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Dive into the research topics where Jeffrey A. Bluestone is active.

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Featured researches published by Jeffrey A. Bluestone.


Immunity | 1995

Loss of CTLA-4 leads to massive lymphoproliferation and fatal multiorgan tissue destruction, revealing a critical negative regulatory role of CTLA-4

Elizabeth A. Tivol; Frank Borriello; A.Nicola Schweitzer; William P. Lynch; Jeffrey A. Bluestone; Arlene H. Sharpe

The B7-CD28/CTLA-4 costimulatory pathway can provide a signal pivotal for T cell activation. Signaling through this pathway is complex due to the presence of two B7 family members, B7-1 and B7-2, and two counterreceptors, CD28 and CTLA-4. Studies with anti-CTLA-4 monoclonal antibodies have suggested both positive and negative roles for CTLA-4 in T cell activation. To elucidate the in vivo function of CTLA-4, we generated CTLA-4-deficient mice. These mice rapidly develop lymphoproliferative disease with multiorgan lymphocytic infiltration and tissue destruction, with particularly severe myocarditis and pancreatitis, and die by 3-4 weeks of age. The phenotype of the CTLA-4-deficient mouse strain is supported by studies that have suggested a negative role for CTLA-4 in T cell activation. The severe phenotype of mice lacking CTLA-4 implies a critical role for CTLA-4 in down-regulating T cell activation and maintaining immunologic homeostasis. In the absence of CTLA-4, peripheral T cells are activated, can spontaneously proliferate, and may mediate lethal tissue injury.


Journal of Experimental Medicine | 2006

CD127 expression inversely correlates with FoxP3 and suppressive function of human CD4+ T reg cells

Weihong Liu; Amy L. Putnam; Zhou Xu-yu; Gregory L. Szot; Michael R. Lee; Shirley Zhu; Peter A. Gottlieb; Philipp Kapranov; Thomas R. Gingeras; Barbara Fazekas de St Groth; Carol Clayberger; David M. Soper; Steven F. Ziegler; Jeffrey A. Bluestone

Regulatory T (T reg) cells are critical regulators of immune tolerance. Most T reg cells are defined based on expression of CD4, CD25, and the transcription factor, FoxP3. However, these markers have proven problematic for uniquely defining this specialized T cell subset in humans. We found that the IL-7 receptor (CD127) is down-regulated on a subset of CD4+ T cells in peripheral blood. We demonstrate that the majority of these cells are FoxP3+, including those that express low levels or no CD25. A combination of CD4, CD25, and CD127 resulted in a highly purified population of T reg cells accounting for significantly more cells that previously identified based on other cell surface markers. These cells were highly suppressive in functional suppressor assays. In fact, cells separated based solely on CD4 and CD127 expression were anergic and, although representing at least three times the number of cells (including both CD25+CD4+ and CD25−CD4+ T cell subsets), were as suppressive as the “classic” CD4+CD25hi T reg cell subset. Finally, we show that CD127 can be used to quantitate T reg cell subsets in individuals with type 1 diabetes supporting the use of CD127 as a biomarker for human T reg cells.


Immunity | 2000

B7/CD28 Costimulation Is Essential for the Homeostasis of the CD4+CD25+ Immunoregulatory T Cells that Control Autoimmune Diabetes

Benoît L. Salomon; Deborah J. Lenschow; Lesley Rhee; Neda Ashourian; Bhagarith Singh; Arlene H. Sharpe; Jeffrey A. Bluestone

CD28/B7 costimulation has been implicated in the induction and progression of autoimmune diseases. Experimentally induced models of autoimmunity have been shown to be prevented or reduced in intensity in mice rendered deficient for CD28 costimulation. In sharp contrast, spontaneous diabetes is exacerbated in both B7-1/B7-2-deficient and CD28-deficient NOD mice. These mice present a profound decrease of the immunoregulatory CD4+CD25+ T cells, which control diabetes in prediabetic NOD mice. These cells are absent from both CD28KO and B7-1/B7-2KO mice, and the transfer of this regulatory T cell subset from control NOD animals into CD28-deficient animals can delay/prevent diabetes. The results suggest that the CD28/ B7 costimulatory pathway is essential for the development and homeostasis of regulatory T cells that control spontaneous autoimmune diseases.


