| Literature DB >> 31182125 |
Katja Maria Bendtsen1, Anders Brostrøm1,2, Antti Joonas Koivisto1, Ismo Koponen1,3, Trine Berthing1, Nicolas Bertram1, Kirsten Inga Kling2, Miikka Dal Maso4, Oskari Kangasniemi4, Mikko Poikkimäki4, Katrin Loeschner5, Per Axel Clausen1, Henrik Wolff6, Keld Alstrup Jensen1, Anne Thoustrup Saber1, Ulla Vogel7,8.
Abstract
BACKGROUND: Little is known about the exposure levels and adverse health effects of occupational exposure to airplane emissions. Diesel exhaust particles are classified as carcinogenic to humans and jet engines produce potentially similar soot particles. Here, we evaluated the potential occupational exposure risk by analyzing particles from a non-commercial airfield and from the apron of a commercial airport. Toxicity of the collected particles was evaluated alongside NIST standard reference diesel exhaust particles (NIST2975) in terms of acute phase response, pulmonary inflammation, and genotoxicity after single intratracheal instillation in mice.Entities:
Keywords: Airport; Exposure risk; Jet engine emission; Jet engine particle; Occupational exposure
Mesh:
Substances:
Year: 2019 PMID: 31182125 PMCID: PMC6558896 DOI: 10.1186/s12989-019-0305-5
Source DB: PubMed Journal: Part Fibre Toxicol ISSN: 1743-8977 Impact factor: 9.400
Overview of samples
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Non-commercial airfield particles (JEP) |
| 1 ELPI | Figure | Exposure characterization |
| 4 DISCminis | Table | Exposures and doses | ||
| 1 NanoScan | Additional File 1: Figure S1 A: | Position of instruments Jet engine test facility | ||
| 1 OPC | Additional File 1: Figure S1 B: | |||
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| Micro INertial Impactor (MINI) | Results not shown | ||
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| Micro INertial Impactor (MINI) | Additional File 1: Figure S1 C: | Description of impacted aerosols and TEM images | |
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| Electrostatic precipitator | Table | PAH contents Metal contents | |
| Table | ||||
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| TEM (dropcast) | Table | Size distribution | |
| Additional File 1: Figure S1 D: | DLS figures | |||
| Fig. | SEM images | |||
| Additional File 1: Figure S1E: | Elemental composition by EDS analysis | |||
| Commercial airport particles (CAP) |
| 4 DISCminis | Figure | Exposure characterization |
| 1 NanoScan | Additional File 1: Figure S1 A: | Position of instruments | ||
| 1 OPC | ||||
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| Micro INertial Impactor (MINI) | Additional File 1: Figure S1 C: | Description of impacted aerosols and TEM images | |
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| Electrostatic precipitator | Table | PAH contents | |
| Table | Metal contents | |||
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| TEM, dropcast | Table | Size distribution | |
| Additional File 1: Figure S1 D: | DLS figures | |||
| Figure | SEM images | |||
| Additional File 1: Figure S1 E: | Elemental composition by EDS analysis | |||
| Mouse instillations of JEP and CAP |
| Histology | Figure | Histopathology of lung sections |
