PubMed HealthSearch

Biomedical subjects

T T Glant

Publications and source records attributed to T T Glant.

At least 19 recordsLinked to original sources

A proteoglycan (aggrecan)-specific T cell hybridoma induces arthritis in BALB/c mice.

Aggrecan, the high buoyant density cartilage proteoglycan (PG), has been shown to induce progressive polyarthritis and ankylosing spondylitis in genetically susceptible BALB/c mice. To further characterize the nature of the autopathogenic effector T cells operating in these mice and to determine the region(s) of the PG molecule recognized by these T cells, we generated PG-specific T cell hybridomas from arthritic mice. One of the PG-specific T cell hybridomas (5/4E8), when injected into naive irradiated BALB/c mice, was capable of inducing clinical and histopathologic signs of arthritis. Massive swelling and redness of the paws dominated the clinical picture. A reactive synovial cell proliferation, the accumulation of hybridoma and inflammatory cells in the enlarged joint space, the loss of PG from the superficial layer of the articular cartilage, and the erosion of articular surface were identical histopathologic signs to those found either in primary or adoptive transfer of PG-induced arthritis. The PG-specific and arthritogenic T cell hybridoma (5/4E8) expressed TCR-alpha beta + (V beta 4), CD4+, and CD8- phenotypes and belonged to the Th1 subset, as the cells secreted IL-2 and IFN-gamma, but not IL-4 upon PG stimulation, and the response was MHC class II (I-Ad)-restricted. These observations provide direct evidence that PG-specific Th cells play crucial roles in autoimmune arthritic processes.

Aggrecans

Large and small proteoglycans of osteoarthritic and rheumatoid articular cartilage.

OBJECTIVE: To identify characteristic changes in large aggregating (aggrecan) and small proteoglycan (PG) populations in articular cartilages during osteoarthritis (OA) and rheumatoid arthritis (RA). METHODS: Aggrecan populations in guanidine extracts of femoral condylar cartilages of 46 OA and 8 RA patients who underwent total knee arthroplasty, as well as of 2 fetuses and 6 normal adults, were separated in agarose-polyacrylamide composite gels. Small PGs (biglycan, decorin, and fibromodulin) in the same extracts were analyzed in 12% polyacrylamide gels. Gels were stained or electrophoretically transferred and probed with antibodies to aggrecan epitopes and to small PGs. Epitope contents of the samples were also compared by inhibition radioimmunoassay. RESULTS: There were significant differences found among normal and diseased samples in their electrophoretic mobilities, band distributions, and antibody staining. OA and especially RA samples were heavily degraded, lacked certain aggrecan populations, and contained fewer keratan sulfate and chondroitin-6-sulfate epitopes compared with normal samples. Levels of chondroitin-4-sulfate and "fetal-type" epitopes were elevated in the OA samples compared with the normal ones. More core proteins of small PGs were found in diseased than in normal cartilages, but they were more heterogeneous in size and glycosaminoglycan substitution. CONCLUSION: There is extensive degradation of both large and small PGs in diseased cartilages, but a repair process does exist, especially in OA cartilages. Chondrocytes of diseased cartilages are able to synthesize fetal-type aggrecans. Small PGs are glycosylated differently in diseased cartilages than in normal ones.

Adult

The potential role of fibroblasts in periprosthetic osteolysis: fibroblast response to titanium particles.

Periprosthetic osteolysis with or without aseptic loosening is a major clinical problem in total hip arthroplasty. While the macrophage response to prosthetic wear debris and its role in periprosthetic osteolysis has been extensively studied, information regarding other cell types (fibroblasts, osteoblasts) is limited. This study explored the response of fibroblasts to particulate wear debris. Fibroblasts isolated from interfacial membranes of patients with failed total hip replacements and normal synovial tissue, when challenged with small-sized ( < 3 microns) titanium (Ti) particles, responded with significantly enhanced expressions of collagenase, stromelysin and, to a much lesser extent, their tissue inhibitor of metalloproteinases (TIMP). These "regulated" expressions at both mRNA and protein levels were correlated with the size and composition of particles. De novo protein synthesis was required for the regulation of these mRNAs. A similar effect could be induced by the treatment of the cells with particle-free conditioned medium from Ti particle-stimulated fibroblasts. Furthermore, this conditioned medium significantly suppressed the mRNA levels of procollagen alpha 1 (I) and alpha 1 (III) in osteoblast-like MG-63 cells. It is concluded that fibroblasts stimulated with certain particle debris may play an important role in periprosthetic osteolysis by releasing bone-resorbing metalloproteinases and mediator(s) which resulted in suppressed collagen synthesis in osteoblasts.

