Literature DB >> 16493085

Contribution of NZB autoimmunity 2 to Y-linked autoimmune acceleration-induced monocytosis in association with murine systemic lupus.

Shuichi Kikuchi1, Marie-Laure Santiago-Raber, Hirofumi Amano, Eri Amano, Liliane Fossati-Jimack, Thomas Moll, Brian L Kotzin, Shozo Izui.   

Abstract

The accelerated development of systemic lupus erythematosus (SLE) in BXSB male mice is associated with the presence of the Y-linked autoimmune acceleration (Yaa) mutation, which induces an age-dependent monocytosis. Using a cohort of C57BL/6 (B6) x (NZB x B6)F1 backcross male mice bearing the Yaa mutation, we defined the pathogenic role and genetic basis for Yaa-associated monocytosis. We observed a remarkable correlation of monocytosis with autoantibody production and subsequent development of lethal lupus nephritis, indicating that monocytosis is an additional useful indicator for severe SLE. In addition, we identified an NZB-derived locus on chromosome 1 predisposing to the development of monocytosis, which peaked at Fcgr2b encoding FcgammaRIIB and directly overlapped with the previously identified NZB autoimmunity 2 (Nba2) locus. The contribution of Nba2 to monocytosis was confirmed by the analysis of Yaa-bearing B6 mice congenic for the NZB-Nba2 locus. Finally, we observed a very low-level expression of FcgammaRIIB on macrophages bearing the NZB-type Fcgr2b allele, compared with those bearing the B6-type allele, and the development of monocytosis in FcgammaRIIB haploinsufficient B6 mice carrying the Yaa mutation. These data suggest that the Nba2 locus may play a supplementary role in the pathogenesis of SLE by promoting the development of monocytosis and the activation of effector cells bearing stimulatory FcgammaR, in addition to its implication in the dysregulated activation of autoreactive B cells.

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Year:  2006        PMID: 16493085     DOI: 10.4049/jimmunol.176.5.3240

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


  11 in total

1.  Distinct roles of CSF-1 isoforms in lupus nephritis.

Authors:  Julia Menke; Yasunori Iwata; Whitney A Rabacal; Ranu Basu; E Richard Stanley; Vicki R Kelley
Journal:  J Am Soc Nephrol       Date:  2011-09-01       Impact factor: 10.121

2.  Aim2 deficiency in mice suppresses the expression of the inhibitory Fcgamma receptor (FcgammaRIIB) through the induction of the IFN-inducible p202, a lupus susceptibility protein.

Authors:  Ravichandran Panchanathan; Hui Shen; Xin Duan; Vijay A K Rathinam; Loren D Erickson; Katherine A Fitzgerald; Divaker Choubey
Journal:  J Immunol       Date:  2011-05-06       Impact factor: 5.422

3.  Toll-like receptor 8 deletion accelerates autoimmunity in a mouse model of lupus through a Toll-like receptor 7-dependent mechanism.

Authors:  Ngoc Lan Tran; Céline Manzin-Lorenzi; Marie-Laure Santiago-Raber
Journal:  Immunology       Date:  2015-05       Impact factor: 7.397

4.  IFN-gamma AU-rich element removal promotes chronic IFN-gamma expression and autoimmunity in mice.

Authors:  Deborah L Hodge; Cyril Berthet; Vincenzo Coppola; Wolfgang Kastenmüller; Matthew D Buschman; Paul M Schaughency; Hidekazu Shirota; Anthony J Scarzello; Jeff J Subleski; Miriam R Anver; John R Ortaldo; Fanching Lin; Della A Reynolds; Michael E Sanford; Philipp Kaldis; Lino Tessarollo; Dennis M Klinman; Howard A Young
Journal:  J Autoimmun       Date:  2014-02-28       Impact factor: 7.094

5.  Genetic contributions to the autoantibody profile in a rabbit model of Systemic Lupus Erythematosus (SLE).

Authors:  Nandakumar Puliyath; Satyajit Ray; Jacqueline Milton; Rose G Mage
Journal:  Vet Immunol Immunopathol       Date:  2008-07-03       Impact factor: 2.046

6.  Carbon monoxide exposure improves immune function in lupus-prone mice.

Authors:  Juan P Mackern-Oberti; Carolina Llanos; Leandro J Carreño; Sebastián A Riquelme; Sergio H Jacobelli; Ignacio Anegon; Alexis M Kalergis
Journal:  Immunology       Date:  2013-09       Impact factor: 7.397

7.  Selective APRIL blockade delays systemic lupus erythematosus in mouse.

Authors:  Bertrand Huard; Ngoc Lan Tran; Mahdia Benkhoucha; Céline Manzin-Lorenzi; Marie-Laure Santiago-Raber
Journal:  PLoS One       Date:  2012-02-15       Impact factor: 3.240

8.  Anti-CD11b antibody treatment suppresses the osteoclast generation, inflammatory cell infiltration, and autoantibody production in arthritis-prone FcγRIIB-deficient mice.

Authors:  Mareki Ohtsuji; Qingshun Lin; Hideki Okazaki; Kazuko Takahashi; Hirofumi Amano; Hideo Yagita; Hiroyuki Nishimura; Sachiko Hirose
Journal:  Arthritis Res Ther       Date:  2018-02-08       Impact factor: 5.156

Review 9.  Monocyte subsets involved in the development of systemic lupus erythematosus and rheumatoid arthritis.

Authors:  Sachiko Hirose; Qingshun Lin; Mareki Ohtsuji; Hiroyuki Nishimura; J Sjef Verbeek
Journal:  Int Immunol       Date:  2019-10-16       Impact factor: 5.071

10.  Mesangial cells of lupus-prone mice are sensitive to chemokine production.

Authors:  Shuk-Man Ka; Chao-Wen Cheng; Hao-Ai Shui; Wen-Mein Wu; Deh-Ming Chang; Yu-Chu Lin; Ann Chen
Journal:  Arthritis Res Ther       Date:  2007       Impact factor: 5.156

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