elucidated. We have described autoreactive T cells responsive to GM1 ganglioside presented by CD1b. We show that glycosphingolipids bind to CD1b on the cell surface at neutral pH and are recognized without internalization or processing. Furthermore, soluble GM-CD1b complexes stimulate specific T cells. Oligosaccharide groups containing five or more sugars are required to build a minimal epitope for TCR recognition. This suggests a mechanism for T cell recognition of glycosphingolipids in which much of the CD1b-bound ligand is exposed. Binding to CD1b is a highly reversible process and other ceramide-containing glycosphingolipids displace GM1. These nonantigenic compounds act as blockers and may prevent harmful autoreactivity in vivo.

Antigen Presentation↗

Embryonic, fetal, and neonatal tongue myoblasts exhibit molecular heterogeneity in vitro.

Variable gene expression patterns have been shown to exist between embryonic, fetal, and neonatal lineages of limb skeletal myoblasts in vitro and in vivo. In this study, we examined the molecular phenotype of embryonic, fetal, and neonatal tongue myoblasts in primary culture for comparison with in vivo developmental tongue myoblasts. Myogenic regulatory factor (MRF) and myosin heavy chain (MHC) gene expression were determined in culture during both growth and differentiation conditions by PCR, immunoblotting, and immunohistochemistry. Unlike their in vivo tongue myoblast equivalents, developmental tongue myoblast cultures featured the expression of MyoD when kept in growth conditions. Differentiation conditions in vitro induced myogenic tongue lineages to maintain characteristics of their in vivo morphologic and contractile gene phenotype. Both in vivo and in vitro, embryonic tongue lineages predominantly expressed MHC-embryonic isoforms, while fetal and neonatal tongue lineages predominantly expressed fast and perinatal isoforms of contractile genes. A notable difference from the in vivo condition that was observed in differentiated tongue myotubes in vitro was the presence of the MHC-slow protein. It was previously demonstrated that MHC-slow protein was undetectable during the in vivo development of the tongue musculature despite the abundance of slow isoform transcripts. The present characterization of primary tongue myogenic cultures indicates that murine myoblast heterogeneity exists primarily between developmental lineages at the level of contractile gene expression. Outside their native surroundings, developmental myogenic tongue populations are unable to recapitulate the determination and differentiation molecular profiles that occur in vivo.

Animals↗

Murine tongue muscle displays a distinct developmental profile of MRF and contractile gene expression.

Few studies have addressed the molecular differences that exist between muscles of the body and those of the craniofacial apparatus. In this study, we characterize the molecular events associated with determination and differentiation of the tongue musculature. We assess the expression of myogenic regulatory factors as well as the developmentally regulated myosin heavy chain, (MHC), genes which serve as markers of differentiation. These results suggest that tongue and limb muscle form by distinct molecular pathways. The myoblasts that contribute to the formation of the tongue preferentially express Myf-5 during myoblast determination rather than MyoD. Subsequently, isolated regions of myogenin expression mark the differentiation of first, the small primary myofibers and later, the larger secondary myofibers. Analysis of differentiation markers demonstrates that the tongue muscle also assumes a unique profile of MHC expression as compared to that of the muscles of the body. Unlike the myoblasts of the developing limb, which express embryonic and neonatal forms of MHC and later express MHC-slow, the tongue myoblasts co-express MHC-embryonic, MHC-slow and MHC-fast isoforms from gestational age E12. Proteins for MHC embryonic and MHC fast isoforms are detected almost simultaneously. Interestingly, MHC-slow transcripts do not appear to be translated into a detectable MHC slow protein at any developmental stage assayed. These results provide further evidence to suggest that skeletal tongue muscle represents a myoblast lineage that develops differently than the limb.

Age Factors↗

Presentation of bacterial lipid antigens by CD1 molecules.

Human CD1 molecules bind and display or present lipid and glycolipid antigens from mycobacteria for recognition by T cells. Presentation requires uptake of antigen into endosomes, where it binds to CD1. T-cell recognition of CD1-presented nonpeptide antigens is a newly defined immune response that could be important for host defense against a variety of pathogens.

Animals↗

Differential expression of troponin C genes during tongue myogenesis.

Determination of muscle fiber type is related to the developmental stage of the tissue. Ordinarily the final distribution of fast and slow fibers in a muscle is determined postnatally. Tongue muscle, however, is composed solely of fast-twitch fibers that express only troponin C fast mRNA and fast (type II) myosin heavy chain (MHC) proteins in both the adult and the one-day-old mouse. The fiber-type determination of this muscle was examined during fetal development. Both troponin C fast and slow mRNAs were expressed at initial stages of tongue development at embryonic day 18. However, by embryonic day 16 the troponin C fast transcripts predominated. AT 17 days of embryonic development, TnC fast mRNA was 10 times more abundant than TnC slow, and at 18 days of development the TnC slow mRNA was barely detectable. The tongue muscle myotubes expressed fast, slow, and embryonic MHC isoforms during early embryonic development. At 18 days of gestation, the MHC isoform expressed by the majority of the myotubes was the fast isoform, whereas the slow isoform was present in very few fibers. RT-PCR analysis of the MHC transcripts present throughout tongue development demonstrated expression of the mdms or type IIx MHC in both late fetal and postnatal stages of development. In contrast, the type I/beta slow MHC mRNA was undetectable in the postnatal and adult tongue. The absence of TnC and MHC slow-isoform mRNAs in the newborn mouse tongue suggests that slow isoform genes become dominantly repressed with the TnC-F and MHC type IIx genes remaining transcriptionally active, giving rise to an unusually homogeneous fast-twitch phenotype. The tongue muscle fibers acquire their specific adult-type fiber characteristics during fetal development rather than postnatally.

Animals↗

The mannose receptor delivers lipoglycan antigens to endosomes for presentation to T cells by CD1b molecules.

We have characterized the CD1b-mediated presentation pathway for the mycobacterial lipoglycan lipoarabinomannan (LAM) in monocyte-derived antigen-presenting cells. The macrophage mannose receptor (MR) was responsible for uptake of LAM. Antagonism of MR function inhibited both the internalization of LAM and the presentation of this antigen to LAM-reactive T cells. Intracellular MRs were most abundant in early endosomes, but they also were located in the compartment for MHC class II antigen loading (MIIC). Internalized LAM was transported to late endosomes, lysosomes, and MIICs. MRs colocalized with CD1b molecules, suggesting that the MR could deliver LAM to late endosomes for loading onto CD1b. LAM and CD1b colocalized in organelles that may be sites of lipoglycan antigen loading. This pathway links recognition of microbial antigens by a receptor of the innate immune system to the induction of adaptive T cell responses.

Antigen Presentation↗

CD1-restricted T cell recognition of microbial lipoglycan antigens.

It has long been the paradigm that T cells recognize peptide antigens presented by major histocompatibility complex (MHC) molecules. However, nonpeptide antigens can be presented to T cells by human CD1b molecules, which are not encoded by the MHC. A major class of microbial antigens associated with pathogenicity are lipoglycans. It is shown here that human CD1b presents the defined mycobacterial lipoglycan lipoarabinomannan (LAM) to alpha beta T cell receptor-bearing lymphocytes. Presentation of these lipoglycan antigens required internalization and endosomal acidification. The T cell recognition required mannosides with alpha(1-->2) linkages and a phosphotidylinositol unit. T cells activated by LAM produced interferon gamma and were cytolytic. Thus, an important class of microbial molecules, the lipoglycans, is a part of the universe of foreign antigens recognized by human T cells.

Antigen Presentation↗