Literature DB >> 16785533

Signal regulatory protein molecules are differentially expressed by CD8- dendritic cells.

Mireille H Lahoud1, Anna I Proietto, Kate H Gartlan, Susie Kitsoulis, Joan Curtis, James Wettenhall, Mariam Sofi, Carmel Daunt, Meredith O'keeffe, Irina Caminschi, Keith Satterley, Alexandra Rizzitelli, Petra Schnorrer, Atsushi Hinohara, Yasunori Yamaguchi, Li Wu, Gordon Smyth, Emanuela Handman, Ken Shortman, Mark D Wright.   

Abstract

A normalized subtracted gene expression library was generated from freshly isolated mouse dendritic cells (DC) of all subtypes, then used to construct cDNA microarrays. The gene expression profiles of the three splenic conventional DC (cDC) subsets were compared by microarray hybridization and two genes encoding signal regulatory protein beta (Sirpbeta1 and Sirpbeta4) molecules were identified as differentially expressed in CD8(-) cDC. Genomic sequence analysis revealed a third Sirpbeta member localized in the same gene cluster. These Sirpbeta genes encode cell surface molecules containing extracellular Ig domains and short intracytoplasmic domains that have a charged amino acid in the transmembrane region which can potentially interact with ITAM-bearing molecules to mediate signaling. Indeed, we demonstrated interactions between Sirpbeta1 and beta2 with the ITAM-bearing signaling molecule Dap12. Real-time PCR analysis showed that all three Sirpbeta genes were expressed by CD8(-) cDC, but not by CD8(+) cDC or plasmacytoid pre-DC. The related Sirpalpha gene showed a similar expression profile on cDC subtypes but was also expressed by plasmacytoid pre-DC. The differential expression of Sirpalpha and Sirpbeta1 molecules on DC was confirmed by staining with mAbs, including a new mAb recognizing Sirpbeta1. Cross-linking of Sirpbeta1 on DC resulted in a reduction in phagocytosis of Leishmania major parasites, but did not affect phagocytosis of latex beads, perhaps indicating that the regulation of phagocytosis by Sirpbeta1 is a ligand-dependent interaction. Thus, we postulate that the differential expression of these molecules may confer the ability to regulate the phagocytosis of particular ligands to CD8(-) cDC.

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Year:  2006        PMID: 16785533     DOI: 10.4049/jimmunol.177.1.372

Source DB:  PubMed          Journal:  J Immunol        ISSN: 0022-1767            Impact factor:   5.422


  47 in total

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2.  Regeneration of dendritic cells in aged mice.

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Journal:  Cell Mol Immunol       Date:  2010-02-01       Impact factor: 11.530

Review 3.  The Importance of Dendritic Cells in Maintaining Immune Tolerance.

Authors:  Cindy Audiger; M Jubayer Rahman; Tae Jin Yun; Kristin V Tarbell; Sylvie Lesage
Journal:  J Immunol       Date:  2017-03-15       Impact factor: 5.422

4.  Dendritic cells in the thymus contribute to T-regulatory cell induction.

Authors:  Anna I Proietto; Serani van Dommelen; Penghui Zhou; Alexandra Rizzitelli; Angela D'Amico; Raymond J Steptoe; Shalin H Naik; Mireille H Lahoud; Yang Liu; Pan Zheng; Ken Shortman; Li Wu
Journal:  Proc Natl Acad Sci U S A       Date:  2008-12-10       Impact factor: 11.205

Review 5.  Antigen presentation in the thymus for positive selection and central tolerance induction.

Authors:  Ludger Klein; Maria Hinterberger; Gerald Wirnsberger; Bruno Kyewski
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6.  Regulatory T cell differentiation of thymocytes does not require a dedicated antigen-presenting cell but is under T cell-intrinsic developmental control.

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Journal:  Proc Natl Acad Sci U S A       Date:  2009-06-10       Impact factor: 11.205

7.  IL-2 protects lupus-prone mice from multiple end-organ damage by limiting CD4-CD8- IL-17-producing T cells.

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Journal:  J Immunol       Date:  2014-07-25       Impact factor: 5.422

8.  GM-CSF-induced CD11c+CD8a--dendritic cells facilitate Foxp3+ and IL-10+ regulatory T cell expansion resulting in suppression of autoimmune thyroiditis.

Authors:  Balaji B Ganesh; Donald M Cheatem; Jian Rong Sheng; Chenthamarakshan Vasu; Bellur S Prabhakar
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9.  The dendritic cell subtype-restricted C-type lectin Clec9A is a target for vaccine enhancement.

Authors:  Irina Caminschi; Anna I Proietto; Fatma Ahmet; Susie Kitsoulis; Joo Shin Teh; Jennifer C Y Lo; Alexandra Rizzitelli; Li Wu; David Vremec; Serani L H van Dommelen; Ian K Campbell; Eugene Maraskovsky; Hal Braley; Gayle M Davey; Patricia Mottram; Nicholas van de Velde; Kent Jensen; Andrew M Lew; Mark D Wright; William R Heath; Ken Shortman; Mireille H Lahoud
Journal:  Blood       Date:  2008-07-30       Impact factor: 22.113

10.  Display of Native Antigen on cDC1 That Have Spatial Access to Both T and B Cells Underlies Efficient Humoral Vaccination.

Authors:  Yu Kato; Thiago M Steiner; Hae-Young Park; Rohan O Hitchcock; Ali Zaid; Jyh Liang Hor; Sapna Devi; Gayle M Davey; David Vremec; Kirsteen M Tullett; Peck S Tan; Fatma Ahmet; Scott N Mueller; Sylvie Alonso; David M Tarlinton; Hidde L Ploegh; Tsuneyasu Kaisho; Lynette Beattie; Jonathan H Manton; Daniel Fernandez-Ruiz; Ken Shortman; Mireille H Lahoud; William R Heath; Irina Caminschi
Journal:  J Immunol       Date:  2020-08-24       Impact factor: 5.422

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