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| Broncho-alveolar lavage (BAL) | Table | BAL fluid cell composition | |
| Figure | Dose-response relationship of instilled particles | |||
| Figure | Neutrophil influx | |||
| Additional File 2: Figure S2 A: | Scatter plots of cellular influx Eosinophil influx | |||
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| mRNA expression | Figure | SAA day 1 | |
| Additional File 2: Figure S2 B: | SAA day 28 and 90 | |||
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| DNA strand breaks (Comet Assay) | Figure | Tail Length | |
| Additional File 2: S2C: | % DNA in Tail and data table | |||
Fig. 1Particle concentrations measured inside a jetfighter shelter at a non-commercial airfield (a and b) and at a non-commercial airport (c) (see also Additional file S1 A). a: Total particle number concentrations (a) and particle number size distribution time series (b) inside the shelter measured during jetfighter leaving the shelter (PL), arriving at the shelter (PA), and fuel truck (FT) fueling the plane. The vertical solid and dashed black lines show when the jet engine is started or fuel truck arrives to the shelter and when the engine is switched off or fuel truck leaves the shelter. Horizontal thick black line shows the averaging period to calculate exposure and dose levels presented in Table 2. Particle sampling time for one flight cycle (tPM4) for mass fraction smaller than 4 μm (mPM4) gravimetric analysis is shown with gray vertical bar. b: Average particle number (a) and mass (b) size distributions. c: Total particle number concentrations measured at a commercial airport (CAP). The inserted sub-figure shows the average particle size distribution measured by the NanoScan during the measurement period
Average exposures and doses of jetfighter personnel at a non-commercial airfield
| Event | HA, n[%] | TB, n[%] | AL, n[%] | HA, m[%] | TB, m[%] | AL, m[%] | Particles [× 1012]/ Event | Mass [μg]/ Event | ||||||
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| PL | 15.1 | 7.7 | 1086 | 537 | 15 | 21.2 | 27.2 | 51.6 | 18.7 | 84.6 | 4.7 | 10.7 | 2.26 | 280 |
| PA + FT | 21.3 | 2.67 | 410 | 228 | 5.4 | 21.7 | 27.7 | 50.7 | 7 | 83.6 | 4.9 | 11.5 | 1.15 | 150 |
| tPM4 | 170 | 1.22 | 194 | 89 | 2.4 | 21.4 | 27.4 | 51.3 | 3.5 | 85.8 | 4.6 | 9.6 | 4.12 | 600 |
Average exposures and doses during Plane Leaving (PL), Plane Arrival and fueling the plane (PA + FT combined), and over one flight cycle (tPM4). From left to right: average event time (t) in minutes, average particle number concentration (n), mass concentration (m) and mass fraction smaller than 4 μm (m), inhaled number dose per minute (DR), predicted fraction of particles deposited in extra-thoracic (HA), tracheo-bronchial (TB) and alveolar (AL) lung regions, inhaled mass dose per minute (DRm), predicted fraction of mass deposited in extra-thoracic (HA), tracheo-bronchial (TB) and alveolar (AL) lung regions, total particles per event and total mass per event
Content of 16 PAH in airport-collected particles
| PAH | CAP mg/g particles | JEP mg/g particles | NIST1650Ba | NIST2975a |
|---|---|---|---|---|
| Naphthalene | ND | ND | 0.007(0.0004) | 0.004(0.0001) |
