Immune-Modulating Perspectives for Low Frequency Electromagnetic Fields in Innate Immunity
Tóm tắt
Từ khóa
Tài liệu tham khảo
Burns-Naas, 2001, Toxic responses of the immune system, Casarett & Doulss’s Toxicology. The Basic Science of Poisons, 419
Frasca, 1996, IL-11 synergizes with IL-3 in promoting the recovery of the immune system after irradiation, Int Immunol, 8, 1651, 10.1093/intimm/8.11.1651
Rouse, 2010, Immunity and immunopathology to viruses: what decides the outcome?, Nat Rev Immunol, 10, 514, 10.1038/nri2802
Dietert, 2008, The managed immune system: protecting the womb to delay the tomb, Hum Exp Toxicol, 27, 129, 10.1177/0960327108090753
Santini, 2009, Cellular effects of extremely low frequency (ELF) electromagnetic fields, Int J Radiat Biol, 85, 294, 10.1080/09553000902781097
Simko, 2004, Extremely low frequency electromagnetic fields as effectors of cellular responses in vitro: possible immune cell activation, J Cell Biochem, 93, 83, 10.1002/jcb.20198
Boscolo, 2007, Combined effects of electromagnetic fields on immune and nervous responses, Int J Immunopathol Pharmacol, 20, 59, 10.1177/03946320070200S212
Jauchem, 2008, Effects of low-level radio-frequency (3kHz to 300GHz) energy on human cardiovascular, reproductive, immune, and other systems: a review of the recent literature, Int J Hyg Environ Health, 211, 1, 10.1016/j.ijheh.2007.05.001
Guerriero, 2014, Extremely low frequency electromagnetic fields stimulation modulates autoimmunity and immune responses: a possible immuno-modulatory therapeutic effect in neurodegenerative diseases, Neural Regen Res, 11, 1888, 10.4103/1673-5374.195277
De Mattei, 2009, Adenosine analogs and electromagnetic fields inhibit prostaglandin E2 release in bovine synovial fibroblasts, Osteoarthritis Cartilage, 17, 252, 10.1016/j.joca.2008.06.002
Frahm, 2010, Exposure to ELF magnetic fields modulate redox related protein expression in mouse macrophages, Toxicol Lett, 192, 330, 10.1016/j.toxlet.2009.11.010
Gottwald, 2007, Expression of HSP72 after ELF-EMF exposure in three cell lines, Bioelectromagnetics, 28, 509, 10.1002/bem.20327
Mannerling, 2010, Effects of 50-Hz magnetic field exposure on superoxide radical anion formation and HSP70 induction in human K562 cells, Radiat Environ Biophys, 49, 731, 10.1007/s00411-010-0306-0
Morehouse, 2000, Exposure to low-frequency electromagnetic fields does not alter HSP70 expression or HSF-HSE binding in HL60 cells, Radiat Res, 153, 658, 10.1667/0033-7587(2000)153[0658:ETLFEF]2.0.CO;2
Pooam, 2017, Effect of 50-Hz sinusoidal magnetic field on the production of superoxide anion and the expression of heat-shock protein 70 in RAW264 Cells, Int J Chem, 9, 23, 10.5539/ijc.v9n2p23
Ongaro, 2012, Electromagnetic fields (EMFs) and adenosine receptors modulate prostaglandin E(2) and cytokine release in human osteoarthritic synovial fibroblasts, J Cell Physiol, 227, 2461, 10.1002/jcp.22981
Selmaoui, 1999, Assessment of the effects of nocturnal exposure to 50-Hz magnetic fields on the human circadian system. A comprehensive study of biochemical variables, Chronobiol Int, 16, 789, 10.3109/07420529909016946
St-Pierre, 2008, Altered blood chemistry and hippocampal histomorphology in adult rats following prenatal exposure to physiologically-patterned, weak (50–500 nanoTesla range) magnetic fields, Int J Radiat Biol, 84, 325, 10.1080/09553000801953300
Varani, 2002, Effect of low frequency electromagnetic fields on A2A adenosine receptors in human neutrophils, Br J Pharmacol, 136, 57, 10.1038/sj.bjp.0704695
Bonhomme-Faivre, 1998, Study of human neurovegetative and hematologic effects of environmental low-frequency (50-Hz) electromagnetic fields produced by transformers, Arch Environ Health, 53, 87, 10.1080/00039896.1998.10545968
Bonhomme-Faivre, 2003, Effects of electromagnetic fields on the immune systems of occupationally exposed humans and mice, Arch Environ Health, 58, 712, 10.3200/AEOH.58.11.712-717
