A proteome-wide assessment of the oxidative stress paradigm for metal and metal-oxide nanomaterials in human macrophages

NanoImpact - Tập 17 - Trang 100194 - 2020
Tong Zhang1, Matthew J. Gaffrey1, Dennis G. Thomas1, Thomas J. Weber1, Becky M. Hess2, Karl K. Weitz1, Paul D. Piehowski1, Vladislav A. Petyuk1, Ronald J. Moore1, Wei-Jun Qian1, Brian D. Thrall1
1Biological Sciences Division, Pacific Northwest National Laboratory, Richland, WA 99352, United States of America
2Signatures Sciences and Technology Division, Pacific Northwest National Laboratory, Richland, WA 99352, United States of America

Tài liệu tham khảo

Ahn, 2018, Mussel-inspired 3D fiber scaffolds for heart-on-a-chip toxicity studies of engineered nanomaterials, Anal. Bioanal. Chem., 410, 6141, 10.1007/s00216-018-1106-7 Aksenova, 2013, Actin-binding protein alpha-actinin 4 (ACTN4) is a transcriptional co-activator of RelA/p65 sub-unit of NF-kB, Oncotarget, 4, 362, 10.18632/oncotarget.901 Andujar, 2014, Role of metal oxide nanoparticles in histopathological changes observed in the lung of welders, Part Fibre Toxicol, 11, 23, 10.1186/1743-8977-11-23 Arias, 2018, Iron oxide nanoparticles for biomedical applications: a perspective on synthesis, drugs, antimicrobial activity, and toxicity, Antibiotics (Basel, Switzerland), 7, 46 Beltran-Huarac, 2018, Development of reference metal and metal oxide engineered nanomaterials for nanotoxicology research using high throughput and precision flame spray synthesis approaches, NanoImpact, 10, 26, 10.1016/j.impact.2017.11.007 Cai, 2018, Multi-hierarchical profiling the structure-activity relationships of engineered nanomaterials at nano-bio interfaces, Nat. Commun., 9, 4416, 10.1038/s41467-018-06869-9 Chen, 2014, Endoplasmic reticulum stress induced by zinc oxide nanoparticles is an earlier biomarker for nanotoxicological evaluation, ACS Nano, 8, 2562, 10.1021/nn406184r Chen, 2015, Parallel comparative studies on mouse toxicity of oxide nanoparticle- and gadolinium-based T1 MRI contrast agents, ACS Nano, 9, 12425, 10.1021/acsnano.5b05783 Chiarugi, 2003, Reactive oxygen species as essential mediators of cell adhesion: the oxidative inhibition of a FAK tyrosine phosphatase is required for cell adhesion, J. Cell Biol., 161, 933, 10.1083/jcb.200211118 Coggon, 1994, Lobar pneumonia: an occupational disease in welders, Lancet, 344, 41, 10.1016/S0140-6736(94)91056-1 Costa, 2018, Transcriptional profiling reveals gene expression changes associated with inflammation and cell proliferation following short-term inhalation exposure to copper oxide nanoparticles, J. Appl. Toxicol., 38, 385, 10.1002/jat.3548 DeLoid, 2017, Preparation, characterization, and in vitro dosimetry of dispersed, engineered nanomaterials, Nat. Protoc., 12, 355, 10.1038/nprot.2016.172 Di Cristo, 2016, Proinflammatory effects of pyrogenic and precipitated amorphous silica nanoparticles in innate immunity cells, Toxicol. Sci., 150, 40, 10.1093/toxsci/kfv258 Duan, 2016, Quantitative profiling of protein S-Glutathionylation reveals redox-dependent regulation of macrophage function during nanoparticle-induced oxidative stress, ACS Nano, 10, 524, 10.1021/acsnano.5b05524 Filomeni, 2015, Oxidative stress and autophagy: the clash between damage and metabolic needs, Cell Death Differ., 22, 377, 10.1038/cdd.2014.150 Frohlich, 2017, Role of omics techniques in the toxicity testing of nanoparticles, J Nanobiotechnology, 15, 84, 10.1186/s12951-017-0320-3 Gatto, 2017, PMA-induced THP-1 macrophage differentiation is not impaired by citrate-coated platinum