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Mark Larché

Publications and source records attributed to Mark Larché.

15 recordsLinked to original sources

Peptide therapy for allergic diseases: basic mechanisms and new clinical approaches.

Desensitising allergen immunotherapy has been practised for many decades. Although time consuming, this form of therapy is antigen-specific and disease-modifying, in contrast to palliative pharmacotherapy. However, the use of allergen extracts containing native allergen molecules frequently results in allergic adverse reactions to treatment. Several strategies to reduce the allergenicity of therapeutic preparations, while maintaining their therapeutic benefit, are being developed. Peptide immunotherapy is one such approach. Short synthetic peptides, comprising T cell epitopes of major allergens, were unable to crosslink allergen-specific IgE molecules on basophils in vitro. Treatment of allergic volunteers with allergen peptides resulted in reduced skin, lung and nasal sensitivity to allergen challenge and improved their subjective ability to tolerate allergen exposure. Peptides reduced pro-inflammatory cytokine secretion from peripheral blood cells, whilst increasing the immunosuppressive cytokine IL-10. Furthermore, peptide therapy was associated with the induction of a population of CD4+ T cells with a suppressive functional phenotype. Thus, peptide therapy may be suitable for the antigen-specific treatment of allergic diseases.

Allergens↗

T cell epitope immunotherapy induces a CD4+ T cell population with regulatory activity.

BACKGROUND: Synthetic peptides, representing CD4(+) T cell epitopes, derived from the primary sequence of allergen molecules have been used to down-regulate allergic inflammation in sensitised individuals. Treatment of allergic diseases with peptides may offer substantial advantages over treatment with native allergen molecules because of the reduced potential for cross-linking IgE bound to the surface of mast cells and basophils. METHODS AND FINDINGS: In this study we address the mechanism of action of peptide immunotherapy (PIT) in cat-allergic, asthmatic patients. Cell-division-tracking dyes, cell-mixing experiments, surface phenotyping, and cytokine measurements were used to investigate immunomodulation in peripheral blood mononuclear cells (PBMCs) after therapy. Proliferative responses of PBMCs to allergen extract were significantly reduced after PIT. This was associated with modified cytokine profiles generally characterised by an increase in interleukin-10 and a decrease in interleukin-5 production. CD4(+) cells isolated after PIT were able to actively suppress allergen-specific proliferative responses of pretreatment CD4(neg) PBMCs in co-culture experiments. PIT was associated with a significant increase in surface expression of CD5 on both CD4(+) and CD8(+) PBMCs. CONCLUSION: This study provides evidence for the induction of a population of CD4(+) T cells with suppressor/regulatory activity following PIT. Furthermore, up-regulation of cell surface levels of CD5 may contribute to reduced reactivity to allergen.

Allergens↗

Peptide-based therapeutic vaccines for allergic and autoimmune diseases.

Allergic and autoimmune diseases are forms of immune hypersensitivity that increasingly cause chronic ill health. Most current therapies treat symptoms rather than addressing underlying immunological mechanisms. The ability to modify antigen-specific pathogenic responses by therapeutic vaccination offers the prospect of targeted therapy resulting in long-term clinical improvement without nonspecific immune suppression. Examples of specific immune modulation can be found in nature and in established forms of immune desensitization. Understanding and exploiting common mechanisms such as the ability to induce antigen-specific regulatory cells should allow the development of effective therapeutic strategies for both forms of immunopathology. Targeting pathogenic T cells using vaccines consisting of synthetic peptides representing T cell epitopes is one such strategy that is currently being evaluated with encouraging results. Future challenges in the development of therapeutic vaccines include selection of appropriate antigens and peptides, optimization of peptide dose and route of administration and identifying strategies to induce bystander suppression.

Antigen-Presenting Cells↗

Investigating T cell activation and tolerance in vivo: peptide challenge in allergic asthmatics.

