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Year 2024, Volume: 7 Issue: 2, 86 - 95, 04.01.2025

Abstract

Project Number

1

References

  • Aileen Yang, Aleksanta Jedynsaka,2013, Measurement of the oxidation Potential of P.M2.5 and its constituents: the effect of extraction solvent and filter type.Science direct volume 83; page 35-42.
  • Bates, J.T.; Fang, T.; Verma, V.; Zeng, L.; Weber, R.J.; Tolbert, P.E.; Abrams, J.Y.; Sarnat,S.E.;Klein, M.; Mulholland, J.A., 2019, Review of Acellular Assays of Ambient Particulate Matter Oxidative Potential: Methods and Relationships with Composition, Sources, and Health Effects. Environ. Sci. Technol., 53, 4003–4019.
  • Bollati, V.; Marinelli, B.; Apostoli, P.; Bonzini, M.; Nordio, F.; Hoxha, M.; Pegoraro, V.; Motta, V.; Tarantini, L.; Cantone, L.; Schwartz, J.; Bertazzi, P. A.; Baccarelli, A.2010,. Exposure to metal-rich particulate matter modifies the expression of candidate microRNAs in peripheral blood leukocytes. Environ. Health Perspect. 118 (6), 763−768.
  • Bradshaw, M.P.; Barril, C.; Clark, A.; Prenzler, P.D.; Scollary, G.R. Ascorbic Acid,2011, A
  • Review of its Chemistry and Reactivity in Relation to a Wine Environment. Crit. Rev. Food Sci. Nutr. 51, 479–498.
  • Dikalov, S.; Skatchkov, M.; Bassenge, E., 1997, Quantification of Peroxynitrite, Superoxide, and Peroxyl Radicals by a New Spin Trap Hydroxylamine 1-Hydroxy-2,2,6,6-tetramethyl-4-oxo-piperidine. Biochem. Biophys. Res. Commun., 230, 54–57.
  • Elena Conle, Silvia Canepari, Daniel Franscca and Cilia Simonelti. ,2017, Oxidative Potential of selected Particulate Matter components; Proceedings MDPI.
  • Fuller, S.; Wragg, F.; Nutter, J.; Kalberer, M. ,2014,. Comparison of on-line and off-line methods to quantify reactive oxygen species (ROS) in atmospheric aerosols. Atmos. Environ. 92, 97–103.
  • Gao, D.; Pollitt, K.J.G.; Mulholland, J.A.; Russell, A.G.; Weber, R.J.,2020,. Characterization and comparison of PM2.5 oxidative potential assessed by two acellular assays. Atmos. Chem. Phys. Discuss. 20, 5197–5210.
  • Godri, K.J.; Duggan, S.T.; Fuller, G.W.; Baker, T.; Green, D.; Kelly, F.J.; Mudway, I.S.,2009,Particulate Matter Oxidative Potential from Waste Transfer Station Activity. Environ. Health Perspect. 118, 493–498.
  • Janssen, N.A.; Yang, A.; Strak, M.; Steenhof, M.; Hellack, B.; Gerlofs-Nijland, M.E.; Kuhlbusch, T.; Kelly, F.; Harrison, R.; Brunekreef, B. 2014.Oxidative potential of particulate matter collected at sites with different source characteristics. Sci. Total. Environ., 472, 572–581.
  • Lanfang Rao , Luying Zhang , Xingzi Wang , Tingting Xie , Shumin Zhou , Senlin Lu ,* , Xinchun Liu ,*, Hui Lu , Kai Xiao , Weiqian Wang and Qingyue Wang . 2020,. Oxidative Potential Induced by Ambient Particulate Matters with Acellular Assays: A Review.Processes.MDPI.
  • Lyu, Y.; Guo, H.; Cheng, T.; Li, X., 2018,. Particle Size Distributions of Oxidative Potential of Lung-Deposited Particles: Assessing Contributions from Quinones and Water-Soluble Metals. Environ. Sci. Technol., 52, 6592–6600.
