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1.
Annu Rev Immunol ; 42(1): 153-178, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38941602

ABSTRACT

The intestine is the largest peripheral lymphoid organ in animals, including humans, and interacts with a vast array of microorganisms called the gut microbiota. Comprehending the symbiotic relationship between the gut microbiota and our immune system is essential not only for the field of immunology but also for understanding the pathogenesis of various systemic diseases, including cancer, cardiometabolic disorders, and extraintestinal autoimmune conditions. Whereas microbe-derived antigens are crucial for activating the intestinal immune system, particularly T and B cells, as environmental cues, microbes and their metabolites play a critical role in directing the differentiation of these immune cells. Microbial metabolites are regarded as messengers from the gut microbiota, since bacteria have the ability to produce unique molecules that humans cannot, and many immune cells in the intestine express receptors for these molecules. This review highlights the distinct relationships between microbial metabolites and the differentiation and function of the immune system.


Subject(s)
Gastrointestinal Microbiome , Humans , Animals , Gastrointestinal Microbiome/immunology , Cell Differentiation , B-Lymphocytes/immunology , B-Lymphocytes/metabolism , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Bacteria/immunology , Bacteria/metabolism
2.
Annu Rev Immunol ; 42(1): 179-206, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38166256

ABSTRACT

T cell responses must be balanced to ensure adequate protection against malignant transformation and an array of pathogens while also limiting damage to healthy cells and preventing autoimmunity. T cell exhaustion serves as a regulatory mechanism to limit the activity and effector function of T cells undergoing chronic antigen stimulation. Exhausted T cells exhibit poor proliferative potential; high inhibitory receptor expression; altered transcriptome, epigenome, and metabolism; and, most importantly, reduced effector function. While exhaustion helps to restrain damage caused by aberrant T cells in settings of autoimmune disease, it also limits the ability of cells to respond against persistent infection and cancer, leading to disease progression. Here we review the process of T cell exhaustion, detailing the key characteristics and drivers as well as highlighting our current understanding of the underlying transcriptional and epigenetic programming. We also discuss how exhaustion can be targeted to enhance T cell functionality in cancer.


Subject(s)
Neoplasms , T-Lymphocytes , Humans , Animals , Neoplasms/immunology , Neoplasms/etiology , Neoplasms/metabolism , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Epigenesis, Genetic , Lymphocyte Activation/immunology , Autoimmune Diseases/immunology , Autoimmune Diseases/metabolism , T-Cell Exhaustion
3.
Annu Rev Immunol ; 38: 123-145, 2020 04 26.
Article in English | MEDLINE | ID: mdl-32045313

ABSTRACT

Throughout the body, T cells monitor MHC-bound ligands expressed on the surface of essentially all cell types. MHC ligands that trigger a T cell immune response are referred to as T cell epitopes. Identifying such epitopes enables tracking, phenotyping, and stimulating T cells involved in immune responses in infectious disease, allergy, autoimmunity, transplantation, and cancer. The specific T cell epitopes recognized in an individual are determined by genetic factors such as the MHC molecules the individual expresses, in parallel to the individual's environmental exposure history. The complexity and importance of T cell epitope mapping have motivated the development of computational approaches that predict what T cell epitopes are likely to be recognized in a given individual or in a broader population. Such predictions guide experimental epitope mapping studies and enable computational analysis of the immunogenic potential of a given protein sequence region.


Subject(s)
Epitopes, T-Lymphocyte/immunology , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Animals , Biomarkers , Computational Biology/methods , Disease Susceptibility , Histocompatibility Antigens/immunology , Humans , Ligands , Machine Learning , Protein Binding
4.
Annu Rev Immunol ; 38: 397-419, 2020 04 26.
Article in English | MEDLINE | ID: mdl-31990620

ABSTRACT

T cell development involves stepwise progression through defined stages that give rise to multiple T cell subtypes, and this is accompanied by the establishment of stage-specific gene expression. Changes in chromatin accessibility and chromatin modifications accompany changes in gene expression during T cell development. Chromatin-modifying enzymes that add or reverse covalent modifications to DNA and histones have a critical role in the dynamic regulation of gene expression throughout T cell development. As each chromatin-modifying enzyme has multiple family members that are typically all coexpressed during T cell development, their function is sometimes revealed only when two related enzymes are concurrently deleted. This work has also revealed that the biological effects of these enzymes often involve regulation of a limited set of targets. The growing diversity in the types and sites of modification, as well as the potential for a single enzyme to catalyze multiple modifications, is also highlighted.