In the atopic allergic individual, challenge with allergen elicits manifestations of both the humoral (IgE-mediated or early-phase reaction) and the cell-mediated immune response (late-phase reaction). Detailed study of late-phase cell-mediated events is confounded by the effects of the earlier IgE-mediated response which results in mast cell and basophil activation. Thus the relative contributions to allergic inflammation of individual cell types, such as T cells and eosinophils, are difficult to define. In this review we describe experiments, largely from our own group, in which we have attempted to dissociate early and late allergic reactions. To this end, cell-mediated responses were induced in the absence of preceding IgE-mediated events, by the delivery of synthetic peptides representing T cell epitopes of the allergen. Activation of T cells resulted in airway narrowing and an increase in airway reactivity to non-specific stimuli. Furthermore, we describe the induction of antigen-specific hyporesponsiveness or "tolerance" following intradermal, but not mucosal, peptide delivery. The induction of peptide-induced hyporesponsiveness could be temporally dissociated from the initial T cell activation resulting in bronchoconstriction and likely occurred through a different mechanism. Analysis of in vitro allergen responses of peripheral blood cells revealed that hyporesponsiveness was associated with reductions in both Th1 and Th2 cytokines, together with a concomitant increase in the regulatory cytokine IL-10. We conclude that activation of T cells in vivo may result in manifestations of chronic allergic inflammation including bronchoconstriction and hyperreactivity. Additionally, when administered systemically at low dose, peptides may induce long-lasting hyporesponsiveness in the T cell compartment, through a mechanism that is associated with induction of IL-10.

Allergens↗

Tregs and allergic disease.

Allergic diseases such as asthma, rhinitis, and eczema are increasing in prevalence and affect up to 15% of populations in Westernized countries. The description of Tregs as T cells that prevent development of autoimmune disease led to considerable interest in whether these Tregs were also normally involved in prevention of sensitization to allergens and whether it might be possible to manipulate Tregs for the therapy of allergic disease. Current data suggest that Th2 responses to allergens are normally suppressed by both CD4+CD25+ Tregs and IL-10 Tregs. Furthermore, suppression by these subsets is decreased in allergic individuals. In animal models, Tregs could be induced by high- or low-dose inhaled antigen, and prior induction of such Tregs prevented subsequent development of allergen sensitization and airway inflammation in inhaled challenge models. For many years, allergen-injection immunotherapy has been used for the therapy of allergic disease, and this treatment may induce IL-10 Tregs, leading to both suppression of Th2 responses and a switch from IgE to IgG4 antibody production. Improvements in allergen immunotherapy, such as peptide therapy, and greater understanding of the biology of Tregs hold great promise for the treatment and prevention of allergic disease.

Allergens↗

Allergen immunotherapy with cat allergen peptides.

Desensitising therapy for allergic diseases has changed little over almost a century of practice. Administration of increasing doses of extracts of allergen source material has been shown to be reproducibly effective when patients are carefully selected and appropriate concentrations of allergen employed. However, specific immunotherapy is limited by the interaction of specific IgE with allergen, leading to a relatively high frequency of adverse events including anaphylaxis and death. Several strategies have been developed to tackle this issue. Most of these rely on reducing the allergenicity of the treatment, whilst maintaining the immunogenicity. The use of short, synthetic peptide sequences corresponding to T-cell epitopes from the allergen has been shown to modify surrogate markers of allergy including cutaneous responses to allergen challenge and ex vivo parameters of T-cell activation. This review discusses recent advances in our understanding of the mechanisms and potential efficacy of this form of therapy.

Allergens↗

Late asthmatic reactions induced by inhalation of allergen-derived T cell peptides.

In individuals with atopy and asthma, allergen-derived T cell peptides injected intradermally induce isolated late asthmatic reactions (LARs) followed by bronchial hyporesponsiveness to peptide, inhibition of the allergen-induced cutaneous late-phase reaction, and altered T cell function in vitro. Laboratory animal data indicate that "activation" and "tolerance" also occur if peptides are inhaled. In this study, we show that inhalation of Fel d 1-derived peptides induced isolated LAR in individuals with asthma sensitive to cat allergen comparable with that previously demonstrated using intradermal injection. LARs were accompanied by eosinophilia and nonsignificant elevations of total cysteinyl leukotrienes in the sputum. Unlike the intradermal route, repeated inhalation of peptides was not associated with abrogation of the LAR and produced a sputum eosinophilia comparable with the first exposure. In addition, there was no inhibition of the cutaneous late-phase reaction to whole cat dander. Thus, isolated LAR induced by inhaled, allergen-derived peptides represent a novel model of provoked asthma and are not associated with the induction of hyporesponsiveness ("tolerance") in the skin or lung.

Administration, Inhalation↗

The role of T lymphocytes in the pathogenesis of asthma.

