Search PubMed⌕ Search

Biomedical subjects

G L Costa

Publications and source records attributed to G L Costa.

17 recordsLinked to original sources

Adoptive immunotherapy of experimental autoimmune encephalomyelitis via T cell delivery of the IL-12 p40 subunit.

CD4+ T cells are believed to play a central role in the initiation and perpetuation of autoimmune diseases such as multiple sclerosis. In the murine model for multiple sclerosis, experimental autoimmune encephalomyelitis, pathogenic T cells exhibit a Th1-like phenotype characterized by heightened expression of proinflammatory cytokines. Systemic administration of "regulatory" cytokines, which serve to counter Th1 effects, has been shown to ameliorate autoimmune responses. However, the inherent problems of nonspecific toxicity limit the usefulness of systemic cytokine delivery as a potential therapy. Therefore, we used the site-specific trafficking properties of autoantigen-reactive CD4+ T cells to develop an adoptive immunotherapy protocol that provided local delivery of a Th1 cytokine antagonist, the p40 subunit of IL-12. In vitro analysis demonstrated that IL-12 p40 suppressed IFN-gamma production in developing and effector Th1 populations, indicating its potential to modulate Th1-promoted inflammation. We have previously demonstrated that transduction of myelin basic protein-specific CD4+ T cells with pGC retroviral vectors can result in efficient and stable transgene expression. Therefore, we adoptively transferred myelin basic protein-specific CD4+ T cells transduced to express IL-12 p40 into mice immunized to develop experimental autoimmune encephalomyelitis and demonstrated a significant reduction in clinical disease. In vivo tracking of bioluminescent lymphocytes, transduced to express luciferase, using low-light imaging cameras demonstrated that transduced CD4+ T cells trafficked to the central nervous system, where histological analysis confirmed long-term transgene expression. These studies have demonstrated that retrovirally transduced autoantigen-specific CD4+ T cells inhibited inflammation and promoted immunotherapy of autoimmune disorders.

3T3 Cells↗

Fungal flora of the digestive tract of 5 species of triatomines vectors of Trypanosoma cruzi, Chagas 1909.

A study of the mycobiota in the digestive tract of 5 important species of triatomines, Triatoma brasiliensis, T infestans, T. sordida, T. pseudomaculata and T. vitticeps, was made. The digestive tracts of 164 adults and 535 nymphs of those triatomines were studied and 393 fungal strains were isolated. The genera with the greatest number of species were Penicillium (19 species), Aspergillus (17 species) and Acremonium (5 species) and the most frequent species, in decreasing order, were Penicillium corylophilum, Aspergillus niger, Penicillium felluttanum, Cladosporium herbarum, Penicillium waksmanii, Aspergillus awamori and Paecilomyces variotii. Among the isolated fungi, we found species that are recognized as entomopathogenic and pathogenic for humans and animals.

Animals↗

Antigen-specific T cell-mediated gene therapy in collagen-induced arthritis.

Autoantigen-specific T cells have tissue-specific homing properties, suggesting that these cells may be ideal vehicles for the local delivery of immunoregulatory molecules. We tested this hypothesis by using type II collagen-specific (CII-specific) CD4(+) T hybridomas or primary CD4(+) T cells after gene transfer, as vehicles to deliver an immunoregulatory protein for the treatment of collagen-induced arthritis (CIA), a mouse model of rheumatoid arthritis (RA). CII-specific T cells or hybridomas were transduced using retroviral vectors to constitutively express the IL-12 antagonist, IL-12 p40. Transfer of engineered CD4(+) T cells after immunization significantly inhibited the development of CIA, while cells transduced with vector control had no effect. The beneficial effect on CIA of IL-12 p40-transduced T cells required TCR specificity against CII, since transfer of T cells specific for another antigen producing equivalent amounts of IL-12 p40 had no effect. In vivo cell detection using bioluminescent labels and RT-PCR showed that transferred CII-reactive T-cell hybridomas accumulated in inflamed joints in mice with CIA. These results indicate that the local delivery of IL-12 p40 by T cells inhibited CIA by suppressing autoimmune responses at the site of inflammation. Modifying antigen-specific T cells by retroviral transduction for local expression of immunoregulatory proteins thus offers a promising strategy for treating RA.

