| Literature DB >> 24004508 |
Nygerma L Dangleben1, Christine F Skibola, Martyn T Smith.
Abstract
Exposure to arsenic (As) is a global public health problem because of its association with various cancers and numerous other pathological effects, and millions of people worldwide are exposed to As on a regular basis. Increasing lines of evidence indicate that As may adversely affect the immune system, but its specific effects on immune function are poorly understood. Therefore, we conducted a literature search of non-cancer immune-related effects associated with As exposure and summarized the known immunotoxicological effects of As in humans, animals and in vitro models. Overall, the data show that chronic exposure to As has the potential to impair vital immune responses which could lead to increased risk of infections and chronic diseases, including various cancers. Although animal and in vitro models provide some insight into potential mechanisms of the As-related immunotoxicity observed in human populations, further investigation, particularly in humans, is needed to better understand the relationship between As exposure and the development of disease.Entities:
Mesh:
Substances:
Year: 2013 PMID: 24004508 PMCID: PMC3848751 DOI: 10.1186/1476-069X-12-73
Source DB: PubMed Journal: Environ Health ISSN: 1476-069X Impact factor: 5.984
Major findings of As-associated immune-related effects that are consistent across multiple studies
| Defense genes/proteins | ↓ MHC class II | Humans | PBMC mRNA | [ |
| | | Animals | Mouse macrophage surface expression | [ |
| | ↓ CD69 | Humans | PBMC mRNA | [ |
| | | Human cells | PBMC surface expression | [ |
| | | Animal cells | Mouse SMC surface expression | [ |
| | ↓ IL-1β | Humans | PBMC mRNA | [ |
| | | Animals | Mouse lung mRNA & protein | [ |
| | | | Zebrafish mRNA | [ |
| | ↑ CD14 | Humans | PBMC mRNA & surface expression | [ |
| | | Human cells | Macrophage surface expression | [ |
| | ↓ TNF-α | Humans | PBMC mRNA | [ |
| | | | PBMC secretion | [ |
| | | Animals | Zebrafish mRNA | [ |
| | | | Rat PAM secretion | [ |
| | | | Mouse lung fluid protein | [ |
| Inflammation | ↑ Expression of inflammatory mediators | Humans | ↑ PBMC | [ |
| | | | ↑ PBMC CD14 surface expression & TNF-α secretion in adults | [ |
| | | | ↑ PBMC GM-CSF secretion in children | [ |
| | | | ↑ Placental & cord blood IL-1β, TNF-α and IFN-γ in neonates | [ |
| | | Human cells | ↑ Macrophage mRNA & secretion of TNF-α & IL-8 | [ |
| Lymphocyte activation | ↓ Stimulated proliferation | Humans | PBMC in adults | [ |
| | | | PBMC in children | [ |
| | | Animals | Chicken SMC & PBMC | [ |
| | | | Mouse SMC | [ |
| | | | Catfish SMC | [ |
| | | Human cells | PBMC | [ |
| | | Animal cells | Mouse SMC | [ |
| | | | Chicken SMC | [ |
| | ↓ Stimulated IL-2 secretion | Humans | PBMC in adults | [ |
| | | | PBMC in children | [ |
| | | Animals | Mouse SMC | [ |
| | | | Catfish SMC | [ |
| | | Human cells | PBMC | [ |
| | | Animal cells | Mouse SMC | [ |
| | | | Chicken SMC | [ |
| | | | Harbor seal 11B7501 lymphoma B-cells | [ |
| Humoral immunity | ↓ AFC response to antigen | Animals | Mouse SMC | [ |
| | Rat SMC | [ | ||
| Animal cells | Mouse SMC | [ | ||
| Hypersensitivity reaction | ↓ Response to cutaneous sensitization | Animals | ↓ LC migration to lymph nodes & subsequent T-cell activation in mice | [ |
| Rats | [ | |||
| Chickens | [ | |||
| Monocytes/ macrophages | ↓ Number/survival | Humans | ↓ Monocyte count | [ |
| | | Animals | ↓ Mouse splenic macrophage count | [ |
| | | | ↓ Catfish HK macrophage count | [ |
| | | | ↑ Apoptosis of mouse splenic macrophages | [ |
| | | Human cells | ↑ Apoptosis of blood monocytes & U937 promonocytic cells | [ |
| | Impaired development | Human cells | ↓ Differentiation of monocytes into macrophages | [ |
| | | | Induced differentiation of macrophages into DC-like cells | [ |
| | Diminished function | Humans | Cell rounding; ↓ adhesion/CD54 adhesion molecule, F-actin, NO- production & phagocytosis; altered Rho A-ROCK signaling | [ |
| | | Animals | ↓ Rat PAM stimulated TNF-α secretion | [ |
| | | | ↓ Mouse peritoneal macrophage NO- & O2- production | [ |
| | | | ↓ Mouse splenic macrophage adhesion, chemotactic index, phagocytosis, NO- production, MHC class II surface expression & antigen presentation | [ |
| | | | ↓ Chicken SMC & PBMC NO- production | [ |
| | | | ↓ Molluscan haemocyte phagocytosis & NO- production | [ |
| | | Human cells | Cell rounding; ↓ adhesion & macrophage-specific markers; reorganized F-actin cytoskeleton resembling that of monocytes; ↑ monocytic marker CD14; ↓ endocytosis & phagocytosis via activated Rho A-ROCK signaling | [ |