Base Sequence

Human monocyte response to particulate biomaterials generated in vivo and in vitro.

We studied the ability of four clinically relevant particle species to stimulate human peripheral blood monocytes to release bone-resorbing agents, including interleukin-1 (both interleukin-1 alpha and interleukin-1 beta), interleukin-6, and prostaglandin E2. The species studied were titanium-6% aluminum-4% vanadium (TiAlV), commercially pure titanium, fabricated ultrahigh molecular weight polyethylene, and polyethylene retrieved from interfacial membranes of failed uncemented total hip arthroplasties. For all species, the mean size was less than 1 micron. Human peripheral blood monocytes were challenged with these particles in a uniform manner on the basis of surface area. Phorbol 12-myristate acetate, zymosan, and nonphagocytosable titanium particles served as controls. Stimulation of human monocytes is a function of the composition and concentration of particles. In this study, TiAlV particles appeared to be the most competent to elicit the synthesis and release of inflammatory mediators. Particles of commercially pure titanium and of fabricated ultrahigh molecular weight polyethylene also could induce the release of various cellular mediators, albeit at a lower level, whereas the particles of polyethylene retrieved from interfacial membranes were less stimulatory in these short-term in vitro experiments.

Alloys

Interferon-gamma but not granulocyte/macrophage colony-stimulating factor augments proteoglycan presentation by synovial cells and chondrocytes to an autopathogenic T cell hybridoma.

Immunization of BALB/c mice with human cartilage proteoglycan (aggrecan) produces a progressive polyarthritis, similar in many aspects to human rheumatoid arthritis, and autoreactive T cells are necessary for initiation of the disease. To study the immunopathological mechanisms operating in the synovium of arthritic mice, we isolated a proteoglycan (PG)-specific arthritogenic T-cell hybridoma, 5/4E8, and examined the presentation of PG to this T-cell hybridoma by mouse synovial cells and chondrocytes. Both cell types expressed very low levels of major histocompatibility complex (MHC) class II following isolation and culture and were unable to present PG to the hybridoma. However, following stimulation with interferon-gamma (IFN-gamma), both synovial cells and chondrocytes showed a marked increase in MHC class II expression and consequently were able to present PG very effectively. The PG-specific responses of the hybridoma were abrogated by an anti-Ia monoclonal antibody. Granulocyte-macrophage colony-stimulating factor (GM-CSF), one of the most abundant cytokines in the rheumatoid synovium, had no effect on the antigen-presenting capacity of synovial cells and chondrocytes, either on its own or together with IFN gamma.

Aggrecans

Cellular mediators secreted by interfacial membranes obtained at revision total hip arthroplasty.

The interfacial membrane between implant and host-bone in aseptically loose total hip arthroplasties has a potential role in the etiology of local bone resorption and loosening of the prosthetic component. Inflammatory/potential "bone-resorbing" agents (cytokines/mediators) released by the cells of the interfacial membranes of loosened uncemented and cemented total hip arthroplasties were measured. Synovial tissues from patients with acute femoral neck fractures, patients with osteoarthritis, and cadavers without joint disorders were used as control subjects. Control synovial tissue from osteoarthritic patients secreted the highest levels of prostaglandin E2, interleukin-8, and tumor necrosis factor alpha. Interleukin-1 alpha was the only cytokine whose levels were elevated as much as 4-fold around uncemented implants compared with cemented implants, and up to 16-fold compared with control synovial tissue. An apparent inverse relation between interleukin-1 alpha and interleukin-6 interfacial membranes of total hip arthroplasties compared with control synovial tissues suggests a complex cellular mechanism through a cytokine/prostaglandin cascade; this may regulate the observed bone resorption in aseptic loosening.