Subject(s)
Chromatin/genetics , Chromatin/metabolism , Lymphopoiesis , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Acetylation , Animals , Cell Differentiation/genetics , Cell Differentiation/immunology , Gene Expression Regulation, Developmental , Gene Expression Regulation, Enzymologic , Histones , Humans , Lymphopoiesis/genetics , Lymphopoiesis/immunology , Methylation , Protein Processing, Post-Translational , T-Lymphocytes/cytology , T-Lymphocytes/enzymology , Ubiquitination
5.
Annu Rev Immunol ; 38: 673-703, 2020 04 26.
Article in English | MEDLINE | ID: mdl-32340576

ABSTRACT

Development of improved approaches for HIV-1 prevention will likely be required for a durable end to the global AIDS pandemic. Recent advances in preclinical studies and early phase clinical trials offer renewed promise for immunologic strategies for blocking acquisition of HIV-1 infection. Clinical trials are currently underway to evaluate the efficacy of two vaccine candidates and a broadly neutralizing antibody (bNAb) to prevent HIV-1 infection in humans. However, the vast diversity of HIV-1 is a major challenge for both active and passive immunization. Here we review current immunologic strategies for HIV-1 prevention, with a focus on current and next-generation vaccines and bNAbs.


Subject(s)
AIDS Vaccines/immunology , Antibodies, Neutralizing/immunology , HIV Antibodies/immunology , HIV Infections/immunology , HIV Infections/prevention & control , HIV-1/immunology , Host-Pathogen Interactions/immunology , AIDS Vaccines/administration & dosage , Animals , Clinical Trials as Topic , Disease Management , Genetic Variation , HIV Infections/virology , HIV-1/genetics , Humans , Immunization, Passive , RNA, Viral , Structure-Activity Relationship , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Viral Proteins/chemistry , Viral Proteins/genetics
6.
Annu Rev Immunol ; 38: 1-21, 2020 04 26.
Article in English | MEDLINE | ID: mdl-31594433

ABSTRACT

It is difficult to believe that in about 1960 practically nothing was known about the thymus and some of its products, T cells bearing αß receptors for antigen. Thus I was lucky to join the field of T cell biology almost at its beginning, when knowledge about the cells was just getting off the ground and there was so much to discover. This article describes findings about these cells made by others and myself that led us all from ignorance, via complete confusion, to our current state of knowledge. I believe I was fortunate to practice science in very supportive institutions and with very collaborative colleagues in two countries that both encourage independent research by independent scientists, while simultaneously ignoring or somehow being able to avoid some of the difficulties of being a woman in what was, at the time, a male-dominated profession.


Subject(s)
Disease Susceptibility , Obsessive-Compulsive Disorder/etiology , Obsessive-Compulsive Disorder/metabolism , Animals , Autoimmunity , Biomarkers , Cell Death , Cytokines/metabolism , Disease Susceptibility/immunology , Histocompatibility Antigens/genetics , Histocompatibility Antigens/immunology , Histocompatibility Antigens/metabolism , Humans , Immunity, Innate , Obsessive-Compulsive Disorder/psychology , Protein Binding , Receptors, Antigen, T-Cell/metabolism , Receptors, Antigen, T-Cell, alpha-beta/metabolism , Superantigens/immunology , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Thymus Gland/immunology , Thymus Gland/metabolism
7.
Annu Rev Immunol ; 37: 201-224, 2019 04 26.
Article in English | MEDLINE | ID: mdl-30576253

ABSTRACT

The engagement of a T cell with an antigen-presenting cell (APC) or activating surface results in the formation within the T cell of several distinct actin and actomyosin networks. These networks reside largely within a narrow zone immediately under the T cell's plasma membrane at its site of contact with the APC or activating surface, i.e., at the immunological synapse. Here we review the origin, organization, dynamics, and function of these synapse-associated actin and actomyosin networks. Importantly, recent insights into the nature of these actin-based cytoskeletal structures were made possible in several cases by advances in light microscopy.


