| Literature DB >> 34996462 |
Lisa M F Janssen1,2, Manosij Ghosh1,2, Frauke Lemaire1, K Michael Pollard3, Peter H M Hoet4,5.
Abstract
BACKGROUND: Autoimmunity can result from the interplay between genetic background and effects of environmental and/or occupational exposure to hazardous materials. Several compounds, including silica dust, have been linked with systemic autoimmunity and systemic autoimmune diseases, based on epidemiological evidence. For asbestos, a strong link with systemic autoimmune diseases does not yet exist, however, several studies have documented features of autoimmunity following asbestos exposure. Even so, human studies are limited in their ability to identify and examine isolated exposures, making it difficult to demonstrate causation or to assess pathogenic mechanisms. Therefore, this systematic review examines the existing animal evidence regarding autoimmunity and exposure to silicates (silica and asbestos).Entities:
Keywords: Asbestos; Autoimmunity; Environmental exposure; Immune-mediated diseases; Mice; Occupational exposure; Rat; Rodents; Silica; Systemic autoimmunea diseases
Mesh:
Substances:
Year: 2022 PMID: 34996462 PMCID: PMC8739508 DOI: 10.1186/s12989-021-00439-6
Source DB: PubMed Journal: Part Fibre Toxicol ISSN: 1743-8977 Impact factor: 9.112
The PECO (population, exposure, comparator, outcome)
| Variable | Description |
|---|---|
| Population | Experimental rodents |
| Exposure | Any administered dose of the selected compounds (silica dust (amorphous or crystalline) or asbestos)) as singular compounds |
| Comparator | Exposure to vehicle-only or untreated control |
| Outcome | Systemic autoimmune diseases: systemic sclerosis, systemic lupus erythematosus, rheumatoid arthritis, Sjögren’s syndrome, antineutrophil cytoplasmic antibody (ANCA)-associated vasculitis, autoimmune myositis Systemic autoimmunity features: kidney pathology/glomerulonephritis, lung pathology, autoantibodies, changes in serum immunoglobulins, changes in serum cytokines, proteinuria, skin involvement, joint involvement |
Bibliographical information of included studies
| First and last author | Year | Title | PubMed ID | References | |
|---|---|---|---|---|---|
| Asbestos | Blake, D. J. and Pfau, J. C | 2008 | Autoantibodies from mice exposed to Libby amphibole asbestos bind SSA/Ro52-enriched apoptotic blebs of murine macrophages | 18295955 | [ |
| Asbestos | Pfau, J. C. and Blake, D. J | 2008 | Asbestos-induced autoimmunity in C57Bl/6 mice | 18569382 | [ |
| Asbestos | Pfau, J. C. and Sentissi, J. J | 2011 | Alteration of fibroblast phenotype by asbestos-induced autoantibodies | 21457077 | [ |
| Asbestos | Salazar, K. D. and Luebke, R. W | 2012 | Effects of Libby amphibole asbestos exposure on two models of arthritis in the Lewis rat | 22480172 | [ |
| Asbestos | Salazar, K. D. and Luebke, R. W | 2013 | Evaluation of anti-nuclear antibodies and kidney pathology in Lewis rats following exposure to Libby amphibole asbestos | 23256773 | [ |
| Asbestos | Ferro, A. and Pfau, J. C | 2014 | Amphibole, but not chrysotile, asbestos induces anti-nuclear autoantibodies and IL-17 in C57BL/6 mice | 24164284 | [ |
| Asbestos | Pfau, J. C. and Marcum, R | 2014 | Activation and trafficking of peritoneal B1a B-cells in response to amphibole asbestos | 23746315 | [ |
| Asbestos | Zebedeo, C. N. and Pfau, J. C | 2014 | Erionite induces production of autoantibodies and IL-17 in C57BL/6 mice | 24518925 | [ |
| Asbestos | Gilmer, J. and Pfau, J. C | 2016 | Libby amphibole-induced mesothelial cell autoantibodies promote collagen deposition in mice | 27106292 | [ |
| Asbestos | Pfau, J. C. and Keil, D. E | 2017 | Comparative health effects in mice of Libby amphibole asbestos and a fibrous amphibole from Arizona | 28870655 | [ |
| Asbestos | Christofidou-Solomidou, M. and Pfau, J. C | 2019 | Synthetic secoisolariciresinol diglucoside (LGM2605)inhibits Libby amphibole fiber-induced acute inflammation in mice | 31022494 | [ |
| Silica | Brown, J. M. and Holian, A | 2003 | Silica accelerated systemic autoimmune disease in lupus-prone New Zealand mixed mice | 12605693 | [ |
| Silica | Ezendam, J. and Pieters, R | 2003 | Immunomodulatory effects of tetrachlorobenzoquinone, a reactive metabolite of hexachlorobenzene | 12807351 | [ |
| Silica | Brown, J. M. and Holian, A | 2004 | Immunoglobulin and Lymphocyte Responses Following Silica Exposure in New Zealand Mixed Mice | 15204774 | [ |
| Silica | Pfau, J. C. and Holian, A | 2004 | Silica-exposed mice generate autoantibodies to apoptotic cells | 14751672 | [ |
| Silica | Brown, J. M. and Holian, A | 2005 | Effects of rottlerin on silica-exacerbated systemic autoimmune disease in New Zealand mixed mice | 16040631 | [ |