Boscolo, 2001, Effects of low frequency electromagnetic fields on expression of lymphocyte subsets and production of cytokines of men and women employed in a museum, Sci Total Environ, 270, 13, 10.1016/S0048-9697(00)00796-8
Del Signore, 2000, Combined effects of traffic and electromagnetic fields on the immune system of fertile atopic women, Ind Health, 38, 294, 10.2486/indhealth.38.294
Di Giampaolo, 2006, Follow up study on the immune response to low frequency electromagnetic fields in men and women working in a museum, Int J Immunopathol Pharmacol, 19, 37
Gobba, 2009, Extremely low frequency-magnetic fields (ELF-EMF) occupational exposure and natural killer activity in peripheral blood lymphocytes, Sci Total Environ, 407, 1218, 10.1016/j.scitotenv.2008.08.012
House, 2000, Modulation of natural killer cell function after exposure to 60 Hz magnetic fields: confirmation of the effect in mature B6C3F1 mice, Radiat Res, 153, 722, 10.1667/0033-7587(2000)153[0722:MONKCF]2.0.CO;2
House, 1996, Immune function and host defense in rodents exposed to 60-Hz magnetic fields, Fundam Appl Toxicol, 34, 228, 10.1006/faat.1996.0192
Ichinose, 2004, Immune markers and ornithine decarboxylase activity among electric utility workers, J Occup Environ Med, 46, 104, 10.1097/01.jom.0000111963.64211.3b
Tuschl, 2000, Occupational exposure to static, ELF, VF and VLF magnetic fields and immune parameters, Int J Occup Med Environ Health, 13, 39
Bouwens, 2012, Low-frequency electromagnetic fields do not alter responses of inflammatory genes and proteins in human monocytes and immune cell lines, Bioelectromagnetics, 33, 226, 10.1002/bem.20695
Golbach, 2015, Calcium signalling in human neutrophil cell lines is not affected by low-frequency electromagnetic fields, Bioelectromagnetics, 36, 430, 10.1002/bem.21924
Golbach, 2015, Low-Frequency electromagnetic field exposure enhances extracellular trap formation by human neutrophils through the NADPH pathway, J Innate Immun, 7, 459, 10.1159/000380764
Falone, 2007, Fifty hertz extremely low-frequency electromagnetic field causes changes in redox and differentiative status in neuroblastoma cells, Int J Biochem Cell Biol, 39, 2093, 10.1016/j.biocel.2007.06.001
Frahm, 2006, Alteration in cellular functions in mouse macrophages after exposure to 50 Hz magnetic fields, J Cell Biochem, 99, 168, 10.1002/jcb.20920
Gomez-Ochoa, 2011, Pulsed electromagnetic fields decrease proinflammatory cytokine secretion (IL-1beta and TNF-alpha) on human fibroblast-like cell culture, Rheumatol Int, 31, 1283, 10.1007/s00296-010-1488-0
Kaszuba-Zwoinska, 2008, Magnetic field anti-inflammatory effects in Crohn’s disease depends upon viability and cytokine profile of the immune competent cells, J Physiol Pharmacol, 59, 177
Lupke, 2004, Cell activating capacity of 50 Hz magnetic fields to release reactive oxygen intermediates in human umbilical cord blood-derived monocytes and in Mono Mac 6 cells, Free Radic Res, 38, 985, 10.1080/10715760400000968
Ross, 2013, Effect of pulsed electromagnetic field on inflammatory pathway markers in RAW 264.7 murine macrophages, J Inflamm Res, 6, 45, 10.2147/JIR.S40269
Salehi, 2013, Exposure of rats to extremely low-frequency electromagnetic fields (ELF-EMF) alters cytokines production, Electromagn Biol Med, 32, 1, 10.3109/15368378.2012.692343
Selmaoui, 2011, Acute exposure to 50-Hz magnetic fields increases interleukin-6 in young healthy men, J Clin Immunol, 31, 1105, 10.1007/s10875-011-9558-y
Vincenzi, 2017, Pulsed electromagnetic field exposure reduces hypoxia and inflammation damage in neuron-like and microglial cells, J Cell Physiol, 232, 1200, 10.1002/jcp.25606
Callaghan, 2008, Pulsed electromagnetic fields accelerate normal and diabetic wound healing by increasing endogenous FGF-2 release, Plast Reconstr Surg, 121, 130, 10.1097/01.prs.0000293761.27219.84
Cheing, 2014, Pulsed electromagnetic fields (PEMF) promote early wound healing and myofibroblast proliferation in diabetic rats, Bioelectromagnetics, 35, 161, 10.1002/bem.21832