Subject(s)
Actins/metabolism , Actomyosin/metabolism , Antigen-Presenting Cells/metabolism , Cytoskeleton/metabolism , Immunological Synapses/metabolism , T-Lymphocytes/metabolism , Animals , Antigen Presentation , Humans , Lymphocyte Activation
8.
Annu Rev Immunol ; 36: 843-864, 2018 04 26.
Article in English | MEDLINE | ID: mdl-29490162

ABSTRACT

Recent progress in both conceptual and technological approaches to human immunology have rejuvenated a field that has long been in the shadow of the inbred mouse model. This is a healthy development both for the clinical relevance of immunology and for the fact that it is a way to gain access to the wealth of phenomenology in the many human diseases that involve the immune system. This is where we are likely to discover new immunological mechanisms and principals, especially those involving genetic heterogeneity or environmental influences that are difficult to model effectively in inbred mice. We also suggest that there are likely to be novel immunological mechanisms in long-lived, less fecund mammals such as human beings since they must remain healthy far longer than short-lived rodents in order for the species to survive.


Subject(s)
Immune System/physiology , Immunity , Animals , B-Lymphocytes/immunology , B-Lymphocytes/metabolism , Biological Evolution , Biological Variation, Population , Clonal Deletion/immunology , Host-Pathogen Interactions/immunology , Humans , Immunologic Memory , Models, Animal , Receptors, Antigen, T-Cell/metabolism , T-Lymphocytes/immunology , T-Lymphocytes/metabolism
9.
Annu Rev Immunol ; 36: 221-246, 2018 04 26.
Article in English | MEDLINE | ID: mdl-29328786

ABSTRACT

Researchers are intensifying efforts to understand the mechanisms by which changes in metabolic states influence differentiation programs. An emerging objective is to define how fluctuations in metabolites influence the epigenetic states that contribute to differentiation programs. This is because metabolites such as S-adenosylmethionine, acetyl-CoA, α-ketoglutarate, 2-hydroxyglutarate, and butyrate are donors, substrates, cofactors, and antagonists for the activities of epigenetic-modifying complexes and for epigenetic modifications. We discuss this topic from the perspective of specialized CD4+ T cells as well as effector and memory T cell differentiation programs. We also highlight findings from embryonic stem cells that give mechanistic insight into how nutrients processed through pathways such as glycolysis, glutaminolysis, and one-carbon metabolism regulate metabolite levels to influence epigenetic events and discuss similar mechanistic principles in T cells. Finally, we highlight how dysregulated environments, such as the tumor microenvironment, might alter programming events.


Subject(s)
Cell Differentiation/genetics , Cell Differentiation/immunology , Energy Metabolism , Epigenesis, Genetic , Animals , Biomarkers , Gene Expression Regulation, Developmental , Humans , Neoplasms/etiology , Neoplasms/metabolism , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Tumor Microenvironment/genetics , Tumor Microenvironment/immunology
10.
Annu Rev Immunol ; 36: 309-338, 2018 04 26.
Article in English | MEDLINE | ID: mdl-29677470

ABSTRACT

The complement system is an evolutionarily ancient key component of innate immunity required for the detection and removal of invading pathogens. It was discovered more than 100 years ago and was originally defined as a liver-derived, blood-circulating sentinel system that classically mediates the opsonization and lytic killing of dangerous microbes and the initiation of the general inflammatory reaction. More recently, complement has also emerged as a critical player in adaptive immunity via its ability to instruct both B and T cell responses. In particular, work on the impact of complement on T cell responses led to the surprising discoveries that the complement system also functions within cells and is involved in regulating basic cellular processes, predominantly those of metabolic nature. Here, we review current knowledge about complement's role in T cell biology, with a focus on the novel intracellular and noncanonical activities of this ancient system.