Adoptive Transfer↗

Targeting rare populations of murine antigen-specific T lymphocytes by retroviral transduction for potential application in gene therapy for autoimmune disease.

CD4+ T cells are important mediators in the pathogenesis of autoimmunity and would therefore provide ideal candidates for lymphocyte-based gene therapy. However, the number of Ag-specific T cells in any single lesion of autoimmunity may be quite low. Successful gene transfer into autoantigen-specific CD4+ T cells would serve as an ideal vehicle for site-targeted gene therapy if it were possible to transduce preferentially the small number of autoantigen-specific T cells. In this study we have demonstrated that retroviral infection of CD4+ lymphocytes from either autoantigen-stimulated TCR transgenic mice, or Ag-activated immunized nontransgenic mice, with a retroviral vector (pGCIRES), resulted in the transduction of only the limited number of Ag-reactive CD4+ T cells. In contrast, polyclonal activation of the same cultures resulted in transduction of non-antigen-specific lymphocytes. Transduction of Ag-reactive CD4+ T cells with pGCIRES retrovirus encoding the regulatory genes IL-4 (IL4) and soluble TNF receptor (STNFR) resulted in stable integration and long-term expression of recombinant gene products. Moreover, expression of the pGCIRES marker protein, GFP, directly correlated with the expression of the upstream regulatory gene. Retroviral transduction of CD4+ T cells targeted specifically Ag-reactive cells and was cell cycle-dependent and evident only during the mitosis phase. These studies suggest that retroviral transduction of autoantigen-specific murine CD4+ T cells, using the pGCIRES retroviral vector, may provide a potential method to target and isolate the low frequency of autoantigen-specific murine CD4+ T cells, and provides a rational approach to gene therapy in animal models of autoimmunity.

3' Untranslated Regions↗

A novel transcription factor, T-bet, directs Th1 lineage commitment.

Naive T helper cells differentiate into two subsets, Th1 and Th2, each with distinct functions and cytokine profiles. Here, we report the isolation of T-bet, a Th1-specific T box transcription factor that controls the expression of the hallmark Th1 cytokine, IFNgamma. T-bet expression correlates with IFNgamma expression in Th1 and NK cells. Ectopic expression of T-bet both transactivates the IFNgamma gene and induces endogenous IFNgamma production. Remarkably, retroviral gene transduction of T-bet into polarized Th2 and Tc2 primary T cells redirects them into Th1 and Tc1 cells, respectively, as evidenced by the simultaneous induction of IFNgamma and repression of IL-4 and IL-5. Thus, T-bet initiates Th1 lineage development from naive Thp cells both by activating Th1 genetic programs and by repressing the opposing Th2 programs.

Amino Acid Sequence↗

Gene therapy for autoimmune disease.

Autoantigen-specific CD4(+) T lymphocytes have been implicated in the pathogenesis of autoimmune diseases. Tissue-specific homing properties of autoantigen-specific CD4(+) T cells suggested that these cells might be ideal vehicles for delivery of retroviral-encoded regulatory proteins in a site-specific manner as a therapy for autoimmune diseases. Application of retroviral transduction of autoantigen-reactive CD4(+) T cells in gene therapy of autoimmunity must include systems capable of targeting these rare populations of antigen-activated T cells. Studies discussed below suggest that retroviral transduction of autoantigen-specific murine CD4(+) T cells may provide a method to target and isolate nontransformed autoantigen-specific murine CD4(+) T cells and provide a rational approach to gene therapy in animal models of autoimmunity.

Animals↗

Site-directed mutagenesis of double-stranded DNA by the polymerase chain reaction.

We have developed a facile procedure for rapid PCR-based site-directed mutagenesis of double-stranded DNA. Increasing the initial template concentration and decreasing the PCR cycles to 5-10 allows us to reduce the rate of undesired second-site mutations and dramatically increase the time savings. Following PCR, DpnI treatment is used to select against parental DNA molecules. The DpnI (target sequence 5'-Gm6ATC) is specific for methylated and hemimethylated DNA and is used to digest parental DNA and select for mutation-containing amplified DNA. DNA isolated from almost all common Escherichia coli strains is Dam methylated and therefore susceptible to DpnI digestion. Pfu DNA polymerase is used, prior to intramolecular ligation of the linear template, to remove any bases extended onto the 3' ends of the PCR product by Taq DNA polymerase. The recircularized vector DNA incorporating the desired mutations is transformed into E. coli. This method can be used independently of any host strain and vector.

