Literature DB >> 22058420

Pivotal advance: peritoneal cavity B-1 B cells have phagocytic and microbicidal capacities and present phagocytosed antigen to CD4+ T cells.

David Parra1, Aja M Rieger, Jun Li, Yong-An Zhang, Louise M Randall, Christopher A Hunter, Daniel R Barreda, J Oriol Sunyer.   

Abstract

Breaking the long-held paradigm that primary B cells are not phagocytic, several studies have demonstrated recently that B cells from fish, amphibians, and reptilians have a significant phagocytic capacity. Whether such capacity has remained conserved in certain mammalian B cell subsets is presently an enigma. Here, we report a previously unrecognized ability of PerC B-1a and B-1b lymphocytes to phagocytose latex beads and bacteria. In contrast, B-2 lymphocytes had an almost negligible ability to internalize these particles. Upon phagocytosis, B-1a and B-1b cells were able to mature their phagosomes into phagolysosomes and displayed the ability to kill internalized bacteria. Importantly, B-1a and B-1b cells effectively present antigen recovered from phagocytosed particles to CD4(+) T cells. However, these cells showed a much lower competence to present soluble antigen or antigen from large, noninternalized particles. B-1 B cells presented particulate and soluble antigen to CD4(+) T cells more efficiently than macrophages, whereas DCs were the most potent APCs. The novel phagocytic and microbicidal abilities identified in B-1 B lymphocytes strengthen the innate nature that has long been attributed to these cells. In the context of adaptive immunity, we show that these innate immune processes are relevant, as they enable B-1 B cells to present phagocytosable particulate antigen. These capacities position these cells at the crossroads that link innate with adaptive immune processes. In a broader context, these newly identified capacities of B-1 B cells further support the previously recognized functional, developmental, and evolutionary relationships between these cells and macrophages.

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Year:  2011        PMID: 22058420      PMCID: PMC3317272          DOI: 10.1189/jlb.0711372

Source DB:  PubMed          Journal:  J Leukoc Biol        ISSN: 0741-5400            Impact factor:   4.962


  47 in total

1.  Macrophage activation differentially modulates particle binding, phagocytosis and downstream antimicrobial mechanisms.

Authors:  Aja M Rieger; Brian E Hall; Daniel R Barreda
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2.  Differential lysosomal proteolysis in antigen-presenting cells determines antigen fate.

Authors:  Lélia Delamarre; Margit Pack; Henry Chang; Ira Mellman; E Sergio Trombetta
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3.  Encapsulation of proteins and peptides into biodegradable poly(D,L-lactide-co-glycolide) microspheres prolongs and enhances antigen presentation by human dendritic cells.

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Journal:  Vaccine       Date:  2005-10-25       Impact factor: 3.641

4.  Defective TCR expression in transgenic mice constructed using cDNA-based alpha- and beta-chain genes under the control of heterologous regulatory elements.

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5.  IgT, a primitive immunoglobulin class specialized in mucosal immunity.

Authors:  Yong-An Zhang; Irene Salinas; Jun Li; David Parra; Sarah Bjork; Zhen Xu; Scott E LaPatra; Jerri Bartholomew; J Oriol Sunyer
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6.  Bipotential B-macrophage progenitors are present in adult bone marrow.

Authors:  E Montecino-Rodriguez; H Leathers; K Dorshkind
Journal:  Nat Immunol       Date:  2001-01       Impact factor: 25.606

7.  Human plasmacytoid dendritic cells phagocytose, process, and present exogenous particulate antigen.

Authors:  Jurjen Tel; Annechien J A Lambeck; Luis J Cruz; Paul J Tacken; I Jolanda M de Vries; Carl G Figdor
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9.  Macrophages pulsed with Streptococcus pneumoniae elicit a T cell-dependent antibody response upon transfer into naive mice.

Authors:  Sam Vasilevsky; Jesus Colino; Roman Puliaev; David H Canaday; Clifford M Snapper
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10.  Accumulation of splenic B1a cells with potent antigen-presenting capability in NZM2410 lupus-prone mice.

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  81 in total

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Review 2.  Perspectives on antigen presenting cells in zebrafish.

Authors:  Kanako L Lewis; Natasha Del Cid; David Traver
Journal:  Dev Comp Immunol       Date:  2014-03-29       Impact factor: 3.636

3.  An evolutionarily conserved program of B-cell development and activation in zebrafish.

Authors:  Dawne M Page; Valerie Wittamer; Julien Y Bertrand; Kanako L Lewis; David N Pratt; Noemi Delgado; Sarah E Schale; Caitlyn McGue; Bradley H Jacobsen; Alyssa Doty; Yvonne Pao; Hongbo Yang; Neil C Chi; Brad G Magor; David Traver
Journal:  Blood       Date:  2013-07-16       Impact factor: 22.113

Review 4.  Innate B Cells: the Archetype of Protective Immune Cells.

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Journal:  Clin Rev Allergy Immunol       Date:  2020-02       Impact factor: 8.667

5.  Natural and induced B-1 cell immunity to infections raises questions of nature versus nurture.

Authors:  Nicole Baumgarth; Elizabeth E Waffarn; Trang T T Nguyen
Journal:  Ann N Y Acad Sci       Date:  2015-06-09       Impact factor: 5.691

6.  Coxiella burnetii Avirulent Nine Mile Phase II Induces Caspase-1-Dependent Pyroptosis in Murine Peritoneal B1a B Cells.

Authors:  Laura Schoenlaub; Rama Cherla; Yan Zhang; Guoquan Zhang
Journal:  Infect Immun       Date:  2016-11-18       Impact factor: 3.441

Review 7.  Evolution of B cell immunity.

Authors:  David Parra; Fumio Takizawa; J Oriol Sunyer
Journal:  Annu Rev Anim Biosci       Date:  2013-01       Impact factor: 8.923

8.  Rescheduling the process of nanoparticle removal used for water mercury remediation can increase the risk to aquatic organism: evidence of innate immune functions modulation in European eel (Anguilla anguilla L.).

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9.  Skewed B cell differentiation affects lymphoid organogenesis but not T cell-mediated autoimmunity.

Authors:  E Colombo; P Tentorio; S Musio; K Rajewsky; R Pedotti; S Casola; C Farina
Journal:  Clin Exp Immunol       Date:  2014-04       Impact factor: 4.330

Review 10.  A cold-blooded view of adaptive immunity.

Authors:  Martin F Flajnik
Journal:  Nat Rev Immunol       Date:  2018-07       Impact factor: 53.106

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