Subject(s)
Complement System Proteins/immunology , Immunomodulation , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Adaptive Immunity , Animals , Autoimmunity , B-Lymphocytes/immunology , B-Lymphocytes/metabolism , Complement Activation/immunology , Energy Metabolism , Host-Pathogen Interactions/immunology , Humans , Immunity, Cellular , Membrane Cofactor Protein/metabolism , Th1 Cells/immunology , Th1 Cells/metabolism
11.
Annu Rev Immunol ; 36: 103-125, 2018 04 26.
Article in English | MEDLINE | ID: mdl-29261409

ABSTRACT

T cell receptors (TCRs) are protein complexes formed by six different polypeptides. In most T cells, TCRs are composed of αß subunits displaying immunoglobulin-like variable domains that recognize peptide antigens associated with major histocompatibility complex molecules expressed on the surface of antigen-presenting cells. TCRαß subunits are associated with the CD3 complex formed by the γ, δ, ε, and ζ subunits, which are invariable and ensure signal transduction. Here, we review how the expression and function of TCR complexes are orchestrated by several fine-tuned cellular processes that encompass (a) synthesis of the subunits and their correct assembly and expression at the plasma membrane as a single functional complex, (b) TCR membrane localization and dynamics at the plasma membrane and in endosomal compartments, (c) TCR signal transduction leading to T cell activation, and (d) TCR degradation. These processes balance each other to ensure efficient T cell responses to a variety of antigenic stimuli while preventing autoimmunity.


Subject(s)
Gene Expression Regulation , Receptors, Antigen, T-Cell/metabolism , Signal Transduction , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Animals , Biomarkers , CD3 Complex/genetics , CD3 Complex/metabolism , Cell Membrane/metabolism , Endocytosis/genetics , Endocytosis/immunology , Endosomes/metabolism , Humans , Immunomodulation , Multiprotein Complexes/chemistry , Multiprotein Complexes/metabolism , Proteolysis , Receptors, Antigen, T-Cell/chemistry , Receptors, Antigen, T-Cell/genetics , Structure-Activity Relationship
12.
Annu Rev Immunol ; 36: 127-156, 2018 04 26.
Article in English | MEDLINE | ID: mdl-29237129

ABSTRACT

T cells possess an array of functional capabilities important for host defense against pathogens and tumors. T cell effector functions require the T cell antigen receptor (TCR). The TCR has no intrinsic enzymatic activity, and thus signal transduction from the receptor relies on additional signaling molecules. One such molecule is the cytoplasmic tyrosine kinase ZAP-70, which associates with the TCR complex and is required for initiating the canonical biochemical signal pathways downstream of the TCR. In this article, we describe recent structure-based insights into the regulation and substrate specificity of ZAP-70, and then we review novel methods for determining the role of ZAP-70 catalytic activity-dependent and -independent signals in developing and mature T cells. Lastly, we discuss the disease states in mouse models and humans, which range from immunodeficiency to autoimmunity, that are caused by mutations in ZAP-70.


Subject(s)
Disease Susceptibility , Signal Transduction , T-Lymphocytes/metabolism , ZAP-70 Protein-Tyrosine Kinase/metabolism , Animals , Autoimmunity , Biomarkers , Catalysis , Cell Differentiation/genetics , Cell Differentiation/immunology , Gene Expression Regulation , Humans , Immunity , Lymphocyte Activation/genetics , Lymphocyte Activation/immunology , Phosphorylation , Protein Transport , Structure-Activity Relationship , Substrate Specificity , T-Lymphocytes/immunology , ZAP-70 Protein-Tyrosine Kinase/antagonists & inhibitors , ZAP-70 Protein-Tyrosine Kinase/chemistry , ZAP-70 Protein-Tyrosine Kinase/genetics
13.
Annu Rev Immunol ; 36: 19-42, 2018 04 26.
Article in English | MEDLINE | ID: mdl-29144837