| Survival | ↑ Induction of apoptosis | Humans | PBMC in adults | [ |
| | | | ↑ PBMC | [ |
| | | | PBMC in children | [ |
| | | | ↑ CBMC | [ |
| | | Animals | Mouse splenic macrophages | [ |
| | | Human cells | Blood monocytes & U937 promonocytic cells | [ |
| | | | PBMC | [ |
| | | | B-cells, T-cells, macrophages & neutrophils | [ |
| | | Animal cells | Mouse TA3 antigen-presenting B-cells | [ |
| | | | Rat T-cells | [ |
| ROS production | Induced oxidative stress | Humans | ↑ Serum SOD & PBMC MDA in adults | [ |
| | | | ↑ Basal PBMC/monocyte NO- & O2- in children | [ |
| | | | ↑ Placental 8-oxoguanine in neonates | [ |
| | | | ↑ Cord blood 8-hydroxy-2'-deoxyguanosine in neonates | [ |
| | ↓ Stimulated ROS production | Humans | ↓ Macrophage NO- in adults | [ |
| | | | ↓ Monocyte NO- & O2- in children | [ |
| | | Animals | ↓ Mouse peritoneal macrophage NO- & O2- | [ |
| | | | ↓ Mouse splenic macrophage NO- | [ |
| | | | ↓ Chicken SMC & PBMC NO- | [ |
| | | | ↓ Molluscan haemocyte NO- | [ |
| | | | Zebrafish embryos & larvae | [ |
| Microbial challenge | ↓ Clearance of pathogens | Animals | ↑ Viral & bacterial loads in zebrafish embryos and larvae | [ |
| | | | ↑ Pathogen colonization & ulcers/septicemia following bacterial infection in catfish | [ |
| | | | ↓ Splenic clearance of | [ |
| | | | ↑ Morbidity & respiratory viral titers following H1N1 viral infection in mice | [ |
| Pulmonary health | Altered lung features | Humans | Altered airway protein expression in adults | [ |
| | | Animals | Altered mouse airway protein expression | [ |
| | | | ↓ Rat PAM stimulated TNF-α secretion | [ |
| | | | ↓ Mouse lung expression of genes involved in cell adhesion/migration | [ |
| | | | ↓ Killifish gill chloride secretion via ↑ CFTR degradation | [ |
| | | Human cells | ↓ CFBE41o- AE cell chloride secretion via ↑ CFTR degradation | [ |
| | | | ↓ 16HBE14o- bronchial epithelial cell migration and wound repair | [ |
| | | Animal cells | ↓ Rat PAM stimulated TNF-α secretion & NO- & O2- production | [ |
| | ↑ Risk of infection/disease | Humans | ↑ RTI & tuberculosis in adults | [ |
| | | | ↓ Lung function; ↑ prevalence/mortality from lung cancer and non-malignant lung disease, including bronchitis & bronchiectasis in adults | [ |
| | | | ↑ RTI in infants | [ |
| Animals | ↑ Morbidity & respiratory viral titers following H1N1 infection in mice | [ |
Note: all cells are primary cells unless otherwise stated. Subjects of human studies are adults unless otherwise stated.
↓ decreased; ↑ increased.
Summary of specific observations of As-associated immune-related effects
| ↓ nTreg lymphocyte number & function in adults; redistribution in rat model of autoimmune disease | nTreg cells play critical role in immune homeostasis; alterations could affect self-recognition or influence autoimmune disease | [ |
| Prenatal As exposure ↓ infant thymic size & function | Thymus is site of T-cell development; impaired function may account for ↑ prevalence of As-associated respiratory, cancer & other immune-related effects in adulthood | [ |
| ↓ CD4/CD8 T-cell ratio in children & mice | Indicator of immune suppression | [ |
| ↓ Rejection of MHC mismatched heart/bone marrow allografts in mice | ↓ Immune surveillance could lead to immunocompromised state & ↓ ability to fight infection/cancer cells | [ |
| ↓ Resistance in mice against B16F10 melanoma resulted in 7-fold ↑ tumor burden | ↓ Anti-tumor immunity could lead to cancer development | [ |
| ↓ Migration of lymphocytes, macrophages & neutrophils to lungs/DC to lymph nodes early in course of H1N1 influenza infection in mice | ↓ Immune surveillance could lead to immunocompromised state & ↓ ability to fight infection/cancer cells | [ |
| ↓ DC density, IL-17 & Th17 cells in asthmatic mouse airways; ↓ Th17 cell differentiation & IL-17 release via disrupted JNK/c-Jun pathway & DC function | Th17 cells play a major role in defense against infection via release of major pro-inflammatory cytokine IL-17; disruption could ↓ ability to fight infection | [ |
| ↓ Urinary HBD1 peptides in men; ↓ | HBD1 is antimicrobial peptide implicated in host anti-tumor & pulmonary immunity; its down-regulation could contribute to As-induced cancers & respiratory illnesses observed in humans | [ |
↓ decreased; ↑ increased.
Figure 1Simplified scheme of select As-induced alterations of immune responses. Also illustrated is how such effects might contribute to development of As-associated illnesses. Antigen (Ag) can be foreign or tumor cell.