Base Sequence↗

Cloning and analysis of PCR-generated DNA fragments.

Methods are presented for the improved yield and analysis of blunt-ended cloning of PCR-generated DNA fragments. We show that Pfu DNA polymerase polishing of Taq DNA polymerase-generated fragments increases the yield and efficiency of cloning. Using a triple primer set consisting of two outside, asymmetrically distanced primers and one fragment-specific primer, both the presence and orientation of cloned inserts can be determined. Application of these methods allows the generation and cloning of a fragment in 1 day and the analysis of putative clones the next, thereby saving a substantial amount of both time and effort.

Base Sequence↗

Suppression of monocyte function and differential regulation of IL-1 and IL-1ra by IL-4 contribute to resolution of experimental arthritis.

IL-4 has diverse effects on hematopoietic cells, including the ability to suppress certain mononuclear cell functions. To evaluate the effect of IL-4 on the evolution of acute and chronic arthritis, murine recombinant IL-4 was administered systemically to animals receiving an arthropathic dose of group A streptococcal cell wall fragments. Daily treatment with IL-4 had a minimal effect on the acute phase, but significantly suppressed the chronic, destructive phase. By 4 wk after initiation of disease, the articular index of IL-4-treated animals was reduced > 60% (articular index = 4 +/- 0.9) compared with the untreated rats (11.5 +/- 0.48, p < 0.001). A substantial decrease in the influx of inflammatory cells and virtual elimination of pannus and erosions occurred after IL-4 therapy. Associated with the reduced accumulation of mononuclear leukocytes was a decrease in their proinflammatory functions including cytokine production and reactive oxygen intermediate metabolism. These observations are consistent with the selective effects of IL-4 on phagocytic cell function demonstrated in vitro. Furthermore, IL-4 induced gene expression for IL-1ra, a protein that antagonizes the action of IL-1 by binding to the IL-1 receptor without agonist activity. Through an expanding spectrum of effects on monocyte-macrophage phenotypic and functional parameters, IL-4 is emerging as an important inhibitor of cell-mediated immune responses and pathogenic processes.

Animals↗

Transforming growth factor-beta mediates IL-1-dependent induction of IL-1 receptor antagonist.

Transforming growth factor-beta (TGF-beta) is a potent immunomodulatory molecule that promotes inflammation through recruitment of monocytes and induction of IL-1 and other cytokines. These proinflammatory processes may be modulated by the ability of TGF-beta to induce de novo synthesis and secretion of an IL-1 receptor antagonist (IL-1ra) that binds to and blocks IL-1 receptors. In this study, we show that the addition of TGF-beta to human peripheral blood monocytes induced the sequential transcription of the 1.8-kb mRNA for IL-1 beta and for IL-1ra. The expression of detectable mRNA and synthesis of IL-1 beta peptide routinely preceded that for IL-1ra, suggesting possible dependency of IL-1ra generation on IL-1 beta. Antibody to IL-1 blocked TGF-beta induction of IL-1ra mRNA expression demonstrating an unique IL-1-dependent induction of its own antagonist. Confirmatory evidence that IL-1 participates in the generation of IL-1ra was obtained when exogenously added IL-1 induced and, IL-1 receptor antagonist blocked, IL-1ra transcription. Thus, these data suggest that TGF-beta, after release at a site of inflammation, induces synthesis of IL-1 that participates in the initial cytokine cascade central to an inflammatory response, and then triggers the generation of its own natural inhibitor by autocrine or paracrine pathways. This TGF-beta-induced IL-1-dependent induction of IL-1ra may provide a negative feedback loop, thereby promoting the resolution of an inflammatory response.

Animals↗

Interleukin (IL) 4 differentially regulates monocyte IL-1 family gene expression and synthesis in vitro and in vivo.