ABSTRACT

Adaptive immunity in jawless fishes is based on antigen recognition by three types of variable lymphocyte receptors (VLRs) composed of variable leucine-rich repeats, which are differentially expressed by two T-like lymphocyte lineages and one B-like lymphocyte lineage. The T-like cells express either VLRAs or VLRCs of yet undefined antigen specificity, whereas the VLRB antibodies secreted by B-like cells bind proteinaceous and carbohydrate antigens. The incomplete VLR germline genes are assembled into functional units by a gene conversion-like mechanism that employs flanking variable leucine-rich repeat sequences as templates in association with lineage-specific expression of cytidine deaminases. B-like cells develop in the hematopoietic typhlosole and kidneys, whereas T-like cells develop in the thymoid, a thymus-equivalent region at the gill fold tips. Thus, the dichotomy between T-like and B-like cells and the presence of dedicated lymphopoietic tissues emerge as ancestral vertebrate features, whereas the somatic diversification of structurally distinct antigen receptor genes evolved independently in jawless and jawed vertebrates.


Subject(s)
Adaptive Immunity , Biological Evolution , Vertebrates/immunology , Animals , B-Lymphocytes/immunology , B-Lymphocytes/metabolism , Cell Lineage , Cytidine Deaminase/genetics , Cytidine Deaminase/metabolism , Humans , Immunity, Innate , Multigene Family , Receptors, Antigen, B-Cell/chemistry , Receptors, Antigen, B-Cell/genetics , Receptors, Antigen, B-Cell/metabolism , Receptors, Antigen, T-Cell/chemistry , Receptors, Antigen, T-Cell/genetics , Receptors, Antigen, T-Cell/metabolism , Structure-Activity Relationship , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Vertebrates/metabolism
14.
Annu Rev Immunol ; 36: 549-578, 2018 04 26.
Article in English | MEDLINE | ID: mdl-29677469

ABSTRACT

Signaling through the T cell antigen receptor (TCR) activates a series of tyrosine kinases. Directly associated with the TCR, the SRC family kinase LCK and the SYK family kinase ZAP-70 are essential for all downstream responses to TCR stimulation. In contrast, the TEC family kinase ITK is not an obligate component of the TCR cascade. Instead, ITK functions as a tuning dial, to translate variations in TCR signal strength into differential programs of gene expression. Recent insights into TEC kinase structure have provided a view into the molecular mechanisms that generate different states of kinase activation. In resting lymphocytes, TEC kinases are autoinhibited, and multiple interactions between the regulatory and kinase domains maintain low activity. Following TCR stimulation, newly generated signaling modules compete with the autoinhibited core and shift the conformational ensemble to the fully active kinase. This multidomain control over kinase activation state provides a structural mechanism to account for ITK's ability to tune the TCR signal.


Subject(s)
Lymphocyte Activation , Protein-Tyrosine Kinases/metabolism , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Animals , Biomarkers , Humans , Lymphocyte Activation/immunology , Phospholipase C gamma/metabolism , Phosphorylation , Protein Binding , Protein Interaction Domains and Motifs , Protein-Tyrosine Kinases/chemistry , Receptors, Antigen, T-Cell/metabolism , Signal Transduction , src-Family Kinases/metabolism
15.
Annu Rev Immunol ; 36: 411-433, 2018 04 26.
Article in English | MEDLINE | ID: mdl-29677473

ABSTRACT

The discovery of interleukin-2 (IL-2) changed the molecular understanding of how the immune system is controlled. IL-2 is a pleiotropic cytokine, and dissecting the signaling pathways that allow IL-2 to control the differentiation and homeostasis of both pro- and anti-inflammatory T cells is fundamental to determining the molecular details of immune regulation. The IL-2 receptor couples to JAK tyrosine kinases and activates the STAT5 transcription factors. However, IL-2 does much more than control transcriptional programs; it is a key regulator of T cell metabolic programs. The development of global phosphoproteomic approaches has expanded the understanding of IL-2 signaling further, revealing the diversity of phosphoproteins that may be influenced by IL-2 in T cells. However, it is increasingly clear that within each T cell subset, IL-2 will signal within a framework of other signal transduction networks that together will shape the transcriptional and metabolic programs that determine T cell fate.