| Acenaphthylene | 0.009(0.0009) | 0.01(0.002) | 0.001(0.00004) | |
| Acenaphthene | ND | ND | 0.0002(0.00002) | 0.0005(0.00003) |
| Fluorene | 0.001(0.00007) | 0.001(0.0002) | 0.001(0.00004) | 0.003(0.0002) |
| Phenanthrene | 0.008(0.0005) | 0.001(0.00008) | 0.07(0.004) | 0.02(0,0003) |
| Anthracene | ND | 0.001 | 0.008(0.0004) | 0.00005(0.000002) |
| Fluoranthene | 0.008(0.00007) | 0.001(0.00008) | 0.05(0.001) | 0.03(0.0005) |
| Pyrene | 0.04(0.0007) | 0.007(0.00007) | 0.04(0.001) | 0.002(0.0002) |
| Benz(a)anthracene | ND | ND | 0.006(0.0004) | 0.001(0.00004) |
| Chrysene | ND | ND | 0.01(0.0006) | 0.006(0.0001) |
Benzo(b)fluoranthene + Benzo(k)fluoranthene | 0.01(0.0009) | 0.02 | 0.009(0.0009) | 0.01(0.003) |
| Benzo(a)pyrene* | 0.005(0.0004) | 0.009(0.0004) | 0.001(0.0001) | 0.0008(0.00004) |
| Dibenz(a.h)anthracene | ND | ND | 0.0004(0.00008) | 0.0005(0.00005)£ |
| Ideno(1.2.3-cd)pyrene | ND | ND | 0.004(0.0002) | 0.002(0.0001) |
| Benzo(g.h.i)perylene | ND | ND | 0.006(0.0003) | 0.002(0.00009) |
| ∑PAH | 0.081 | 0.05 | 0.22 | 0.086 |
PAH was measured by GC-MS and listed as blank corrected mean values (N = 2) with standard deviation in parenthesis. The PAH were extracted with cyclohexane from the two water suspensions of each particle used for the instillation in mice. ND = Not Detected
aThe highest concentrations given in the Certificate of Analysis measured by several different methods and the associated expanded uncertainty given in parenthesis. £For NIST2975 the value is for Dibenz[a,h + a,c]anthracene
Extracted elements from analysis of 4 mg of jet engine particles (JEP) and particles from a commercial airport (CAP)
| JEP | CAP | NIST 2975 | CB |
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| Li | 3 | 17 | 1/ND | 3/ND | – | – |
| Mg | 950 | 8655 | 291/281 | ND /ND | – | – |
| Al | 3057 | 9735 | ND | 203/0 | – | – |
| V | 6 | 11 | 5/1 | ND | 0.0 ± 0.0 | < 1 |
| Cr | 17 | 146 | 90/102 | ND | – | < 1 |
| Mn | 134 | 125 | 11/11 | 1 /ND | – | – |
| Fe | 2788 | 5386 | 814/743 | 498/− | 0.0 ± 13 | 11 |
| Co | 9 | 15 | 7/8 | 0/− | 0.1 ± 0.1 | < 1 |
| Ni | 200 | 249 | 55/65 | 0/− | 0.5 ± 0.7 | < 2 |
| Cu | 1147 | 14,884 | 24/5 | 13/3 | 0.9 ± 0.6 | < 1 |
| Zn | 7433 | 31,897 | 13,926/17,003 | ND | 16 ± 4 | < 2 |
| Ga | 1 | 3 | ND | ND | – | – |
| As | 4 | 5 | 1/2 | −/1 | – | < 2 |
| Se | 5 | 14 | ND /2 | ND | – | < 10 |
| Rb | 7 | 8 | ND | ND | – | – |
| Sr | 44 | 427 | 8/1 | 2/1 | – | – |
| Ag | 62 | 35 | ND | ND | – | – |
| Cd | 6 | 3 | ND | ND | – | < 0.4 |
| In | ND | 1 | ND | ND | – | – |
| Cs | 1 | 1 | ND | ND | – | – |
| Ba | 83 | 103 | 4/ND | 3/3 | – | – |
| Hg | 4 | 26 | ND | ND | – | < 0.2 |
| Tl | ND | 1 | ND | ND | – | – |
| Pb | 100 | 658 | 97/105 | ND | – | – |
| Bi | 3 | 11 | 1/1 | ND | – | – |
| U | ND | 2 | 1/1 | ND | – | – |
Elemental concentrations are shown in units of μg/g particle (ND = not detectable). Blank concentrations were subtracted. NIST2975 and CB were analyzed in duplicates (separated by slash). aReference values from Ball et al. (2000) [30] (the study only analyzed Co, Cu, Fe, Ni, V, and Zn). Note that we extracted for significantly longer time (several days vs. overnight) and with 25% nitric acid instead of 0.1 M phosphate buffer. bReference values from the MAK-Collection for Occupational Health and Safety (written communication of unpublished data of Degussa) [31]
