Literature DB >> 31179118

Different metrics (number, surface area, and volume concentration) of urban particles with varying sizes in relation to fractional exhaled nitric oxide (FeNO).

Jicheng Gong1,2, Tong Zhu1,2, Min Hu1,2, Zhijun Wu2, Junfeng Jim Zhang2,3,4.   

Abstract

BACKGROUND: There have been increasing concerns on potential health effects of ultrafine particles (UFP); but little is known as to what are the most biologically relevant metrics for these particles that make up very little mass concentration. We examined a range of particle metrics (number, surface area, active surface area, and volume concentration) in relation to fractional exhaled nitric oxide (FeNO), a well-established biomarker of pulmonary inflammation.
METHODS: We conducted a panel study in 17 non-asthmatic children who attended schools and resided near a monitoring site at which particles in the size range of 3-800 nm were measured using a TDMPS and particles in the size range of 0.5 to 10 µm were measured using an APS. Particles were classified by size into the nucleation, Aitken, accumulation, or coarse mode, respectively, for calculating mode-specific number, surface area, active surface area, and volume concentrations. Each participating child was measured for FeNO daily for 30 days. We used linear mixed-effects models to assess the associations between various particle metrics and FeNO.
RESULTS: In terms of number concentration, ambient particles in the Aitken mode and in the accumulation mode were significantly and positively associated with FeNO; but particles in the nucleation mode were significantly and negatively associated with FeNO. Moreover, UFP as a lump sum of both nucleation-mode and Aikten-mode particles did not show a significant association with FeNO. In terms of surface area concentration, ambient particles only in the accumulation mode were significantly and positively associated with FeNO. In terms of volume concentration, ambient particles in both the accumulation mode and the coarse mode were significantly and positively associated with FeNO. Analyses of the relationships between FeNO and metrics for particles deposited in the respiratory tract generated consistent findings, showing a negative association for the number concentration of deposited particles (driven by nucleation-mode particles), a positive association for the surface area concentration of deposited particles (driven by accumulation-mode particles), and a positive association for the volume concentration of deposited particles (driven by accumulation-mode and coarse-mode particles).
CONCLUSIONS: Particles contributing largely to the surface area concentration and/or the volume concentration of ambient particles or particles deposited in the respiratory tract had a significant positive association with pulmonary inflammation. Nucleation-mode particles, that have large number concentrations but contribute little to the surface area or volume concentration of ambient or deposited particles, had a significant negative association with FeNO. This may indicate a different biological process or may simply be due to the negative and strong correlation between nucleation-mode and accumulation-mode particles. Given that particles in different modes may have different biological actions, measuring UFP as a whole may not necessarily be useful from a biological effect standpoint.

Entities:  

Keywords:  Nanoparticles; fractional exhaled nitric oxide (FeNO); particulate matter; ultrafine particles

Year:  2019        PMID: 31179118      PMCID: PMC6531744          DOI: 10.21037/jtd.2019.03.90

Source DB:  PubMed          Journal:  J Thorac Dis        ISSN: 2072-1439            Impact factor:   2.895


  32 in total

1.  Air pollution is associated with increased level of exhaled nitric oxide in nonsmoking healthy subjects.

Authors:  J G Van Amsterdam; B P Verlaan; H Van Loveren; B G Elzakker; S G Vos; A Opperhuizen; P A Steerenberg
Journal:  Arch Environ Health       Date:  1999 Sep-Oct

2.  Traffic-related air pollution affects peak expiratory flow, exhaled nitric oxide, and inflammatory nasal markers.

Authors:  P A Steerenberg; S Nierkens; P H Fischer; H van Loveren; A Opperhuizen; J G Vos; J G van Amsterdam
Journal:  Arch Environ Health       Date:  2001 Mar-Apr

3.  Association between air pollution exposure and exhaled nitric oxide in an elderly population.

Authors:  G Adamkiewicz; S Ebelt; M Syring; J Slater; F E Speizer; J Schwartz; H Suh; D R Gold
Journal:  Thorax       Date:  2004-03       Impact factor: 9.139

4.  ATS/ERS recommendations for standardized procedures for the online and offline measurement of exhaled lower respiratory nitric oxide and nasal nitric oxide, 2005.