Subject(s)
Interleukin-2/metabolism , Signal Transduction , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Animals , Biomarkers , Cell Differentiation/genetics , Cell Differentiation/immunology , Cytokines/metabolism , Humans , Janus Kinases/metabolism , Lymphocyte Activation/immunology , Phosphatidylinositol 3-Kinases/metabolism , STAT5 Transcription Factor/metabolism , T-Lymphocyte Subsets/immunology , T-Lymphocyte Subsets/metabolism
16.
Annu Rev Immunol ; 36: 461-488, 2018 04 26.
Article in English | MEDLINE | ID: mdl-29677474

ABSTRACT

Metabolism drives function, on both an organismal and a cellular level. In T cell biology, metabolic remodeling is intrinsically linked to cellular development, activation, function, differentiation, and survival. After naive T cells are activated, increased demands for metabolic currency in the form of ATP, as well as biomass for cell growth, proliferation, and the production of effector molecules, are met by rewiring cellular metabolism. Consequently, pharmacological strategies are being developed to perturb or enhance selective metabolic processes that are skewed in immune-related pathologies. Here we review the most recent advances describing the metabolic changes that occur during the T cell lifecycle. We discuss how T cell metabolism can have profound effects on health and disease and where it might be a promising target to treat a variety of pathologies.


Subject(s)
Energy Metabolism , Immunity , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Animals , Biomarkers , Cell Differentiation/genetics , Cell Differentiation/immunology , Humans , Immunologic Memory , Immunotherapy , Lymphocyte Activation/genetics , Lymphocyte Activation/immunology , Mitochondria/metabolism , Receptors, Antigen, T-Cell/genetics , Receptors, Antigen, T-Cell/metabolism , Signal Transduction , T-Lymphocyte Subsets/immunology , T-Lymphocyte Subsets/metabolism , T-Lymphocytes/cytology
17.
Annu Rev Immunol ; 36: 813-842, 2018 04 26.
Article in English | MEDLINE | ID: mdl-29677477

ABSTRACT

Given the many cell types and molecular components of the human immune system, along with vast variations across individuals, how should we go about developing causal and predictive explanations of immunity? A central strategy in human studies is to leverage natural variation to find relationships among variables, including DNA variants, epigenetic states, immune phenotypes, clinical descriptors, and others. Here, we focus on how natural variation is used to find patterns, infer principles, and develop predictive models for two areas: (a) immune cell activation-how single-cell profiling boosts our ability to discover immune cell types and states-and (b) antigen presentation and recognition-how models can be generated to predict presentation of antigens on MHC molecules and their detection by T cell receptors. These are two examples of a shift in how we find the drivers and targets of immunity, especially in the human system in the context of health and disease.


Subject(s)
Immune System , Immunity , Animals , Antigen Presentation/immunology , Biomarkers , Disease Susceptibility/immunology , Disease Susceptibility/metabolism , Epitopes/immunology , Genomics/methods , Host-Pathogen Interactions/genetics , Host-Pathogen Interactions/immunology , Humans , Immune System/cytology , Immune System/physiology , Ligands , Major Histocompatibility Complex/genetics , Major Histocompatibility Complex/immunology , Peptides/immunology , Protein Transport , Proteolysis , Receptors, Antigen, T-Cell/metabolism , Signal Transduction , T-Lymphocytes/immunology , T-Lymphocytes/metabolism
18.
Annu Rev Immunol ; 36: 435-459, 2018 04 26.
Article in English | MEDLINE | ID: mdl-29400984

ABSTRACT

The initiation and maintenance of adaptive immunity require multifaceted modes of communication between different types of immune cells, including direct intercellular contact, secreted soluble signaling molecules, and extracellular vesicles (EVs). EVs can be formed as microvesicles directly pinched off from the plasma membrane or as exosomes secreted by multivesicular endosomes. Membrane receptors guide EVs to specific target cells, allowing directional transfer of specific and complex signaling cues. EVs are released by most, if not all, immune cells. Depending on the type and status of their originating cell, EVs may facilitate the initiation, expansion, maintenance, or silencing of adaptive immune responses. This review focusses on EVs from professional antigen-presenting cells, their demonstrated and speculated roles, and their potential for cancer immunotherapy.