Adult

Anti-CD44 treatment abrogates tissue oedema and leukocyte infiltration in murine arthritis.

A ubiquitous cell adhesion receptor, CD44, preferentially binds hyaluronan, a polysaccharide macromolecule that is present in most extracellular matrices. Hyaluronan molecules have large hydrodynamic volumes that entrap substantial amounts of water and can therefore control tissue hydration (swelling). CD44 is overexpressed by synovial cells and leukocytes, and hyaluronan is overproduced in the rheumatoid synovium and in other inflammatory sites. Nevertheless, the role of the CD44-hyaluronan interaction during inflammation is unclear. Our evidence shows that the CD44 receptor plays a critical role in governing the migration of inflammatory leukocytes into the extravascular compartment of the synovium in murine arthritis. An anti-CD44 antibody induces a rapid loss of CD44 from both leukocytes and synovial cells and displays an inhibitory effect on cell-extracellular matrix interactions in the synovium. As a result, the administration of such an antibody abrogates tissue swelling and leukocyte infiltration, two major components of inflammation.

Amino Acid Sequence

Antigen-specific B cells present cartilage proteoglycan (aggrecan) to an autoreactive T cell hybridoma derived from a mouse with proteoglycan-induced arthritis.

Cartilage proteoglycan (aggrecan)-induced polyarthritis in BALB/c mice is characterized by chronic inflammation and destruction of joint tissues similar to that observed in human rheumatoid arthritis. The immunization of mice with fetal human proteoglycan (PG) elicits specific antibodies to the immunizing antigen of which a population cross-reacts with native mouse PG. This (auto)antibody production is immediately followed by an explosive proliferation of autoreactive T cells, suggesting that PG-specific B cells may participate in antigen presentation of PG to autoreactive T cells. We therefore isolated B cells from the spleens and lymph nodes of PG-immunized mice and examined their ability to present PG to a PG-specific T cell hybridoma. The antigen-specific T cell responses elicited by B cells from PG-immunized mice (both arthritic and clinically asymptomatic) were markedly higher than those of non-immune mice and keyhole limpet haemocyanin (KLH)-immunized mice, and these B cells could present low PG concentrations. Levels of B cell presentation corresponded with the serum levels of PG-specific antibodies, implying that these B cells were presenting the PG specifically via their surface immunoglobulin. This B cell-T cell interaction was strongly dependent on MHC class II/T cell receptor (TCR), LFA-1/intercellular adhesion molecule-1 (ICAM-1) and CD28/B7 interactions, as antibodies to Ia, ICAM-1 and B7-2 (but not to B7-1) markedly reduced presentation. These data indicate that PG-specific B cells may play an essential role in governing the development of PG-induced arthritis.

Aggrecans

Presentation of cartilage proteoglycan to a T cell hybridoma derived from a mouse with proteoglycan-induced arthritis.

Immunization of BALB/c mice with human fetal cartilage proteoglycan (PG) produces progressive polyarthritis, and T cells play key roles in the development of the disease. To gain an understanding of how PG is presented to autoreactive T cells by synovial antigen-presenting cells (APC), we examined the abilities of various syngeneic APC in presenting PG to a specific T cell hybridoma 5/4E8, derived from a mouse with PG-induced arthritis. A20 B lymphoma cells and spleen cells were strong presenters of PG, but synoviocytes and P388D1 macrophages could only present PG effectively after stimulation with interferon-gamma (IFN-gamma). The IFN-gamma exerted its effect by up-regulating both MHC class II and intercellular adhesion molecule-1 (ICAM-1) expression by these cells as neutralizing antibodies to Ia, LFA-1 and ICAM-1 inhibited presentation. Our studies also showed that synoviocytes and spleen cells took up and processed PG more rapidly than the cell lines. Cysteine and serine protease-dependent antigen presentation of PG was blocked at 4 degrees C, 18 degrees C and by chloroquine treatment, indicating that presentation required active uptake and processing in an acidic compartment, probably in lysosomes. Also, keratan sulphate-depleted and cyanogen bromide (CNBr) and 2-nitro-5-thiocyanobenzoic acid (NTCB)-cleaved PG elicited stronger T cell responses, as they were more easily processed than the native molecule. Furthermore, CNBr-generated peptides were presented by fixed APC, indicating that core protein fragments of cartilage PG can be presented directly by APC in context with MHC class II molecules.