Size distribution in dispersion for collected airport particles, NIST2975 and carbon black Printex90 (CB)
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| CAP | 136.04 | 0.57 | 168.67 | 0.54 | 269.00 | 0.57 | N/A | N/A |
| JEP | 143.50 | 0.42 | 142.68 | 0.35 | 196.03 | 0.45 | N/A | N/A |
| NIST2975 | N/A | N/A | 126.40 | 0.15 | 138.52 | 0.23 | 136.62 | 0.22 |
| CB | N/A | N/A | N/A | N/A | 148.74 | 0.28 | N/A | N/A |
All particles were dispersed in Nanopure water. Z-Average (intensity based harmonic mean) relates to particle sizes and Polydispersity Index (PdI) relates to the distribution. N/A: Not applicable (doses not included in the study)
Fig. 2Scanning electron micrographs of collected particles dispersed in water. A + F: Overview of dispersed particles showing difference in homogeneity between JEP and CAP (bar: 100 μm). B + G: Detail of agglomerates consisting of smaller particles (bar: 2 μm). C + H: Detail of primary soot particles in agglomerates (bar: 200 nm). D + I: Details of collapsed pollen grains and plant fiber (bar: D; 2 μm, I; 20 μm). E + J: Details of silver particles covering agglomerates and plant fragments (bar: 1 μm)
Fig. 3Histopathology of the lung on 28 and 90 days following exposure to 54 μg particles collected at a non-commercial airfield (JEP) and at the apron of a commercial airport (CAP). The sections were stained with HE. Control: Section of lung from a control mouse instilled with water only. A and B: Particles were not readily apparent in mice instilled with JEP and no significant pathological changes were found on day 28 or 90. C: In mice instilled with CAP, some particles were visible in macrophages. D and E: Pronounced eosinophil infiltration and eosinophil vasculitis was observed on day 28 and 90, characterized by infiltrates in the perivascular region and smooth muscle hyperplasia. F-H. Day 28 and 90. Lung sections of mice exposed to 162 μg NIST2975 had visible particles and particle-loaded macrophages, along with modest inflammation-related changes
BAL fluid cell composition on day 1, 28 and 90 post-exposure
| Total cell count | Neutrophils | Macrophages | Eosinophils | Lymphocytes | Epithelial cells | |
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| Day 1 | ||||||
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| 56.43 ± 6.42 | 2.84 ± 0.89 | 46.58 ± 6.00 | 1.16 ± 0.79 | 0.84 ± 0.47 | 5.00 ± 1.59 |
| 144.80 ± 16.23(****) | 100.11 ± 11.85(****) | 28.52 ± 3.05 | 9.96 ± 2.58(***) | 1.43 ± 0.43 | 3.85 ± 0.78 | |
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| 53.32 ± 9.87 | 6.43 ± 0.88 | 42.62 ± 8.90 | 0.30 ± 0.07 | 0.04 ± 0.04 | 3.94 ± 1.65 |
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| 82.22 ± 11.96 | 36.72 ± 10.00(***)(¤) | 38.28 ± 2.94 | 1.40 ± 0.42 | 0.33 ± 0.15 | 5.49 ± 1.60 |
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| 147.50 ± 10.64(****) (¤¤¤¤)(“’) | 101.09 ± 11.07(****) (¤¤¤¤)(“’) | 38.79 ± 5.78 | 1.85 ± 0.58(*) (“) | 0.67 ± 0.30 | 5.10 ± 1.24 |
| 66.37 ± 21.58 | 6.29 ± 3.00 | 43.83 ± 7.92 | 10.01 ± 9.69 | 1.46 ± 1.26 | 4.77 ± 1.40 | |