Immunity | 1994

CTLA-4 can function as a negative regulator of T cell activation

Theresa L. Walunas; Deborah J. Lenschow; Christina Y. Bakker; Peter S. Linsley; Gordon J. Freeman; Jonathan M. Green; Craig B. Thompson; Jeffrey A. Bluestone

CD28 and CTLA-4 are related glycoproteins found on T cells. Ligation of CD28 following antigen receptor engagement provides a costimulatory signal required for T cell activation. Anti-CTLA-4 antibodies were generated to examine the role of the CTLA-4 receptor on murine T cells. Expression of CTLA-4 as a homodimer is up-regulated 2-3 days following T cell activation. Anti-CTLA-4 antibodies and Fab fragments augmented T cell proliferation in an allogeneic MLR. However, when optimal costimulation and Fc cross-linking were present, anti-CTLA-4 Mabs inhibited T cell proliferation. Together, these results suggest that the MAb may obstruct the interaction of CTLA-4 with its natural ligand and block a negative signal, or directly signal T cells to down-regulate immune function.


Nature | 2008

Innate immunity and intestinal microbiota in the development of Type 1 diabetes

Li Wen; Ruth E. Ley; Pavel Volchkov; Peter B. Stranges; Lia Avanesyan; Austin C. Stonebraker; Changyun Hu; F. Susan Wong; Gregory L. Szot; Jeffrey A. Bluestone; Jeffrey I. Gordon; Alexander V. Chervonsky

Type 1 diabetes (T1D) is a debilitating autoimmune disease that results from T-cell-mediated destruction of insulin-producing β-cells. Its incidence has increased during the past several decades in developed countries, suggesting that changes in the environment (including the human microbial environment) may influence disease pathogenesis. The incidence of spontaneous T1D in non-obese diabetic (NOD) mice can be affected by the microbial environment in the animal housing facility or by exposure to microbial stimuli, such as injection with mycobacteria or various microbial products. Here we show that specific pathogen-free NOD mice lacking MyD88 protein (an adaptor for multiple innate immune receptors that recognize microbial stimuli) do not develop T1D. The effect is dependent on commensal microbes because germ-free MyD88-negative NOD mice develop robust diabetes, whereas colonization of these germ-free MyD88-negative NOD mice with a defined microbial consortium (representing bacterial phyla normally present in human gut) attenuates T1D. We also find that MyD88 deficiency changes the composition of the distal gut microbiota, and that exposure to the microbiota of specific pathogen-free MyD88-negative NOD donors attenuates T1D in germ-free NOD recipients. Together, these findings indicate that interaction of the intestinal microbes with the innate immune system is a critical epigenetic factor modifying T1D predisposition.


Nature | 2003

Natural versus adaptive regulatory T cells

Jeffrey A. Bluestone; Abul K. Abbas

The regulation of immune responses to self-antigens is a complex process that involves maintaining self-tolerance while retaining the capacity to mount robust immune responses against invading microorganisms. Over the past few years, many new insights into this process have been gained, leading to the re-emergence of the idea that regulatory T (TReg) cells are a central mechanism of immune regulation. These insights have raised fundamental questions concerning what constitutes a TReg cell, where they develop and what signals maintain TReg-cell populations in a functional state. Here, we propose the existence of two subsets of CD4+ TReg cells — natural and adaptive — that differ in terms of their development, specificity, mechanism of action and dependence on T-cell receptor and co-stimulatory signalling.