Choi, 2016, Pulsed electromagnetic field (PEMF) promotes collagen fibre deposition associated with increased myofibroblast population in the early healing phase of diabetic wound, Arch Dermatol Res, 308, 21, 10.1007/s00403-015-1604-9
Delle Monache, 2008, Extremely low frequency electromagnetic fields (ELF-EMFs) induce in vitro angiogenesis process in human endothelial cells, Bioelectromagnetics, 29, 640, 10.1002/bem.20430
Goudarzi, 2010, Pulsed electromagnetic fields accelerate wound healing in the skin of diabetic rats, Bioelectromagnetics, 31, 318, 10.1002/bem.20567
Guerriero, 2015, Effectiveness of an innovative pulsed electromagnetic fields stimulation in healing of untreatable skin ulcers in the frail elderly: two case reports, Case Rep Dermatol Med, 2015, 576580, 10.1155/2015/576580
Ieran, 1990, Effect of low frequency pulsing electromagnetic fields on skin ulcers of venous origin in humans: a double-blind study, J Orthop Res, 8, 276, 10.1002/jor.1100080217
Khooshideh, 2017, Pulsed Electromagnetic fields for postsurgical pain management in women undergoing cesarean section: a randomized, double-blind, placebo-controlled trial, Clin J Pain, 33, 142, 10.1097/AJP.0000000000000376
Lee, 2016, Effects of exposure to extremely low-frequency electromagnetic fields on the differentiation of Th17 T cells and regulatory T cells, Gen Physiol Biophys, 35, 487, 10.4149/gpb_2016011
Loschinger, 1999, Induction of intracellular calcium oscillations in human skin fibroblast populations by sinusoidal extremely low-frequency magnetic fields (20 Hz, 8 mT) is dependent on the differentiation state of the single cell, Radiat Res, 151, 195, 10.2307/3579770
Milgram, 2004, The effect of short, high intensity magnetic field pulses on the healing of skin wounds in rats, Bioelectromagnetics, 25, 271, 10.1002/bem.10194
Patruno, 2010, Extremely low frequency electromagnetic fields modulate expression of inducible nitric oxide synthase, endothelial nitric oxide synthase and cyclooxygenase-2 in the human keratinocyte cell line HaCat: potential therapeutic effects in wound healing, Br J Dermatol, 162, 258, 10.1111/j.1365-2133.2009.09527.x
Reale, 2006, Modulation of MCP-1 and iNOS by 50-Hz sinusoidal electromagnetic field, Nitric Oxide, 15, 50, 10.1016/j.niox.2005.11.010
Rodemann, 1989, The differentiation of normal and transformed human fibroblasts in vitro is influenced by electromagnetic fields, Exp Cell Res, 182, 610, 10.1016/0014-4827(89)90263-2
Stiller, 1992, A portable pulsed electromagnetic field (PEMF) device to enhance healing of recalcitrant venous ulcers: a double-blind, placebo-controlled clinical trial, Br J Dermatol, 127, 147, 10.1111/j.1365-2133.1992.tb08047.x
Vianale, 2008, Extremely low frequency electromagnetic field enhances human keratinocyte cell growth and decreases proinflammatory chemokine production, Br J Dermatol, 158, 1189, 10.1111/j.1365-2133.2008.08540.x
Burnet, 1969, Cellular Immunology: Self and Not Self
Doherty, 1975, A biological role for the major histocompatibility antigens, Lancet, 1, 1406, 10.1016/S0140-6736(75)92610-0
Janeway, 1992, The immune system evolved to discriminate infectious nonself from noninfectious self, Immunol Today, 13, 11, 10.1016/0167-5699(92)90198-G
Janeway, 2002, Innate immune recognition, Annu Rev Immunol, 20, 197, 10.1146/annurev.immunol.20.083001.084359
Matzinger, 1994, Tolerance, danger, and the extended family, Annu Rev Immunol, 12, 991, 10.1146/annurev.iy.12.040194.005015
Matzinger, 2002, The danger model: a renewed sense of self, Science, 296, 301, 10.1126/science.1071059
Apetoh, 2007, Toll-like receptor 4-dependent contribution of the immune system to anticancer chemotherapy and radiotherapy, Nat Med, 13, 1050, 10.1038/nm1622
Tian, 2007, Toll-like receptor 9-dependent activation by DNA-containing immune complexes is mediated by HMGB1 and RAGE, Nat Immunol, 8, 487, 10.1038/ni1457