nanoparticles, Nanomaterials (Basel, Switzerland), 7, 332, 10.3390/nano7100332 Grant, 2011, Regulation of translation by hydrogen peroxide, Antioxid. Redox Signal., 15, 191, 10.1089/ars.2010.3699 Greten, 2007, NF-κB is a negative regulator of IL-1beta secretion as revealed by genetic and pharmacological inhibition of IKKbeta, Cell, 130, 918, 10.1016/j.cell.2007.07.009 Henderson, 2009, Unfolding the relationship between secreted molecular chaperones and macrophage activation states, Cell Stress Chaperones, 14, 329, 10.1007/s12192-008-0087-4 Ikwegbue, 2017, Roles of heat shock proteins in apoptosis, oxidative stress, human inflammatory diseases, and cancer, Pharmaceuticals (Basel), 11, 2, 10.3390/ph11010002 Jeong, 2019, p62/SQSTM1 and selective autophagy in cardiometabolic diseases, Antioxid. Redox Signal., 31, 458, 10.1089/ars.2018.7649 Khan, 2013, Transient increase in IL-1beta, IL-6 and TNF-alpha gene expression in rat liver exposed to gold nanoparticles, Genet. Mol. Res., 12, 5851, 10.4238/2013.November.22.12 Kim, 2015, Zinc oxide nanoparticles suppress LPS-induced NF-κB activation by inducing A20, a negative regulator of NF-κB, in RAW 264.7 macrophages, J. Nanosci. Nanotechnol., 15, 6509, 10.1166/jnn.2015.10319 Kim, 2011, Effects of copper nanoparticle exposure on host defense in a murine pulmonary infection model, Part Fibre Toxicol, 8, 29, 10.1186/1743-8977-8-29 Kodali, 2015 Lanone, 2009, Comparative toxicity of 24 manufactured nanoparticles in human alveolar epithelial and macrophage cell lines, Part. Fibre Toxicol., 6, 14, 10.1186/1743-8977-6-14 Kodali, 2013, Dysregulation of macrophage activation profiles by engineered nanoparticles, ACS Nano, 7, 6997, 10.1021/nn402145t Lenz, 2013, Inflammatory and oxidative stress responses of an alveolar epithelial cell line to airborne zinc oxide nanoparticles at the air-liquid interface: a comparison with conventional, submerged cell-culture conditions, Biomed. Res. Int., 2013, 10.1155/2013/652632 Li, 2018, The role of autophagy in nanoparticles-induced toxicity and its related cellular and molecular mechanisms, Adv. Exp. Med. Biol., 1048, 71, 10.1007/978-3-319-72041-8_5 Li, 2006, Estimation of electronegativity values of elements in different valence states, J. Phys. Chem. A, 110, 11332, 10.1021/jp062886k Li, 2014, New insights into the roles of CHOP-induced apoptosis in ER stress, Acta Biochim. Biophys. Sin. Shanghai, 46, 629, 10.1093/abbs/gmu048 Liliental, 1998, Rack1, a receptor for activated protein kinase C, interacts with integrin beta subunit, J. Biol. Chem., 273, 2379, 10.1074/jbc.273.4.2379 Lin, 2019, Quantitative proteomic analysis to understand the mechanisms of zinc oxide nanoparticle toxicity to Daphnia pulex (Crustacea: Daphniidae): comparing with bulk zinc oxide and zinc salt, Environ Sci Technol, 53, 5436, 10.1021/acs.est.9b00251 Loeb, 2009, Environmental risk factors for community-acquired pneumonia hospitalization in older adults, J. Am. Geriatr. Soc., 57, 1036, 10.1111/j.1532-5415.2009.02259.x Ma, 2010, Gold nanoparticles attenuate LPS-induced NO production through the inhibition of NF-κB and IFN-beta/STAT1 pathways in RAW264.7 cells, Nitric Oxide, 23, 214, 10.1016/j.niox.2010.06.005 Ma, 2011, Gold nanoparticles induce autophagosome accumulation through size-dependent nanoparticle uptake and lysosome impairment, ACS Nano, 5, 8629, 10.1021/nn202155y Meng, 2009, A predictive toxicological paradigm for the safety assessment of nanomaterials, ACS Nano, 3, 1620, 10.1021/nn9005973 Mihai, 2015, Intracellular accumulation dynamics and fate of zinc ions in alveolar