Authors: 
Journal:  Am J Respir Crit Care Med       Date:  2005-04-15       Impact factor: 21.405

5.  Role of inducible nitric-oxide synthase in regulation of whole-cell current in lung epithelial cells.

Authors:  B Kamosinska; A Radomski; S F Man; M W Radomski; M Duszyk
Journal:  J Pharmacol Exp Ther       Date:  2000-11       Impact factor: 4.030

Review 6.  Exhaled nitric oxide: a novel biomarker of adverse respiratory health effects in epidemiological studies.

Authors:  J G van Amsterdam; S Nierkens; S G Vos; A Opperhuizen; H van Loveren; P A Steerenberg
Journal:  Arch Environ Health       Date:  2000 Nov-Dec

7.  Epithelial inducible nitric oxide synthase activity is the major determinant of nitric oxide concentration in exhaled breath.

Authors:  C Lane; D Knight; S Burgess; P Franklin; F Horak; J Legg; A Moeller; S Stick
Journal:  Thorax       Date:  2004-09       Impact factor: 9.139

8.  The pulmonary toxicology of ultrafine particles.

Authors:  Ken Donaldson; David Brown; Anna Clouter; Rodger Duffin; William MacNee; Louise Renwick; Lang Tran; Vicki Stone
Journal:  J Aerosol Med       Date:  2002

9.  Ultrafine particles in the urban air: to the respiratory tract--and beyond?

Authors:  Günter Oberdörster; Mark J Utell
Journal:  Environ Health Perspect       Date:  2002-08       Impact factor: 9.031

10.  Measurement of offline exhaled nitric oxide in a study of community exposure to air pollution.

Authors:  J Q Koenig; K Jansen; T F Mar; T Lumley; J Kaufman; C A Trenga; J Sullivan; L-J S Liu; G G Shapiro; T V Larson
Journal:  Environ Health Perspect       Date:  2003-10       Impact factor: 9.031

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1.  Outdoor Endurance Training with Air Pollutant Exposure Versus Sedentary Lifestyle: A Comparison of Airway Immune Responses.

Authors:  Juliana de Melo Batista Dos Santos; Roberta Foster; Anne-Charlotte Jonckheere; Marcelo Rossi; Luiz Antonio Luna Junior; Catherine Machado Katekaru; Matheus Cavalcante de Sá; Lucas Guimarães Pagani; Francine Maria de Almeida; Jônatas do Bussador Amaral; Rodolfo de Paula Vieira; Andre Luis Lacerda Bachi; Dominique Magdalena A Bullens; Mauro Vaisberg
Journal:  Int J Environ Res Public Health       Date:  2019-11-12       Impact factor: 3.390

2.  Evaluation of the Relationship between Fractional Exhaled Nitric Oxide (FeNO) with Indoor PM10, PM2.5 and NO2 in Suburban and Urban Schools.

Authors:  Khairul Nizam Mohd Isa; Juliana Jalaludin; Saliza Mohd Elias; Norlen Mohamed; Jamal Hisham Hashim; Zailina Hashim
Journal:  Int J Environ Res Public Health       Date:  2022-04-11       Impact factor: 4.614

3.  The Effects of Indoor Pollutants Exposure on Allergy and Lung Inflammation: An Activation State of Neutrophils and Eosinophils in Sputum.

Authors:  Khairul Nizam Mohd Isa; Zailina Hashim; Juliana Jalaludin; Leslie Thian Lung Than; Jamal Hisham Hashim
Journal:  Int J Environ Res Public Health       Date:  2020-07-28       Impact factor: 3.390

  3 in total

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