Interleukin (IL) 4 is a multifunctional T cell-derived cytokine that inhibits cytokine production and certain effector functions in human monocytes, while enhancing others. We show that IL-4 may contribute to the downregulation and resolution of an inflammatory response by selectively promoting expression of the IL-1 receptor antagonist (IL-1ra) that blocks the action of IL-1. IL-1ra specifically binds to the IL-1 receptor without initiating signal transduction. Peripheral blood monocytes obtained from cancer patients, before and immediately after a regimen of IL-4 immunotherapy, were examined for IL-1ra gene expression. After IL-4 therapy, monocytes from the patients showed a marked increase in IL-1ra mRNA. This selective induction of IL-1ra mRNA in circulating monocytes was reflected by significantly enhanced serum levels of IL-1ra (p < 0.01) during IL-4 therapy, which declined after IL-4 treatment. In vitro analysis of IL-4 regulation of monocytes from normal individuals revealed a dose-dependent induction of IL-1ra mRNA within 2-4 h after stimulation without a concomitant effect on the expression of IL-1 mRNA. Increased IL-1ra mRNA was not due to RNA stabilization, but occurred at the level of transcription. In the presence of LPS, IL-4 not only augmented IL-1ra levels, but markedly inhibited LPS-induced IL-1 mRNA expression. The selective upregulation of IL-1ra by resting or activated monocytes, coupled with inhibition of IL-1 production by activated monocytes, as we demonstrate both in vitro and in vivo, suggests that IL-4 may prove clinically useful as a systemic antiinflammatory agent.

Blotting, Northern↗

Reversal of acute and chronic synovial inflammation by anti-transforming growth factor beta.

Transforming growth factor beta (TGF-beta) induces leukocyte recruitment and activation, events central to an inflammatory response. In this study, we demonstrate that antagonism of TGF-beta with a neutralizing antibody not only blocks inflammatory cell accumulation, but also tissue pathology in an experimental model of chronic erosive polyarthritis. Intraarticular injection of monoclonal antibody 1D11.16, which inhibits both TGF-beta 1 and TGF-beta 2 bioactivity, into animals receiving an arthropathic dose of bacterial cell walls significantly inhibits arthritis. Inhibition was observed with a single injection of 50 micrograms antibody, and a 1-mg injection blocked acute inflammation > 75% compared with the contralateral joints injected with an irrelevant isotype control antibody (MOPC21) as quantitated by an articular index (AI = 0.93 +/- 0.23 for 1D11.16, and AI = 4.0 +/- 0 on day 4; p < 0.001). Moreover, suppression of the acute arthritis achieved with a single injection of antibody was sustained into the chronic, destructive phase of the disease (on day 18, AI = 0.93 +/- 0.07 vs. AI = 2.6 +/- 0.5; p < 0.01). The decreased inflammatory index associated with anti-TGF-beta treatment was consistent with histopathologic and radiologic evidence of a therapeutic response. These data implicate TGF-beta as a profound agonist not only in the early events responsible for synovial inflammation, but also in the chronicity of streptococcal cell wall fragment-induced inflammation culminating in destructive pathology. Interrupting the cycle of leukocyte recruitment and activation with TGF-beta antagonists may provide a mechanism for resolution of chronic destructive lesions.

Acute Disease↗

Role of transforming growth factor beta in the pathophysiology of chronic inflammation.

Transforming growth factor beta (TGF-beta), a cytokine identified in acute and chronic inflammatory sites, mediates leukocyte recruitment and activation essential to the development of such lesions. Released by platelets upon aggregation and by leukocytes stimulated with bacterial products or inflammatory mediators, TGF-beta has potent chemotactic activity for blood neutrophils, monocytes, and lymphocytes. By augmenting integrin expression, TGF-beta facilitates leukocyte adhesion to the vessel wall and extracellular matrix at the site of inflammation. Once within the inflammatory site, mononuclear cells are stimulated by TGF-beta to release cytokines important in the network of molecules regulating the host response to microorganisms and immunologic challenge. Thus, bacteria and their products, in addition to directly recruiting and activating leukocytes at sites of infection, indirectly influence these events through the induction of cytokines such as TGF-beta. By antagonizing the activity of TGF-beta with neutralizing antibodies, a causal relationship between this cytokine, inflammation, and pathogenesis has been demonstrated. Administration of anti-TGF-beta to sites of chronic destructive inflammation not only blocked leukocyte recruitment and activation, but also inhibited the subsequent destruction of bone and cartilage characteristics of such lesions.

Bacterial Physiological Phenomena↗