Journal of Experimental Medicine | 2004

In Vitro–expanded Antigen-specific Regulatory T Cells Suppress Autoimmune Diabetes

Qizhi Tang; Kammi J. Henriksen; Mingying Bi; Erik B. Finger; Greg Szot; Jianqin Ye; Emma L. Masteller; Hugh O. McDevitt; Mark L. Bonyhadi; Jeffrey A. Bluestone

The low number of CD4+ CD25+ regulatory T cells (Tregs), their anergic phenotype, and diverse antigen specificity present major challenges to harnessing this potent tolerogenic population to treat autoimmunity and transplant rejection. In this study, we describe a robust method to expand antigen-specific Tregs from autoimmune-prone nonobese diabetic mice. Purified CD4+ CD25+ Tregs were expanded up to 200-fold in less than 2 wk in vitro using a combination of anti-CD3, anti-CD28, and interleukin 2. The expanded Tregs express a classical cell surface phenotype and function both in vitro and in vivo to suppress effector T cell functions. Most significantly, small numbers of antigen-specific Tregs can reverse diabetes after disease onset, suggesting a novel approach to cellular immunotherapy for autoimmunity.


Nature Immunology | 2006

Visualizing regulatory T cell control of autoimmune responses in nonobese diabetic mice

Qizhi Tang; Jason Y. Adams; Aaron J. Tooley; Mingying Bi; Brian T. Fife; Pau Serra; Pere Santamaria; Richard M. Locksley; Matthew F. Krummel; Jeffrey A. Bluestone

The in vivo mechanism of regulatory T cell (Treg cell) function in controlling autoimmunity remains controversial. Here we have used two-photon laser-scanning microscopy to analyze lymph node priming of diabetogenic T cells and to delineate the mechanisms of Treg cell control of autoimmunity in vivo. Islet antigen–specific CD4+CD25− T helper cells (TH cells) and Treg cells swarmed and arrested in the presence of autoantigens. These TH cell activities were progressively inhibited in the presence of increasing numbers of Treg cells. There were no detectable stable associations between Treg and TH cells during active suppression. In contrast, Treg cells directly interacted with dendritic cells bearing islet antigen. Such persistent Treg cell–dendritic cell contacts preceded the inhibition of TH cell activation by dendritic cells, supporting the idea that dendritic cells are central to Treg cell function in vivo.


Nature | 2010

Genetics, pathogenesis and clinical interventions in type 1 diabetes

Jeffrey A. Bluestone; Kevan C. Herold; George S. Eisenbarth

Type 1 diabetes is an autoimmune disorder afflicting millions of people worldwide. Once diagnosed, patients require lifelong insulin treatment and can experience numerous disease-associated complications. The last decade has seen tremendous advances in elucidating the causes and treatment of the disease based on extensive research both in rodent models of spontaneous diabetes and in humans. Integrating these advances has led to the recognition that the balance between regulatory and effector T cells determines disease risk, timing of disease activation, and disease tempo. Here we describe current progress, the challenges ahead and the new interventions that are being tested to address the unmet need for preventative or curative therapies.


Nature Reviews Immunology | 2003

Opinion-regulatory lymphocytes: Natural versus adaptive regulatory T cells

Jeffrey A. Bluestone; Abul K. Abbas

The regulation of immune responses to self-antigens is a complex process that involves maintaining self-tolerance while retaining the capacity to mount robust immune responses against invading microorganisms. Over the past few years, many new insights into this process have been gained, leading to the re-emergence of the idea that regulatory T (TReg) cells are a central mechanism of immune regulation. These insights have raised fundamental questions concerning what constitutes a TReg cell, where they develop and what signals maintain TReg-cell populations in a functional state. Here, we propose the existence of two subsets of CD4+ TReg cells — natural and adaptive — that differ in terms of their development, specificity, mechanism of action and dependence on T-cell receptor and co-stimulatory signalling.

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Qizhi Tang

University of California

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Amy L. Putnam

University of California

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