Subject(s)
Antigen Presentation/immunology , Antigen-Presenting Cells/immunology , Antigen-Presenting Cells/metabolism , Extracellular Vesicles/metabolism , Animals , B-Lymphocytes/immunology , B-Lymphocytes/metabolism , Biological Transport , Cell-Derived Microparticles/metabolism , Dendritic Cells/immunology , Dendritic Cells/metabolism , Epithelial Cells/metabolism , Exosomes/metabolism , Histocompatibility Antigens/genetics , Histocompatibility Antigens/immunology , Humans , Immune Tolerance , Intestinal Mucosa/immunology , Intestinal Mucosa/metabolism , Macrophages/immunology , Macrophages/metabolism , T-Lymphocytes/immunology , T-Lymphocytes/metabolism
19.
Cell ; 187(9): 2305-2323.e33, 2024 Apr 25.
Article in English | MEDLINE | ID: mdl-38614099

ABSTRACT

Cancer immunotherapy has transformed treatment possibilities, but its effectiveness differs significantly among patients, indicating the presence of alternative pathways for immune evasion. Here, we show that ITPRIPL1 functions as an inhibitory ligand of CD3ε, and its expression inhibits T cells in the tumor microenvironment. The binding of ITPRIPL1 extracellular domain to CD3ε on T cells significantly decreased calcium influx and ZAP70 phosphorylation, impeding initial T cell activation. Treatment with a neutralizing antibody against ITPRIPL1 restrained tumor growth and promoted T cell infiltration in mouse models across various solid tumor types. The antibody targeting canine ITPRIPL1 exhibited notable therapeutic efficacy against naturally occurring tumors in pet clinics. These findings highlight the role of ITPRIPL1 (or CD3L1, CD3ε ligand 1) in impeding T cell activation during the critical "signal one" phase. This discovery positions ITPRIPL1 as a promising therapeutic target against multiple tumor types.


Subject(s)
CD3 Complex , Lymphocyte Activation , T-Lymphocytes , Tumor Escape , Tumor Microenvironment , Animals , CD3 Complex/metabolism , CD3 Complex/immunology , Humans , Mice , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Tumor Microenvironment/immunology , Dogs , Neoplasms/immunology , Cell Line, Tumor , Female , Protein Binding , ZAP-70 Protein-Tyrosine Kinase/metabolism , Antibodies, Neutralizing/immunology , Mice, Inbred C57BL
20.
Annu Rev Immunol ; 33: 539-61, 2015.
Article in English | MEDLINE | ID: mdl-25861978

ABSTRACT

T cells carry out the formidable task of identifying small numbers of foreign antigenic peptides rapidly and specifically against a very noisy environmental background of endogenous self-peptides. Early steps in T cell activation have thus fascinated biologists and are among the best-studied models of cell stimulation. This remarkable process, critical in adaptive immune responses, approaches and even seems to exceed the limitations set by the physical laws ruling molecular behavior. Despite the enormous amount of information concerning the nature of molecules involved in the T cell antigen receptor (TCR) signal transduction network, and the description of the nanoscale organization and real-time analysis of T cell responses, the general principles of information gathering and processing remain incompletely understood. Here we review currently accepted key data on TCR function, discuss the limitations of current research strategies, and suggest a novel model of TCR triggering and a few promising ways of going further into the integration of available data.


Subject(s)
Lymphocyte Activation , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Animals , Humans , Models, Immunological , Receptors, Antigen, T-Cell/metabolism , Signal Transduction
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