Urban particulate matter stimulation of human dendritic cells enhances priming of naive CD8 T lymphocytes. 2018

Paul E Pfeffer, and Tzer R Ho, and Elizabeth H Mann, and Frank J Kelly, and Maria Sehlstedt, and Jamshid Pourazar, and Rosamund E Dove, and Thomas Sandstrom, and Ian S Mudway, and Catherine M Hawrylowicz
MRC and Asthma UK Centre for Allergic Mechanisms of Asthma, King's College London, Guy's Hospital, London, UK.

Epidemiological studies have consistently shown associations between elevated concentrations of urban particulate matter (UPM) air pollution and exacerbations of asthma and chronic obstructive pulmonary disease, which are both associated with viral respiratory infections. The effects of UPM on dendritic cell (DC) -stimulated CD4 T lymphocytes have been investigated previously, but little work has focused on CD8 T-lymphocyte responses despite their importance in anti-viral immunity. To address this, we examined the effects of UPM on DC-stimulated naive CD8 T-cell responses. Expression of the maturation/activation markers CD83, CCR7, CD40 and MHC class I on human myeloid DCs (mDCs) was characterized by flow cytometry after stimulation with UPMin vitro in the presence/absence of granulocyte-macrophage colony-stimulating factor (GM-CSF). The capacity of these mDCs to stimulate naive CD8 T-lymphocyte responses in allogeneic co-culture was then assessed by measuring T-cell cytokine secretion using cytometric bead array, and proliferation and frequency of interferon-γ (IFN-γ)-producing T lymphocytes by flow cytometry. Treatment of mDCs with UPM increased expression of CD83 and CCR7, but not MHC class I. In allogeneic co-cultures, UPM treatment of mDCs enhanced CD8 T-cell proliferation and the frequency of IFN-γ+ cells. The secretion of tumour necrosis factor-α, interleukin-13, Granzyme A and Granzyme B were also increased. GM-CSF alone, and in concert with UPM, enhanced many of these T-cell functions. The PM-induced increase in Granzyme A was confirmed in a human experimental diesel exposure study. These data demonstrate that UPM treatment of mDCs enhances priming of naive CD8 T lymphocytes and increases production of pro-inflammatory cytokines. Such UPM-induced stimulation of CD8 cells may potentiate T-lymphocyte cytotoxic responses upon concurrent airway infection, increasing bystander damage to the airways.