Animals

VDIPEN, a metalloproteinase-generated neoepitope, is induced and immunolocalized in articular cartilage during inflammatory arthritis.

The destruction of articular cartilage in immune inflammatory arthritic disease involves the proteolytic degradation of its extracellular matrix. The role of activated matrix metalloproteinases (MMPs) in the chondrodestructive process was studied by identifying a selective cleavage product of aggrecan in murine arthritis models initiated by immunization with either type II collagen or proteoglycan. We conducted semiquantitative immunocytochemical studies of VDIPEN341 using a monospecific polyclonal antibody requiring the free COOH group of the COOH-terminal Asn for epitope detection. This antibody recognizes the aggrecan G1 domain fragment generated by MMP [i.e., stromelysin (SLN) or gelatinase A] cleavage of aggrecan between Asn341-Phe342 but does not recognize intact aggrecan. VDIPEN was undetectable in normal mouse cartilage but was observed in the articular cartilage (AC) of mice with collagen-induced arthritis 10 d after immunization, without histological damage and clinical symptoms. This aggrecan neoepitope was colocalized with high levels of glycosaminoglycans (GAGs) in pericellular matrices of AC chondrocytes but was not seen at the articular surface at this early time. Digestion of normal (VDIPEN negative) mouse paw cryosections with SLN also produced heavy pericellular VDIPEN labeling. Computer-based image analysis showed that the amount of VDIPEN expression increased dramatically by 20 d (70% of the SLN maximum) and was correlated with GAG depletion. Both infiltration of inflammatory cells into the synovial cavity and early AC erosion were also very prominent at this time. Analysis of adjacent sections showed that both induction of VDIPEN and GAG depletion were strikingly codistributed within sites of articular cartilage damage. Similar results occurred in proteoglycan-induced arthritis, a more progressive and chronic model of inflammatory arthritis. These studies demonstrate for the first time the MMP-dependent catabolism of aggrecan at sites of chondrodestruction during inflammatory arthritis.

Amino Acid Sequence

Mapping of arthritogenic/autoimmune epitopes of cartilage aggrecans in proteoglycan-induced arthritis.

Immunization of BALB/c mice with chondroitin sulfate-depleted proteoglycan (aggrecan) of fetal human cartilage produces progressive polyarthritis and ankylosing spondylitis. The development of the disease in genetically susceptible BALB/c mice is dependent upon the expression of both cell-mediated and humoral immune responses against the host mouse cartilage proteoglycan (PG). Although cartilage PGs from various species have many biochemical and immunological similarities, only a select group of PGs from fetal and newborn human, fetal pig and canine articular cartilages, human osteophytes and human chondrosarcomas are able to induce arthritis in BALB/c mice. Arthritis develops only in mice that also develop autoantibodies to self-cartilage PGs, although autoantibodies occasionally are present in non-arthritic animals as well. The protease-sensitive auto/arthritogenic epitope(s) is located in, or close to, the chondroitin sulfate (CS) attachment region of the PG molecule. The primary structure of the core protein is responsible for the autoimmune/arthritogenic effect of this select group of PGs, whereas the core protein epitopes are masked by glycosaminoglycan (GAG)-side chains. The CS side chains seem to inhibit antigen recognition in all aggrecans with arthritogenic potential, whereas a similar effect with keratan sulfate (KS) appears only in PGs of aging cartilages.

Aggrecans

Mediators and autopathogenic effector cells in proteoglycan-induced arthritic and clinically asymptomatic BALB/c mice.