epithelial cells exposed to airborne ZnO nanoparticles at the air-liquid interface, Nanotoxicology, 9, 9, 10.3109/17435390.2013.859319 Moos, 2011, Responses of human cells to ZnO nanoparticles: a gene transcription study, Metallomics, 3, 1199, 10.1039/c1mt00061f Nel, 2006, Toxic potential of materials at the nanolevel, Science, 311, 622, 10.1126/science.1114397 Neupane, 2010, Long-term exposure to ambient air pollution and risk of hospitalization with community-acquired pneumonia in older adults, Am. J. Respir. Crit. Care Med., 181, 47, 10.1164/rccm.200901-0160OC Nyathi, 2013, Co-translational targeting and translocation of proteins to the endoplasmic reticulum, Biochim. Biophys. Acta, 1833, 2392, 10.1016/j.bbamcr.2013.02.021 Palmer, 2003, Exposure to metal fume and infectious pneumonia, Am. J. Epidemiol., 157, 227, 10.1093/aje/kwf188 Parveen, 2012, Nanoparticles: a boon to drug delivery, therapeutics, diagnostics and imaging, Nanomed.-Nanotechnol. Biol. Med., 8, 147, 10.1016/j.nano.2011.05.016 Perkins, 2012, Differences in gene expression and cytokine production by crystalline vs. amorphous silica in human lung epithelial cells, Part Fibre Toxicol, 9, 6, 10.1186/1743-8977-9-6 Prieto, 1994, Regulated expression of integrins and other adhesion molecules during differentiation of monocytes into macrophages, Cell. Immunol., 156, 191, 10.1006/cimm.1994.1164 Puzyn, 2011, Using nano-QSAR to predict the cytotoxicity of metal oxide nanoparticles, Nat. Nanotechnol., 6, 175, 10.1038/nnano.2011.10 Safar, 2019, Cytotoxicity and global transcriptional responses induced by zinc oxide nanoparticles NM 110 in PMA-differentiated THP-1 cells, Toxicol. Lett., 308, 65, 10.1016/j.toxlet.2018.11.003 Shannahan, 2013, Silver nanoparticle protein corona composition in cell culture media, PLoS One, 8, 10.1371/journal.pone.0074001 Sharma, 2017, Nanotechnology: an untapped resource for food packaging, Front. Microbiol., 8, 22, 10.3389/fmicb.2017.01735 Shenton, 2006, Global translational responses to oxidative stress impact upon multiple levels of protein synthesis, J. Biol. Chem., 281, 29011, 10.1074/jbc.M601545200 Simpson, 2012, Adaptation to stress in yeast: to translate or not?, Biochem. Soc. Trans., 40, 794, 10.1042/BST20120078 Sivalenka, 2004, SWAP-70 regulates c-kit-induced mast cell activation, cell-cell adhesion, and migration, Mol. Cell. Biol., 24, 10277, 10.1128/MCB.24.23.10277-10288.2004 Smith, 2018, All that is silver is not toxic: silver ion and particle kinetics reveals the role of silver ion aging and dosimetry on the toxicity of silver nanoparticles, Part Fibre Toxicol, 15, 47, 10.1186/s12989-018-0283-z Sundarraj, 2017, Repeated exposure to iron oxide nanoparticles causes testicular toxicity in mice, Environ. Toxicol., 32, 594, 10.1002/tox.22262 Sundarraj, 2017, Iron oxide nanoparticles modulate heat shock proteins and organ specific markers expression in mice male accessory organs, Toxicol. Appl. Pharmacol., 317, 12, 10.1016/j.taap.2017.01.002 Tabei, 2016, Intracellular accumulation of indium ions released from nanoparticles induces oxidative stress, proinflammatory response and DNA damage, J. Biochem., 159, 225, 10.1093/jb/mvv098 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 Tarasova, 2017, Cytotoxic and proinflammatory effects of metal-based nanoparticles on THP-1 monocytes characterized by combined proteomics approaches, J. Proteome Res., 16, 689, 10.1021/acs.jproteome.6b00747 Thomas, 2018, ISD3: a particokinetic model for predicting the combined effects of particle sedimentation, diffusion and dissolution on