In vitro study of carbon black nanoparticles on human pulmonary artery endothelial cells: effects on calcium signaling and mitochondrial alterations

被引:0
作者
J. Deweirdt
J. F. Quignard
S. Lacomme
E. Gontier
S. Mornet
J. P. Savineau
R. Marthan
C. Guibert
I. Baudrimont
机构
[1] Univ. Bordeaux,
[2] Centre de Recherche Cardio-Thoracique de Bordeaux U 1045,undefined
[3] Inserm,undefined
[4] Centre de Recherche Cardio-Thoracique de Bordeaux U1045,undefined
[5] CNRS,undefined
[6] Bordeaux Imaging Center UMS 3420 CNRS-US4 INSERM,undefined
[7] CNRS,undefined
[8] Univ. Bordeaux,undefined
[9] Bordeaux INP,undefined
[10] ICMCB,undefined
[11] UMR 5026,undefined
[12] CHU de Bordeaux,undefined
[13] Service d’Exploration Fonctionnelle Respiratoire,undefined
来源
Archives of Toxicology | 2020年 / 94卷
关键词
Carbon black nanoparticles; Pulmonary endothelial cells; Reactive oxygen species; Calcium imaging; Mitochondrial dysfunction; Apoptosis;
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中图分类号
学科分类号
摘要
Human exposure to manufactured nanoparticles (NPs) is a public health concern. Endothelial cells lining the inner surface of arteries could be one of the primary targets for inhaled nanoparticles. Moreover, it is well known that alteration in calcium signaling is a critical event involved in the physiopathology of cardiovascular diseases. The objective of this study was to assess the role of oxidative stress in carbon black FW2 NPs-induced alteration in calcium signaling and mitochondria in human pulmonary artery endothelial cells. To this end, cells were exposed for 4 or 24 h to FW2 NPs (1–10 μg/cm2) and the following endpoints were studied: (i) production of ROS by fluorimetry and electron paramagnetic resonance, (ii) variation in intracellular calcium concentration by confocal microscopy, and (iii) mitochondrial alteration and apoptosis by confocal microscopy and transmission electronic microscopy. Exposure to FW2 NPs concentration-dependently increases oxidative stress, evidenced by the production of superoxide anion leading to an alteration in calcium content of intracellular organelles, such as endoplasmic reticulum and mitochondria activating, in turn, intrinsic apoptosis. This study provides evidence that FW2 NPs exposure impairs calcium signaling and mitochondria triggered by oxidative stress, and, thus, could act as a cardiovascular disease risk owing to the key role of calcium homeostasis in the control of vascular tone.
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页码:2331 / 2348
页数:17
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  • [1] Bagur R(2017)Intracellular Ca( Mol Cell 66 780-788
  • [2] Hajnoczky G(2015)) sensing: its role in calcium homeostasis and signaling Wiley Interdiscip Rev Nanomed Nanobiotechnol 7 839-855
  • [3] Bergamaschi E(2003)Impact and effectiveness of risk mitigation strategies on the insurability of nanomaterial production: evidences from industrial case studies Nat Rev Mol Cell Biol 4 517-529
  • [4] Berridge MJ(2012)Calcium signalling: dynamics, homeostasis and remodelling Int J Mol Sci 14 434-456
  • [5] Bootman MD(2009)An involvement of oxidative stress in endoplasmic reticulum stress and its associated diseases PLoS ONE 4 e6432-652
  • [6] Roderick HL(2014)Vascular smooth muscle modulates endothelial control of vasoreactivity via reactive oxygen species production through myoendothelial communications Wiley Interdiscip Rev Nanomed Nanobiotechnol 6 641-355
  • [7] Bhandary B(2006)Carbon black and titanium dioxide nanoparticles induce distinct molecular mechanisms of toxicity Part Fibre Toxicol 3 11-604
  • [8] Marahatta A(2010)The potential risks of nanomaterials: a review carried out for ECETOC Nanotechnology 21 215104-14485
  • [9] Kim HR(2001)Interaction between nanoparticles and cytokine proteins: impact on protein and particle functionality Toxicol Sci 61 342-1582
  • [10] Chae HJ(2014)Canines as sentinel species for assessing chronic exposures to air pollutants: part 1. Respiratory pathology PLoS ONE 9 e106711-1141