Proteoglycan (aggrecan)-induced arthritis is an autoimmune inflammatory animal model produced in genetically susceptible BALB/c mice. This animal model shows many similarities to human rheumatoid arthritis as indicated by clinical assessments, histopathological studies, and immunological parameters. The systemic immunization of mice with a select group of cartilage proteoglycans provokes immune responses to the immunizing antigen and then the production of cross-reactive antibodies to self proteoglycans. This is followed by an explosive proliferation of autoreactive T cells, especially in joint draining lymph nodes, accompanied by local (joint) inflammatory events. In the current experiments we found that lymphocytes from arthritic, or potentially arthritic but yet clinically asymptomatic animals, produced more IL-2 than those T cells obtained from animals immunized with nonarthritogenic PGs. In addition, synoviocytes isolated from prearthritic or arthritic animals produced several-fold more interleukin-1 beta (IL-1 beta) than cells from normal animals. Flow cytometric analysis indicated an autoantigen (mouse PG)-specific selective proliferation of surface Ig+/CD45R+ cells in prearthritic stages followed by the proliferation of predominantly T helper (CD4+) cells during and after the development of arthritis.

Animals

Complete coding sequence, deduced primary structure, chromosomal localization, and structural analysis of murine aggrecan.

We have isolated and sequenced overlapping cDNA clones encoding the entire core protein of aggrecan (the large aggregating chondroitin sulfate/keratan sulfate proteoglycan of cartilage) from three chondrocyte cDNA libraries of BALB/c mice and localized the aggrecan gene in mouse chromosome 7. We determined 7386 bp of the cDNA sequence, including 132 and 854 nucleotides of 5' and 3' untranslated regions, respectively. The core protein precursor is 2132 amino acids long (M(r) 222,008), including a 19-residue secretory signal peptide. The overall amino acid sequence of the mouse aggrecan shows 91.6% identity to rat and 72.5% to human aggrecan. Comparison of the amino acid sequences of various domains and subdomain structures of mouse aggrecan to known sequences of other species and related proteins (versican, neurocan, link protein, and lymphocyte homing receptor CD44) revealed high levels of identity of the G1, G2, and G3 globular domains and relatively less conserved structures in the interglobular and glycosaminoglycan-attachment regions. Epidermal growth factor (EGF)-like module was detected in only a minor fraction of aggrecan clones, while the complement regulatory protein (CRP)-like domain was regularly expressed in all samples.

Aggrecans

Migration and homing of lymphocytes to lymphoid and synovial tissues in proteoglycan-induced murine arthritis.

OBJECTIVE: To describe the migration and homing of labeled donor lymphocytes to the lymphoid organs and synovial tissues of host animals, during the development of cartilage proteoglycan (PG)-induced arthritis adoptively transferred to syngeneic BALB/c mice. METHODS: Lymphocytes from either nonarthritic or arthritic donor animals were labeled with either fluorescent or radioactive cell linkers (PKH-GL) and injected into syngeneic, immunosuppressed mice. The homing patterns of donor lymphocytes following the injection of labeled cells were studied by fluorescence microscopy and by measurement of radioactivity in tissue samples. RESULTS: Lymphocytes from arthritic donors retained their ability to transfer the disease after labeling. In the lymphoid organs, arthritic and nonarthritic donor lymphocytes exhibited similar homing patterns, although remarkable differences were found in the number of homing cells derived from nonarthritic and arthritic donors. However, labeled cells only from arthritic animals migrated to the synovial tissue of the recipient mice, and their appearance was associated with the onset of arthritis. CONCLUSION: Lymphocytes from mice with PG-induced arthritis, in contrast to lymphocytes from non-arthritic donors, exhibit preferential homing to the synovial tissue of the host. Adoptive transfer of arthritis is linked to the appearance of these cells in the synovium.

Animals

Macrophage/particle interactions: effect of size, composition and surface area.