Anders, 2014, Beyond tissue injury-damage-associated molecular patterns, toll-like receptors, and inflammasomes also drive regeneration and fibrosis, J Am Soc Nephrol, 25, 1387, 10.1681/asn.2014010117
Radons, 2016, The human HSP70 family of chaperones: where do we stand?, Cell Stress Chaperones, 21, 379, 10.1007/s12192-016-0676-6
Basu, 2000, Necrotic but not apoptotic cell death releases heat shock proteins, which deliver a partial maturation signal to dendritic cells and activate the NF-kappa B pathway, Int Immunol, 12, 1539, 10.1093/intimm/12.11.1539
Zanin-Zhorov, 2006, Heat shock protein 60 enhances CD4+ CD25+ regulatory T cell function via innate TLR2 signaling, J Clin Invest, 116, 2022, 10.1172/JCI28423
Pei, 2016, Extracellular HSP60 triggers tissue regeneration and wound healing by regulating inflammation and cell proliferation, NPJ Regen Med, 1, 16013, 10.1038/npjregenmed.2016.13
Straino, 2008, High-mobility group box 1 protein in human and murine skin: involvement in wound healing, J Invest Dermatol, 128, 1545, 10.1038/sj.jid.5701212
Scaffidi, 2002, Release of chromatin protein HMGB1 by necrotic cells triggers inflammation, Nature, 418, 191, 10.1038/nature00858
Wahamaa, 2007, HMGB1-secreting capacity of multiple cell lineages revealed by a novel HMGB1 ELISPOT assay, J Leukoc Biol, 81, 129, 10.1189/jlb.0506349
Jiang, 2007, The relationship between apoptosis and high-mobility group protein 1 release from murine macrophages stimulated with lipopolysaccharide or polyinosinic-polycytidylic acid, J Immunol, 178, 6495, 10.4049/jimmunol.178.10.6495
Tang, 2007, Nuclear heat shock protein 72 as a negative regulator of oxidative stress (hydrogen peroxide)-induced HMGB1 cytoplasmic translocation and release, J Immunol, 178, 7376, 10.4049/jimmunol.178.11.7376
Tang, 2007, The anti-inflammatory effects of heat shock protein 72 involve inhibition of high-mobility-group box 1 release and proinflammatory function in macrophages, J Immunol, 179, 1236, 10.4049/jimmunol.179.2.1236
Tang, 2007, Hydrogen peroxide stimulates macrophages and monocytes to actively release HMGB1, J Leukoc Biol, 81, 741, 10.1189/jlb.0806540
Rosado, 2013, Beyond DNA repair, the immunological role of PARP-1 and its siblings, Immunology, 139, 428, 10.1111/imm.12099
Elliott, 2009, Nucleotides released by apoptotic cells act as a find-me signal to promote phagocytic clearance, Nature, 461, 282, 10.1038/nature08296
Wiley, 2011, The human P2X7 receptor and its role in innate immunity, Tissue Antigens, 78, 321, 10.1111/j.1399-0039.2011.01780.x
Lapa, 2014, Pharmacology of adenosine receptors and their signaling role in immunity and inflammation, Pharmacology and Therapeutics, 85
Raker, 2016, The cAMP pathway as therapeutic target in autoimmune and inflammatory diseases, Front Immunol, 7, 123, 10.3389/fimmu.2016.00123
Pioli, 1999, Cytotoxic T lymphocyte antigen 4 (CTLA-4) inhibits CD28-induced IkappaBalpha degradation and RelA activation, Eur J Immunol, 29, 856, 10.1002/(SICI)1521-4141(199903)29:03<856::AID-IMMU856>3.0.CO;2-P
Nasta, 2007, CTLA-4 regulates allergen response by modulating GATA-3 protein level per cell, Immunology, 121, 62, 10.1111/j.1365-2567.2007.02537.x
Vendetti, 2002, Cyclic adenosine 5'-monophosphate and calcium induce CD152 (CTLA-4) up-regulation in resting CD4+ T lymphocytes, J Immunol, 169, 6231, 10.4049/jimmunol.169.11.6231
Vincenzi, 2011, A(2A) adenosine receptors are differentially modulated by pharmacological treatments in rheumatoid arthritis patients and their stimulation ameliorates adjuvant-induced arthritis in rats, PLoS One, 8, e54195, 10.1371/journal.pone.0054195
Varani, 2017, Adenosine receptors as a biological pathway for the anti-inflammatory and beneficial effects of low frequency low energy pulsed electromagnetic fields, Mediators Inflamm, 2017, 2740963, 10.1155/2017/2740963
Orru, 2013, Genetic variants regulating immune cell levels in health and disease, Cell, 155, 242, 10.1016/j.cell.2013.08.041
Nourshargh, 2010, Breaching multiple barriers: leukocyte motility through venular walls and the interstitium, Nat Rev Mol Cell Biol, 11, 366, 10.1038/nrm2889