UI MeSH Term Description Entries
D007136 Immunoglobulins Multi-subunit proteins which function in IMMUNITY. They are produced by B LYMPHOCYTES from the IMMUNOGLOBULIN GENES. They are comprised of two heavy (IMMUNOGLOBULIN HEAVY CHAINS) and two light chains (IMMUNOGLOBULIN LIGHT CHAINS) with additional ancillary polypeptide chains depending on their isoforms. The variety of isoforms include monomeric or polymeric forms, and transmembrane forms (B-CELL ANTIGEN RECEPTORS) or secreted forms (ANTIBODIES). They are divided by the amino acid sequence of their heavy chains into five classes (IMMUNOGLOBULIN A; IMMUNOGLOBULIN D; IMMUNOGLOBULIN E; IMMUNOGLOBULIN G; IMMUNOGLOBULIN M) and various subclasses. Globulins, Immune,Immune Globulin,Immune Globulins,Immunoglobulin,Globulin, Immune
D008562 Membrane Glycoproteins Glycoproteins found on the membrane or surface of cells. Cell Surface Glycoproteins,Surface Glycoproteins,Cell Surface Glycoprotein,Membrane Glycoprotein,Surface Glycoprotein,Glycoprotein, Cell Surface,Glycoprotein, Membrane,Glycoprotein, Surface,Glycoproteins, Cell Surface,Glycoproteins, Membrane,Glycoproteins, Surface,Surface Glycoprotein, Cell,Surface Glycoproteins, Cell
D002478 Cells, Cultured Cells propagated in vitro in special media conducive to their growth. Cultured cells are used to study developmental, morphologic, metabolic, physiologic, and genetic processes, among others. Cultured Cells,Cell, Cultured,Cultured Cell
D003713 Dendritic Cells Specialized cells of the hematopoietic system that have branch-like extensions. They are found throughout the lymphatic system, and in non-lymphoid tissues such as SKIN and the epithelia of the intestinal, respiratory, and reproductive tracts. They trap and process ANTIGENS, and present them to T-CELLS, thereby stimulating CELL-MEDIATED IMMUNITY. They are different from the non-hematopoietic FOLLICULAR DENDRITIC CELLS, which have a similar morphology and immune system function, but with respect to humoral immunity (ANTIBODY PRODUCTION). Dendritic Cells, Interdigitating,Interdigitating Cells,Plasmacytoid Dendritic Cells,Veiled Cells,Dendritic Cells, Interstitial,Dendritic Cells, Plasmacytoid,Interdigitating Dendritic Cells,Interstitial Dendritic Cells,Cell, Dendritic,Cell, Interdigitating,Cell, Interdigitating Dendritic,Cell, Interstitial Dendritic,Cell, Plasmacytoid Dendritic,Cell, Veiled,Cells, Dendritic,Cells, Interdigitating,Cells, Interdigitating Dendritic,Cells, Interstitial Dendritic,Cells, Plasmacytoid Dendritic,Cells, Veiled,Dendritic Cell,Dendritic Cell, Interdigitating,Dendritic Cell, Interstitial,Dendritic Cell, Plasmacytoid,Interdigitating Cell,Interdigitating Dendritic Cell,Interstitial Dendritic Cell,Plasmacytoid Dendritic Cell,Veiled Cell
D006801 Humans Members of the species Homo sapiens. Homo sapiens,Man (Taxonomy),Human,Man, Modern,Modern Man
D000097802 CD83 Antigen A glycoprotein member of the immunoglobulin superfamily that is primarily expressed on the surface of DENDRITIC CELLS. It is believed to play a role in ANTIGEN PRESENTATION and CELL-TO-CELL INTERACTION following LYMPHOCYTE ACTIVATION. Antigen, CD83,Cell Surface Protein HB15
D015703 Antigens, CD Differentiation antigens residing on mammalian leukocytes. CD stands for cluster of differentiation, which refers to groups of monoclonal antibodies that show similar reactivity with certain subpopulations of antigens of a particular lineage or differentiation stage. The subpopulations of antigens are also known by the same CD designation. CD Antigen,Cluster of Differentiation Antigen,Cluster of Differentiation Marker,Differentiation Antigens, Leukocyte, Human,Leukocyte Differentiation Antigens, Human,Cluster of Differentiation Antigens,Cluster of Differentiation Markers,Antigen Cluster, Differentiation,Antigen, CD,CD Antigens,Differentiation Antigen Cluster,Differentiation Marker Cluster,Marker Cluster, Differentiation
D049109 Cell Proliferation All of the processes involved in increasing CELL NUMBER including CELL DIVISION. Cell Growth in Number,Cellular Proliferation,Cell Multiplication,Cell Number Growth,Growth, Cell Number,Multiplication, Cell,Number Growth, Cell,Proliferation, Cell,Proliferation, Cellular
D052638 Particulate Matter Particles of any solid substance, generally under 30 microns in size, often noted as PM30. There is special concern with PM1 which can get down to PULMONARY ALVEOLI and induce MACROPHAGE ACTIVATION and PHAGOCYTOSIS leading to FOREIGN BODY REACTION and LUNG DISEASES. Ultrafine Fiber,Ultrafine Fibers,Ultrafine Particle,Ultrafine Particles,Ultrafine Particulate Matter,Air Pollutants, Particulate,Airborne Particulate Matter,Ambient Particulate Matter,Fiber, Ultrafine,Particle, Ultrafine,Particles, Ultrafine,Particulate Air Pollutants,Particulate Matter, Airborne,Particulate Matter, Ambient,Particulate Matter, Ultrafine
D054400 Receptors, CCR7 CCR receptors with specificity for CHEMOKINE CCL19 and CHEMOKINE CCL21. They are expressed at high levels in T-LYMPHOCYTES; B-LYMPHOCYTES; and DENDRITIC CELLS. Antigens, CD197,CC Chemokine Receptor 7,CCR7 Receptors,CD197 Antigens,CC Chemokine Receptor CCR7,CD197 Antigen,Antigen, CD197