Particulate wear-debris are detected in histiocytes/macrophages of granulomatous tissues adjacent to loose joint prostheses. Such cell-particle interactions have been simulated in vitro by challenging macrophages with particles dosed according to weight percent, volume percent, and number of particles. Each of these dosage methods has inherent shortcomings due to varying size and density of challenging particles of different compositions. In this study we challenged P388D1 macrophages with titania and polystyrene particles (< 2 microns), with dosage based on the ratio of the surface area of the particles to the surface area of the cells. The effect of size and composition on (1) the bone resorbing activity, (2) fibroblast proliferation, and (3) secretion of IL-1 and PGE2 was determined. Macrophage response to particulate debris appears to be dependent on particle size, composition, and dose as given by surface area ratio. P388D1 macrophages challenged with titania particles released IL-1, but did not stimulate fibroblasts. Inhibition of macrophage DNA synthesis at higher surface area ratios suggests cell damage or death. Particle-stimulated cells increased bone resorption up to 125% of controls but released only basal levels of PGE2. Macrophages stimulated by wear particles are expected to synthesize numerous factors affecting events in the bone-implant interface. Using the concept of surface area ratio allows us to study and compare such cellular responses to wear particles in a standardized manner.

Animals

Response of three murine macrophage populations to particulate debris: bone resorption in organ cultures.

Particulate wear debris from bone cement or prosthetic components can stimulate macrophages to cause bone resorption. We compared the effect of particle composition (titanium and polymethylmethacrylate as inherent components of prosthetic materials or bone cement and polystyrene as a reference material) on the secretion of interleukin-1 and prostaglandin E2 by peritoneal macrophages and monocyte/macrophage cell lines (P388D1 and IC-21) and on the bone-resorbing activity of conditioned medium harvested from these particle-challenged macrophages. Titanium particles (1-3 microns) in peritoneal macrophage cultures exhibited significantly enhanced bone-resorbing activity measured as 45Ca release, whereas polymethylmethacrylate and polystyrene exhibited this effect to a greater extent in the P388D1 and IC-21 monocyte/macrophage cultures. Although exogenous prostaglandin E2 and recombinant human interleukin-1 could significantly increase the 45Ca release and indomethacin significantly reduced both the spontaneous calcium efflux and active 45Ca release from calvarial bones labeled in vivo, the levels of interleukin-1 and prostaglandin E2, alone or together, did not always correlate with the bone-resorbing activity of conditioned media. Thus, the actual levels of potent bone-resorbing agents (prostaglandin E2 and interleukin-1) measured in conditioned tissue culture media did not necessarily reflect the bone-resorbing capability. An important result of this study is that different macrophage populations may respond differently to the same microenvironmental signal, which in our investigation was particulate wear debris of differing composition and size.

Animals

Differentiation antigens of human articular chondrocytes and their tissue distribution as assessed by monoclonal antibodies.

Five monoclonal antibodies (HuMC1, HuMC2, HuMC3, HuMC4 and HuMC5) raised against intact human articular chondrocytes were tested with chondrocyte samples from arthritic and non-arthritic patients by surface immunofluorescence and by immunoperoxidase labeling of fixed cells. All acetone-fixed samples reacted strongly with the monoclonal antibodies but some variation in the percentages of intact chondrocytes positive by immunofluorescence was noted. Under culturing conditions which induced de-differentiation, epitopes recognized by HuMC1, HuMC3 and HuMC4 disappeared with time in culture. In contrast, reactivities to HuMC2 and HuMC5 either persisted or increased as the culture became more fibroblastic and these antibodies bound to antigens on human fibroblast cell lines. HuMC1, HuMC3 and HuMC4 reacted with purified adult and fetal proteoglycan. HuMC2 and HuMC5 exhibited only slight or no reactivity to either proteoglycan. All five monoclonal antibodies reacted with chondrocytes in frozen articular cartilage but HuMC2 and HuMC5 failed to react to chondrocytes in paraffin-embedded cartilage sections. Only HuMC1, HuMC3 and HuMC4 recognized matrix components in both frozen and paraffin-embedded cartilage. When tested against 29 different non-cartilaginous tissues, each of the monoclonal antibodies had distinctive reactivity patterns, suggesting that each reacted to different epitopes. HuMC3 reacted with neurons in the cerebral cortex and cerebellum, indicating that it may recognize epitopes shared on the S-100 protein. HuMC1 showed the greatest specificity for chondrosarcomas. These antibodies are useful for identifying differentiated chondrocytes, providing information on the distribution of chondrocyte antigens shared by other human tissue, assessing the extent of chondrocyte heterogeneity in a population and aiding in the classification of chondrosarcomas.

Antibodies, Monoclonal