Mocsai, 2013, Diverse novel functions of neutrophils in immunity, inflammation, and beyond, J Exp Med, 210, 1283, 10.1084/jem.20122220
Thomas, 2013, Pattern recognition receptor function in neutrophils, Trends Immunol, 34, 317, 10.1016/j.it.2013.02.008
Cassatella, 1995, The production of cytokines by polymorphonuclear neutrophils, Immunol Today, 16, 21, 10.1016/0167-5699(95)80066-2
Nathan, 2006, Neutrophils and immunity: challenges and opportunities, Nat Rev Immunol, 6, 173, 10.1038/nri1785
Borregaard, 2007, Neutrophil granules: a library of innate immunity proteins, Trends Immunol, 28, 340, 10.1016/j.it.2007.06.002
Reeves, 2002, Killing activity of neutrophils is mediated through activation of proteases by K+ flux, Nature, 416, 291, 10.1038/416291a
Brinkmann, 2004, Neutrophil extracellular traps kill bacteria, Science, 303, 1532, 10.1126/science.1092385
Parker, 2012, Requirements for NADPH oxidase and myeloperoxidase in neutrophil extracellular trap formation differ depending on the stimulus, J Leukoc Biol, 92, 841, 10.1189/jlb.1211601
Kaplan, 2012, Neutrophil extracellular traps: double-edged swords of innate immunity, J Immunol, 189, 2689, 10.4049/jimmunol.1201719
Pall, 2013, Electromagnetic fields act via activation of voltage-gated calcium channels to produce beneficial or adverse effects, J Cell Mol Med, 17, 958, 10.1111/jcmm.12088
Geissmann, 2010, Development of monocytes, macrophages, and dendritic cells, Science, 327, 656, 10.1126/science.1178331
Song, 2000, Influence of alternatively and classically activated macrophages on fibrogenic activities of human fibroblasts, Cell Immunol, 204, 19, 10.1006/cimm.2000.1687
Mosser, 2008, Exploring the full spectrum of macrophage activation, Nat Rev Immunol, 8, 958, 10.1038/nri2448
Gordon, 2010, Alternative activation of macrophages: mechanism and functions, Immunity, 32, 593, 10.1016/j.immuni.2010.05.007
Hume, 2015, The many alternative faces of macrophage activation, Front Immunol, 6, 370, 10.3389/fimmu.2015.00370
Simko, 2007, Cell type specific redox status is responsible for diverse electromagnetic field effects, Curr Med Chem, 14, 1141, 10.2174/092986707780362835
Mattsson, 2014, Grouping of experimental conditions as an approach to evaluate effects of extremely low-frequency magnetic fields on oxidative response in in vitro studies, Front Public Health, 2, 132, 10.3389/fpubh.2014.00132
Mattsson, 2012, Is there a relation between extremely low frequency magnetic field exposure, inflammation and neurodegenerative diseases? A review of in vivo and in vitro experimental evidence, Toxicology, 301, 1, 10.1016/j.tox.2012.06.011
Lawrence, 1998, Physiology of the acute wound, Clin Plast Surg, 25, 321, 10.1016/S0094-1298(20)32467-6
Landen, 2016, Transition from inflammation to proliferation: a critical step during wound healing, Cell Mol Life Sci, 73, 3861, 10.1007/s00018-016-2268-0
Costin, 2012, Trends in wound repair: cellular and molecular basis of regenerative therapy using electromagnetic fields, Curr Mol Med, 12, 14, 10.2174/156652412798376143
Pesce, 2013, Extremely low frequency electromagnetic field and wound healing: implication of cytokines as biological mediators, Eur Cytokine Netw, 24, 1, 10.1684/ecn.2013.0332
Saliev, 2014, Therapeutic potential of electromagnetic fields for tissue engineering and wound healing, Cell Prolif, 47, 485, 10.1111/cpr.12142
Roy, 2006, Dermal wound healing is subject to redox control, Mol Ther, 13, 211, 10.1016/j.ymthe.2005.07.684
Brockmann, 2017, Regulation of TH17 cells and associated cytokines in wound healing, tissue regeneration, and carcinogenesis, Int J Mol Sci, 18, E1033, 10.3390/ijms18051033
Plitas, 2016, Regulatory T cells: differentiation and function, Cancer Immunol Res, 4, 721, 10.1158/2326-6066.cir-16-0193
Todd, 1991, Treatment of chronic varicose ulcers with pulsed electromagnetic fields: a controlled pilot study, Ir Med J, 84, 54