| 91.02 ± 9.67 | 25.89 ± 8.57(*) | 57.40 ± 3.43(xx) | 1.58 ± 0.63 | 1.01 ± 0.38 | 5.15 ± 1.40 | |
160.50 ± 17.40(****) (¤¤¤¤)(“’) | 110.88 ± 14.66(****) (¤¤¤¤)(“’) | 37.40 ± 6.94 | 4.27 ± 1.75(*) (“) | 3.31 ± 1.05(¤) (“’) | 4.65 ± 0.97 | |
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| 47.92 ± 7.36 | 1.67 ± 0.46 | 42.05 ± 7.23 | 0.17 ± 0.09 | 0.19 ± 0.12 | 2.68 ± 0.51 |
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| 61.50 ± 9.22 | 25.57 ± 5.82(*) | 31.28 ± 3.61 | 1.05 ± 0.41 | 0.93 ± 0.27 | 3.48 ± 0.75 |
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| 191.33 ± 11.98(****) | 148.46 ± 9.74(****) | 32.55 ± 4.13 | 5.07 ± 2.26 | 1.77 ± 0.59 | 4.78 ± 0.93 |
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| 87.55 ± 7.706 | 10.94 ± 2.78 | 62.91 ± 4.77 | 0.36 ± 0.13 | 0.09 ± 0.09 | |
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| 72.238 ± 8.993 | 12.07 ± 5.46 | 50.56 ± 3.23 | 1.03 ± 0.98 | 0.10 ± 0.07 | |
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| 177.375 ± 16.756 | 120.54 ± 11.80 | 48.92 ± 5.75 | 1.23 ± 0.49 | 0.21 ± 0.15 | |
| Day 28 | ||||||
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| 51.10 ± 3.89 | 0.10 ± 0.05 | 47.09 ± 3.89 | 0.16 ± 0.08 | 0.19 ± 0.08 | 3.55 ± 0.75 |
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| 75.63 ± 13.40 | 1.68 ± 0.75(*) | 66.83 ± 12.12 | 0.04 ± 0.04 | 3.20 ± 0.77(*) | 3.88 ± 0.55 |
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| 50.20 ± 7.92 | 1.19 ± 0.84 | 42.50 ± 5.05 | 2.82 ± 2.64 | 1.03 ± 0.73 | 2.66 ± 0.88 |
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| 60.23 ± 8.02 | 1.05 ± 0.68 | 46.83 ± 2.83 | 7.90 ± 5.98 | 1.43 ± 0.80 | 3.02 ± 0.65 |
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| 48.85 ± 9.20 | 0.10 ± 0.07 | 39.18 ± 6.33 | 3.90 ± 2.76 | 2.42 ± 1.15(*) | 3.25 ± 0.90 |
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| 51.47 ± 11.08 | 0.13 ± 0.08 | 49.07 ± 10.53 | 0.02 ± 0.02 | 0.26 ± 0.09 | 2.00 ± 0.64 |
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| 61.75 ± 7.01 | 0.27 ± 0.12 | 63.01 ± 4.84 | 0.23 ± 0.17 | 0.59 ± 0.25 | 2.94 ± 0.72 |
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| 46.43 ± 8.56 | 0.68 ± 0.38(*) | 40.18 ± 7.73 | 0.14 ± 0.07 | 0.87 ± 0.37(*) | 4.56 ± 1.37 |
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| 60.67 ± 7.71 | 0.27 ± 0.19 | 54.98 ± 7.61 | 0.09 ± 0.06 | 0.47 ± 0.11 | 4.87 ± 0.88 |
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| 50.37 ± 6.07 | 0.21 ± 0.18 | 43.35 ± 6.67 | 0.08 ± 0.05 | 0.45 ± 0.27 | 6.27 ± 1.88 |
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| 81.85 ± 8.40(*) | 2.14 ± 0.92(**) | 70.53 ± 7.43 | 0.30 ± 0.30 | 4.12 ± 1.93(**) | 4.75 ± 0.43 |
| 61.01 ± 3.13 | 0.44 ± 0.22 | 46.46 ± 2.98 | 0.11 ± 0.05 | 0.60 ± 0.12 | ||
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| 58.26 ± 7.56 | 0.18 ± 0.07 | 45.83 ± 5.68 | 1.33 ± 0.78 | 1.27 ± 0.54 | |
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| 83.94 ± 10.64 | 1.86 ± 0.83 | 61.86 ± 6.29 | 0.28 ± 0.12 | 4.01 ± 1.25 | |
| Day 90 | ||||||
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| 54.03 ± 5.14 | 0.45 ± 0.16 | 45.23 ± 4.39 | 0.98 ± 0.91 | 3.57 ± 3.39 | 3.80 ± 0.74 |