  • Lu, S.; Duffin, R.; Poland, C.; Daly, P.; Murphy, F.; Drost, E.; MacNee, W.; Stone, V.; Donaldson, K.,2009,. Efficacy of Simple Short-Term in Vitro Assays for Predicting the Potential of Metal Oxide Nanoparticles to Cause Pulmonary Inflammation. Environ. Health Perspect., 117, 241–247.
  • Perrone, M.G.; Zhou, J.; Malandrino, M.; Sangiorgi, G.; Rizzi, C.; Ferrero, L.; Dommen, J.; Bolzacchini, E. ,2016, PM chemical composition and oxidative potential of the soluble fraction of particles at two sites in the urban area of Milan, Northern Italy. Atmos. Environ., 128, 104–113.
  • Shi, T.; Schins, R.P.F.; Knaapen, A.M.; Kuhlbusch, T.; Pitz, M.; Heinrich, J.; Borm, P.J.A.,
  • 2003, Hydroxyl radical generation by electron paramagnetic resonance as a new method to monteristics. Science of the total Environment, volume 477,15 tech Pg.572-581. httpitor ambient particulate matter composition. J. Environ. Monit., 5, 550–556.
  • Shi, T.; Knaapen, A.; Begerow, J.; Birmili, W.; Borm, P.; Schins, R.P.F.,2003, Temporal variation of hydroxyl radical generation and 8-hydroxy-20-deoxyguanosine formation by coarse and fine particulate matter. Occup.Environ. Med., 60, 315–321.
  • Tong, H.; Lakey, P.S.J.; Arangio, A.M.; Socorro, J.; Shen, F.; Lucas, K.; Brune, W.H.; Pöschl, U.; Shiraiwa, M.,2018, Reactive Oxygen Species Formed by Secondary Organic Aerosols in Water and Surrogate Lung Fluid. Environ. Sci. Technol., 52, 11642–11651.
  • Vishal Verma, Roberto Rico-Martinez, Neel kotra,Laura King , Jibimeng Liu, Terry W., Snell. And Rodney , weber. ,2012, Contribution of water-soluble and insoluble components and their hydrophobic / hydrophilic subfractions to the Reactive oxygen species –Generating
  • Potential of fine Ambient Aerosol . Environmental Science and Technology. https://doi.org/10.1021/es302484r. ACS.
  • Vishal Verma, Constantinos Sioutas and Rodney J. Weber .,2018, Oxidative Properties of Ambient Particulate matter-An Assessment of the Relative contributions from various Aerosol components and their Emission sources. America Society Journal Chpt. 19, pp 389-416. Multiphase Environmental Chemistry .Atmosphere. Doi:10.1021/bk--1299.ch019.
  • Weichenthal, S.; Shekarrizfard, M.; Traub, A.; Kulka, R.; Al-Rijleh, K.; Anowar, S.; Evans, G.J.;
  • Hatzopoulou, M., 2019,Within-City Spatial Variations in Multiple Measures of PM2.5 OxidativePotential in Toronto, Canada. Environ. Sci. Technol., 53, 2799–2810.
  • Xiong, Q.; Yu, H.; Wang, R.; Wei, J.; Verma, V., 2017, Rethinking Dithiothreitol-Based Particulate Matter Oxidative Potential: Measuring Dithiothreitol Consumption versus Reactive Oxygen Species Generation. Environ. Sci. Technol., 51, 6507–6514.
  • Zielinski, H.; Mudway, I.S.; Bérubé, K.; Murphy, S.; Richards, R.; Kelly, F.J.,1999,Modeling the interactions of particulates with epithelial lining fluid antioxidants. Am. J.Physiol. Content,277,L719–L726.
  • Zomer, B.; Collé, L.; Jedyn´ska, A.; Pasterkamp, G.; Kooter, I.; Bloemen, H.,2011, Chemiluminescent reductive acridinium triggering (CRAT)—Mechanism and applications. Anal. Bioanal. Chem., 401, 2945–2954.