There is considerable evidence to support a role for T cells in asthma, particularly the involvement of T(H)2 cells both in atopic allergic asthma and in nonatopic and occupational asthma. There might also be a minor contribution from T(C)2 CD8+ T cells. Several T(H)2 cytokines have the potential to modulate airway inflammation, particularly IL-13, which induces airway hyperresponsiveness independently of IgE and eosinophilia in animal models. The identification of transcription factors controlling T(H)1 and T(H)2 development further support the T(H)2 hypothesis because GATA3 is overexpressed and T-bet is underexpressed in the asthmatic airway. Specific T cell directed immunotherapy might allow induction, modulation, or both of T-cell responses, and elucidation of the mechanisms of regulatory T cells might allow further optimization of immunotherapy. Recent advances in our understanding of dendritic cell function in directing T-cell responses might uncover further therapeutic targets. The efficacy of cyclosporin A and anti-CD4 treatment in patients with chronic severe asthma argues for continued T-cell involvement, but whether remodeling contributes to pathology inaccessible to anti-inflammatory treatment or T-cell immunotherapy will be an important future question.

Adrenal Cortex Hormones↗

Peptide immunotherapy for allergic disease.

The only disease-modifying treatment available for IgE-mediated disease is specific immunotherapy, but the retention of B cell epitopes in whole allergen preparations confers a risk of IgE-mediated systemic reactions to their administration. Compelling evidence for the central role of T cells in allergic disease suggests that IgE-binding epitopes could be removed from such therapy, improving safety without affecting efficacy. Short, allergen-derived peptides lack the conformational determinants required for IgE crosslinking and are, therefore, an attractive therapeutic possibility. However, human leukocyte antigen (HLA) polymorphism means that T cell peptide epitopes present a huge diversity, which makes the design of peptide-based vaccines problematic. Over the past 10 years, advances in our understanding of epitope selection and major histocompatibility complex (MHC)-peptide-T cell receptor interactions have taken this therapy forward to early clinical trials with human volunteers.

Animals↗

The potential of peptide immunotherapy in allergy and asthma.

Allergic conditions contribute significantly to the burden of chronic disease in the industrialized world. Current treatments offer varying degrees of palliation. The sole proven disease-modifying strategy, specific or whole-allergen immunotherapy, is limited because of the associated risk of systemic adverse effects, such as anaphylaxis. Short, linear allergen-derived peptides, corresponding to T cell epitopes, offer the possibility of a safer approach as they are capable of inducing allergen-specific hyporesponsiveness without cross-linking mast cell-bound IgE. This review evaluates the scientific basis of peptide immunotherapy and clinical experience in allergy up to the present time.

Animals↗

Peptide-based vaccines in the treatment of specific allergy.

The efficacy of conventional allergen-specific immunotherapy (SIT) for allergic conditions and venom hypersensitivity is well documented. However it's use is limited due allergic side effects including anaphylaxis and the difficulty of standardising proteins in complex allergenic mixtures. The aim of new therapeutic strategies is to circumvent these limitations and approaches include allergen non-specific therapy, such as anti-IgE and anti-cytokine therapy and other allergen specific techniques including the peptide based vaccines (PBV), modified allergens (allergoids) and DNA vaccines. PBV are small linear peptide fragments containing T cell epitopes which are designed to reduce the ability to cross link antigen-specific IgE. Studies in animal models have confirmed proof of principle demonstrating the induction of hyporesponsiveness using high doses of peptides. However, the principle limitation to clinical use of PBV is the polymorphism of HLA class II molecules. There are ongoing clinical studies using peptide-based vaccines for cat, bee and grass allergies--looking at both immunological mechanisms and clinical outcome measures. The mechanisms underlying the efficacy of PBV appear to be similar to those described for classical immunological tolerance. Thus, the peptides may induce anergy due to absence of co-stimulation, activation-induced cell death, a switch from a Th2 to a Th1 cytokine profile, the induction of regulatory T cells or combinations of these mechanisms. Successful immunotherapy, in bee sensitive individuals, is associated with the elaboration of IL-10. Clonal deletion is unlikely as an overall mechanism as there is evidence that the subsequent in vitro response to associated, non-injected, peptides can be suppressed. Mechanistic studies continue to provide insight into the mode of action of whole allergen and peptide-based immunotherapy. Clinical studies designed on the basis of these observations hold the promise of safer vaccines with improved efficacy. Whether this strategy can be used for allergy to complex allergen mixtures such as dust mites will need further evaluation.

Allergens↗