| Silica | Al-Mogairen, S. M. and Gad El Rab, M. O | 2009 | Induction of autoimmunity in Brown Norway rats by oral and parenteral administration of sodium silicate | 19318393 | [ |
| Silica | Al-Mogairen, S. M | 2011 | Role of sodium silicate in induction of scleroderma-related autoantibodies in brown Norway rats through oral and subcutaneous administration | 20049452 | [ |
| Silica | Wilfong, E. R. and Chapman, G. D | 2011 | The acute and long-term effects of middle east sand particles on the rat airway following a single intratracheal instillation | 21899408 | [ |
| Silica | Chen, Y. and Chen, J | 2013 | Neutralization of interleukin-17A delays progression of silica-induced lung inflammation and fibrosis in C57BL/6 mice | 24291675 | [ |
| Silica | Bates, M. A. and Pestka, J. J | 2015 | Silica triggers inflammation and ectopic lymphoid neogenesis in the lungs in parallel with accelerated onset of systemic autoimmunity and glomerulonephritis in the lupus-prone NZBWF1 mouse | 25978333 | [ |
| Silica | Bates, M. A. and Pestka, J. J | 2016 | Silica-triggered autoimmunity in lupus-prone mice blocked by docosahexaenoic acid consumption | 27513935 | [ |
| Silica | Engelmann, R. and Müller-Hilke, B | 2017 | Experimental silicosis does not aggravate collagen-induced arthritis in mice | 28285600 | [ |
| Silica | Bates, M. A. and Pestka, J. J | 2018 | Dietary docosahexaenoic acid prevents silica-induced development of pulmonary ectopic germinal centers and glomerulonephritis in the lupus-prone NZBWF1 mouse | 30258439 | [ |
| Silica | Mayeux, J. M. and Pollard, K. M | 2018 | Silicosis and Silica-induced autoimmunity in the diversity outbred mouse | 29755467 | [ |
| Silica | Bates, M. A. and Pestka, J. J | 2019 | Mapping of dynamic transcriptome changes associated with silica-triggered autoimmune pathogenesis in the lupus-prone NZBWF1 mouse | 30984195 | [ |
| Silica | Benninghoff, A. D. and Pestka, J. J | 2019 | Docosahexaenoic Acid Consumption Impedes Early Interferon- and Chemokine-Related Gene Expression While Suppressing Silica-Triggered Flaring of Murine Lupus | 31921124 | [ |
| Silica | Foster, M. H. and Clark, A. G | 2019 | Silica Exposure Differentially Modulates Autoimmunity in Lupus Strains and Autoantibody Transgenic Mice | 31632407 | [ |
| Silica | Lescoat, A. and Lecureur, V | 2020 | Crystalline Silica Impairs Efferocytosis Abilities of Human and Mouse Macrophages: Implication for Silica-Associated Systemic Sclerosis | 32133004 | [ |
| Silica | Rajasinghe, L. D. and Pestka, J. J | 2020 | Omega-3 fatty acid intake suppresses induction of diverse autoantibody repertoire by crystalline silica in lupus-prone mice | 32903098 | [ |
| Silica | Chauhan, P. S. and Pestka, J. J | 2021 | Rapid Induction of Pulmonary Inflammation, Autoimmune Gene Expression, and Ectopic Lymphoid Neogenesis Following Acute Silica Exposure in Lupus-Prone Mice | 33732257 | [ |
| Silica | Pestka, J. J. and Harkema, J. R | 2021 | Omega-3 Polyunsaturated Fatty Acid Intervention Against Established Autoimmunity in a Murine Model of Toxicant-Triggered Lupus | 33897700 | [ |
An overview of the data extracted of the included studies can be found in the Additional file 4: Table 3
Fig. 1Process of inclusion and exclusion of studies
Particle/fibre types in the included studies
| Particle/fibre types | |
|---|---|
| Asbestos | N = 11 |
| Amphibole | |
| Amosite | 2 |
| Tremolite | 4 |
| Libby | 10 |
| Other | 1 |
| Serpentine | |
| Chrysotile | 2 |
| Silica | N = 23 |
| Crystalline silica | |
| Min-U-Sil 5 | 14 |
| DQ10 | 1 |
| Not specified | 5 |
| Amorphous silica | 0 |
| Sodium silicate | 2 |
| Not specified | 1 |
Animal characteristics in included studies
| Animal characteristics | ||
|---|---|---|
| Asbestos (N = 11) | Silica (N = 23) | |
| Animal species and strain | ||
| Mouse | ||
| C57BL/6 | ||
| NZM 2410 | ||
| NZWB/F1 | ||
| BXSB | ||
| Other | ||
| Rat | ||
| Lewis | ||
| Brown Norway | ||
| Sprague–Dawley | ||
| Other | ||
| Other | ||
| Sex | ||
| Female | ||
| Male | ||
| Both | ||
| Not specified |
Values are presented as numbers
Number of studies per species and sex are indicated in Bold. The Number of studies per strain are italics. The specific studies are included in superscript
Parameters of exposure protocols used in included studies
| Exposure protocol | ||
|---|---|---|
| Asbestos (N = 11) | Silica (N = 23) | |
| Exposure route | ||
| Intratracheal instillation | 9 | 1 |
| Intranasal instillation | 0 | 14 |
| Oropharyngeal/transoral instillation | 1 | 7 |
| Intraperitoneal injection | 2 | 0 |
| Subcutaneous injection | 0 | 3 |
| Repeated dosing or single dosing | ||
| Single | 3 | 14 |
| Double | 6 | 3 |
| Repeated (> 2x) | 2 | 8 |