Related Publications

Paul E Pfeffer, and Tzer R Ho, and Elizabeth H Mann, and Frank J Kelly, and Maria Sehlstedt, and Jamshid Pourazar, and Rosamund E Dove, and Thomas Sandstrom, and Ian S Mudway, and Catherine M Hawrylowicz
January 1995, Advances in experimental medicine and biology,
Paul E Pfeffer, and Tzer R Ho, and Elizabeth H Mann, and Frank J Kelly, and Maria Sehlstedt, and Jamshid Pourazar, and Rosamund E Dove, and Thomas Sandstrom, and Ian S Mudway, and Catherine M Hawrylowicz
February 2014, American journal of respiratory cell and molecular biology,
Paul E Pfeffer, and Tzer R Ho, and Elizabeth H Mann, and Frank J Kelly, and Maria Sehlstedt, and Jamshid Pourazar, and Rosamund E Dove, and Thomas Sandstrom, and Ian S Mudway, and Catherine M Hawrylowicz
July 2013, Immunology,
Paul E Pfeffer, and Tzer R Ho, and Elizabeth H Mann, and Frank J Kelly, and Maria Sehlstedt, and Jamshid Pourazar, and Rosamund E Dove, and Thomas Sandstrom, and Ian S Mudway, and Catherine M Hawrylowicz
August 2007, The Journal of experimental medicine,
Paul E Pfeffer, and Tzer R Ho, and Elizabeth H Mann, and Frank J Kelly, and Maria Sehlstedt, and Jamshid Pourazar, and Rosamund E Dove, and Thomas Sandstrom, and Ian S Mudway, and Catherine M Hawrylowicz
October 2007, Nature immunology,
Paul E Pfeffer, and Tzer R Ho, and Elizabeth H Mann, and Frank J Kelly, and Maria Sehlstedt, and Jamshid Pourazar, and Rosamund E Dove, and Thomas Sandstrom, and Ian S Mudway, and Catherine M Hawrylowicz
October 2002, International immunology,
Paul E Pfeffer, and Tzer R Ho, and Elizabeth H Mann, and Frank J Kelly, and Maria Sehlstedt, and Jamshid Pourazar, and Rosamund E Dove, and Thomas Sandstrom, and Ian S Mudway, and Catherine M Hawrylowicz
January 2009, Critical reviews in immunology,
Paul E Pfeffer, and Tzer R Ho, and Elizabeth H Mann, and Frank J Kelly, and Maria Sehlstedt, and Jamshid Pourazar, and Rosamund E Dove, and Thomas Sandstrom, and Ian S Mudway, and Catherine M Hawrylowicz
December 2000, The Journal of experimental medicine,
Paul E Pfeffer, and Tzer R Ho, and Elizabeth H Mann, and Frank J Kelly, and Maria Sehlstedt, and Jamshid Pourazar, and Rosamund E Dove, and Thomas Sandstrom, and Ian S Mudway, and Catherine M Hawrylowicz
January 2013, European journal of immunology,
Paul E Pfeffer, and Tzer R Ho, and Elizabeth H Mann, and Frank J Kelly, and Maria Sehlstedt, and Jamshid Pourazar, and Rosamund E Dove, and Thomas Sandstrom, and Ian S Mudway, and Catherine M Hawrylowicz
June 2011, Blood,
Copied contents to your clipboard!