Literature DB >> 10502538

Lupus-prone mice as models to study xenobiotic-induced acceleration of systemic autoimmunity.

K M Pollard1, D L Pearson, P Hultman, B Hildebrandt, D H Kono.   

Abstract

The linkage between xenobiotic exposures and autoimmune diseases remains to be clearly defined. However, recent studies have raised the possibility that both genetic and environmental factors act synergistically at several stages or checkpoints to influence disease pathogenesis in susceptible populations. These observations predict that individuals susceptible to spontaneous autoimmunity should be more susceptible following xenobiotic exposure by virtue of the presence of predisposing background genes. To test this possibility, mouse strains with differing genetic susceptibility to murine lupus were examined for acceleration of autoimmune features characteristic of spontaneous systemic autoimmune disease following exposure to the immunostimulatory metals nickel and mercury. Although NiCl(2) exposure did not exacerbate autoimmunity, HgCl(2) significantly accelerated systemic disease in a strain-dependent manner. Mercury-exposed (NZB X NZW)F1 mice had accelerated lymphoid hyperplasia, hypergammaglobulinemia, autoantibodies, and immune complex deposits. Mercury also exacerbated immunopathologic manifestations in MRL+/+ and MR -lpr mice. However, there was less disease acceleration in lpr mice compared with MRL+/+ mice, likely due to the fact that environmental factors are less critical for disease induction when there is strong genetic susceptibility. Non-major histocompatibility complex genes also contributed to mercury-exacerbated disease, as the nonautoimmune AKR mice, which are H-2 identical with the MRL, showed less immunopathology than either the MRL/lpr or MRL+/+ strains. This study demonstrates that genetic susceptibility to spontaneous systemic autoimmunity can be a predisposing factor for HgCl(2)-induced exacerbation of autoimmunity. Such genetic predisposition may have to be considered when assessing the immunotoxicity of xenobiotics. Additional comparative studies using autoimmune-prone and nonautoimmune mice strains with different genetic backgrounds will help determine the contribution that xenobiotic exposure makes in rendering sensitive populations susceptible to autoimmune diseases.

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Year:  1999        PMID: 10502538      PMCID: PMC1566253          DOI: 10.1289/ehp.99107s5729

Source DB:  PubMed          Journal:  Environ Health Perspect        ISSN: 0091-6765            Impact factor:   9.031


  32 in total

Review 1.  Functional subsets of allergen-reactive human CD4+ T cells.

Authors:  M L Kapsenberg; E A Wierenga; J D Bos; H M Jansen
Journal:  Immunol Today       Date:  1991-11

2.  Isotype-restricted hyperimmunity in a murine model of the toxic oil syndrome.

Authors:  S A Bell; M V Hobbs; R L Rubin
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3.  Oral induction of tolerance to nickel sensitization in mice.

Authors:  I M Van Hoogstraten; C Boos; D Boden; M E Von Blomberg; R J Scheper; G Kraal
Journal:  J Invest Dermatol       Date:  1993-07       Impact factor: 8.551

4.  Autoantibodies associated with lupus induced by diverse drugs target a similar epitope in the (H2A-H2B)-DNA complex.

Authors:  R L Rubin; S A Bell; R W Burlingame
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5.  Genesis and evolution of antichromatin autoantibodies in murine lupus implicates T-dependent immunization with self antigen.

Authors:  R W Burlingame; R L Rubin; R S Balderas; A N Theofilopoulos
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6.  The central role of chromatin in autoimmune responses to histones and DNA in systemic lupus erythematosus.

Authors:  R W Burlingame; M L Boey; G Starkebaum; R L Rubin
Journal:  J Clin Invest       Date:  1994-07       Impact factor: 14.808

7.  Lupus susceptibility loci in New Zealand mice.

Authors:  D H Kono; R W Burlingame; D G Owens; A Kuramochi; R S Balderas; D Balomenos; A N Theofilopoulos
Journal:  Proc Natl Acad Sci U S A       Date:  1994-10-11       Impact factor: 11.205

8.  Murine susceptibility to mercury. I. Autoantibody profiles and systemic immune deposits in inbred, congenic, and intra-H-2 recombinant strains.

Authors:  P Hultman; L J Bell; S Eneström; K M Pollard
Journal:  Clin Immunol Immunopathol       Date:  1992-11

9.  Murine susceptibility to mercury. II. autoantibody profiles and renal immune deposits in hybrid, backcross, and H-2d congenic mice.

Authors:  P Hultman; L J Bell; S Eneström; K M Pollard
Journal:  Clin Immunol Immunopathol       Date:  1993-07

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Review 7.  Use of genetic knockouts to modulate disease expression in a murine model of lupus, MRL/lpr mice.

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