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| 86.93 ± 8.78(**) | 2.07 ± 0.49(**) | 73.33 ± 6.72 | 0.09 ± 0.09 | 4.70 ± 1.79 | 6.75 ± 1.58 |
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| 62.75 ± 4.30 | 0.92 ± 0.33 | 56.68 ± 4.52 | 0.10 ± 0.10 | 1.30 ± 0.82 | 3.74 ± 0.39 |
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| 50.90 ± 7.07 | 0.92 ± 0.47 | 42.69 ± 5.78 | 0.14 ± 0.07 | 1.74 ± 1.40 | 5.42 ± 1.51 |
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| 48.42 ± 7.09 | 0.46 ± 0.18 | 45.11 ± 6.94 | 0.00 ± 0.00 | 0.38 ± 0.21 | 2.47 ± 0.44 |
aNIST1650 data was included for comparison and obtained from a previously published study (Kyjovska et al. Mutagenesis 2015)
P-value summary: (*) – (****) = p < 0.05 - p < 0.0001 increase compared to vehicle control, (x) – (xxxx) = p < 0.05 - p < 0.0001 increase compared to CB 54 μg, (¤) – (¤¤¤¤) = p < 0.05 - p < 0.0001 increase compared to NIST2975 of same dose, (‘) – (““) = p < 0.05 - p < 0.0001 increase compared to NIST1650 of same dose. Data are shown as Mean ± SEM (× 103)
BAL broncho-alveloar lavage, CAP commercial airport particles, JEP jet engine particles, CB carbon black Printex 90
Fig. 4Illustration of dose-response linearity between instilled doses of airport-collected particles, NIST2975, NIST1650 and neutrophil influx in BAL. Increasing dose-response effects were confirmed with test for linear trend, where the alerting R2 (referred to as R2) is the fraction of the variance between group means that is accounted for by the linear trend (Altman/Sheskin, provided by GraphPad Prism). Data for NIST1650 was obtained from a previously published study [19]. Significant linear trends were verified for total cell numbers (not shown) and neutrophils in BAL fluid, with R2 between 0.76 and 0.95
Fig. 5Neutrophil influx in BAL fluid on day 1, 28, and 90 following exposure to jet engine particles (JEP), commercial airport particles (CAP), and reference particles NIST2975, NIST1650, and Carbon black Printex90 (CB) (Tukey plots, +: mean, line: median, diamonds: outliers). Mice were exposed to 6, 18, and 54 μg of JEP and CAP, to 54 μg of CB, and to 18, 54, and 162 μg of NIST particles with 6 mice in each group. Data for NIST1650 was obtained from a previously published study [19]
Fig. 6mRNA levels of Saa3 in lung, Saa1 liver, and SAA3 plasma protein on day 1 (scatter plots, mean + SEM). Saa3 mRNA in lung tissue and Saa1 mRNA in liver tissue were used as biomarkers of pulmonary and hepatic acute phase response, following exposure to particles collected at the apron of a commercial airport and in a jet shelter at a non-commercial airfield. SAA3 protein was measured in plasma. Saa in lung and liver was measured on day 1, 28 and 90 post-exposure, and SAA3 on day 1 and on day 28 for highest particle doses
Fig. 7DNA strands break levels evaluated by tail length in the Comet assay on day 1, 28, and 90 following exposure to jet engine particles (JEP), commercial airport particles (CAP), and reference particles NIST2975, NIST1650, and carbon black Printex90 (CB) (scatter plots, mean + SEM). Mice were exposed to 6, 18, and 54 μg of JEP and CAP, to 54 μg of CB, and to 18, 54, and 162 μg of NIST particles. Data for NIST1650 was obtained from a previously published study [19]