cellular dosimetry for in vitro systems, Part Fibre Toxicol, 15, 6, 10.1186/s12989-018-0243-7 Thrall, 2019, Modulation of susceptibility to lung bacterial infection by engineered nanomaterials: in vitro and in vivo correspondence based on macrophage phagocytic function, NanoImpact, 14, 100155, 10.1016/j.impact.2019.100155 Toia, 2015, Alarmin high mobility group box 1 (HMGB1) activates alternative NFkB signaling in bone marrow macrophages in the leukemia microenvironment, Blood, 126, 2204, 10.1182/blood.V126.23.2204.2204 Topf, 2018, Quantitative proteomics identifies redox switches for global translation modulation by mitochondrially produced reactive oxygen species, Nat. Commun., 9, 324, 10.1038/s41467-017-02694-8 Tran, 2002, Integrin clustering induces kinectin accumulation, J. Cell Sci., 115, 2031, 10.1242/jcs.115.10.2031 Tsai, 2011, Identification of the nanogold particle-induced endoplasmic reticulum stress by omic techniques and systems biology analysis, ACS Nano, 5, 9354, 10.1021/nn2027775 Vasconcellos, 2016, Protein aggregation as a cellular response to oxidative stress induced by heme and iron, Proc. Natl. Acad. Sci. U. S. A., 113, E7474, 10.1073/pnas.1608928113 Waiskopf, 2016, Photocatalytic reactive oxygen species formation by semiconductor-metal hybrid nanoparticles. Toward light-induced modulation of biological processes, Nano Lett., 16, 4266, 10.1021/acs.nanolett.6b01298 Wang, 2006, Exogenous heat shock protein 70 binds macrophage lipid raft microdomain and stimulates phagocytosis, processing, and MHC-II presentation of antigens, Blood, 107, 1636, 10.1182/blood-2005-06-2559 Wang, 2017, Quantitative analysis of reactive oxygen species photogenerated on metal oxide nanoparticles and their bacteria toxicity: the role of superoxide radicals, Environ Sci Technol, 51, 10137, 10.1021/acs.est.7b00473 Waters, 2009, Macrophage responses to silica nanoparticles are highly conserved across particle sizes, Toxicol. Sci., 107, 553, 10.1093/toxsci/kfn250 van Wetering, 2002, Reactive oxygen species mediate Rac-induced loss of cell-cell adhesion in primary human endothelial cells, J. Cell Sci., 115, 1837, 10.1242/jcs.115.9.1837 Yazdi, 2010, Nanoparticles activate the NLR pyrin domain containing 3 (Nlrp3) inflammasome and cause pulmonary inflammation through release of IL-1alpha and IL-1beta, Proc. Natl. Acad. Sci. U. S. A., 107, 19449, 10.1073/pnas.1008155107 Zhang, 2011, Quantitative proteomics analysis of adsorbed plasma proteins classifies nanoparticles with different surface properties and size, Proteomics, 11, 4569, 10.1002/pmic.201100037 Zhang, 2012, Use of metal oxide nanoparticle band gap to develop a predictive paradigm for oxidative stress and acute pulmonary inflammation, ACS Nano, 6, 4349, 10.1021/nn3010087 Zhang, 2018, Mass spectrometry-based proteomics for system-level characterization of biological responses to engineered nanomaterials, Anal. Bioanal. Chem., 410, 6067, 10.1007/s00216-018-1168-6 Zhao, 2015, Quantitative proteomic analysis of cellular resistance to the nanoparticle Abraxane, ACS Nano, 9, 10099, 10.1021/acsnano.5b03677 Zhao, P., Gao, D., Wang, Q., Song, B., Shao, Q., Sun, J., Ji, C., Li, X., Li, P., Qu, X., 2015b. Response gene to complement 32 (RGC-32) expression on M2-polarized and tumor-associated macrophages is M-CSF-dependent and enhanced by tumor-derived IL-4. Cell Mol Immunol 12(6), 692–699. Zimmerman, 2019, Scatter enhanced phase contrast microscopy for discriminating mechanisms of active nanoparticle transport in living cells, Nano Lett., 19, 793, 10.1021/acs.nanolett.8b03903