Analytical Methods for Oxidative Potential in Trace Elements Bound To Particulates Samples Collected From Urban Locations And Human Health Effects. A Review

Year 2024, Volume: 7 Issue: 2, 86 - 95, 04.01.2025

Abstract

The development and optimization of new methods for the determination of oxidation potential of elements, especially in trace elements bound to airborne particulate in urban centres, have been challenge to analytical chemists. In this work, the analytical techniques for the determination of the oxidation potential in trace elements bound to airborne particulate in urban centres was systematically reviewed using PubMed and Web of science databases. Techniques to determine oxidative potential are ascorbic acid, Electron paramagnetic resonance, Dithiothreitol, Chemiluminescent Reductive Acridinium Triggering, and Dichlorofluorescin. The sensitivity of assays to different kinds of Particulate Matter particularly redox active metals and its health effects were reviewed.

Project Number

1

Thanks

THANK YOU

References

  • Aileen Yang, Aleksanta Jedynsaka,2013, Measurement of the oxidation Potential of P.M2.5 and its constituents: the effect of extraction solvent and filter type.Science direct volume 83; page 35-42.
  • Bates, J.T.; Fang, T.; Verma, V.; Zeng, L.; Weber, R.J.; Tolbert, P.E.; Abrams, J.Y.; Sarnat,S.E.;Klein, M.; Mulholland, J.A., 2019, Review of Acellular Assays of Ambient Particulate Matter Oxidative Potential: Methods and Relationships with Composition, Sources, and Health Effects. Environ. Sci. Technol., 53, 4003–4019.
  • Bollati, V.; Marinelli, B.; Apostoli, P.; Bonzini, M.; Nordio, F.; Hoxha, M.; Pegoraro, V.; Motta, V.; Tarantini, L.; Cantone, L.; Schwartz, J.; Bertazzi, P. A.; Baccarelli, A.2010,. Exposure to metal-rich particulate matter modifies the expression of candidate microRNAs in peripheral blood leukocytes. Environ. Health Perspect. 118 (6), 763−768.
  • Bradshaw, M.P.; Barril, C.; Clark, A.; Prenzler, P.D.; Scollary, G.R. Ascorbic Acid,2011, A
  • Review of its Chemistry and Reactivity in Relation to a Wine Environment. Crit. Rev. Food Sci. Nutr. 51, 479–498.
  • Dikalov, S.; Skatchkov, M.; Bassenge, E., 1997, Quantification of Peroxynitrite, Superoxide, and Peroxyl Radicals by a New Spin Trap Hydroxylamine 1-Hydroxy-2,2,6,6-tetramethyl-4-oxo-piperidine. Biochem. Biophys. Res. Commun., 230, 54–57.
  • Elena Conle, Silvia Canepari, Daniel Franscca and Cilia Simonelti. ,2017, Oxidative Potential of selected Particulate Matter components; Proceedings MDPI.
  • Fuller, S.; Wragg, F.; Nutter, J.; Kalberer, M. ,2014,. Comparison of on-line and off-line methods to quantify reactive oxygen species (ROS) in atmospheric aerosols. Atmos. Environ. 92, 97–103.
  • Gao, D.; Pollitt, K.J.G.; Mulholland, J.A.; Russell, A.G.; Weber, R.J.,2020,. Characterization and comparison of PM2.5 oxidative potential assessed by two acellular assays. Atmos. Chem. Phys. Discuss. 20, 5197–5210.
  • Godri, K.J.; Duggan, S.T.; Fuller, G.W.; Baker, T.; Green, D.; Kelly, F.J.; Mudway, I.S.,2009,Particulate Matter Oxidative Potential from Waste Transfer Station Activity. Environ. Health Perspect. 118, 493–498.
  • Janssen, N.A.; Yang, A.; Strak, M.; Steenhof, M.; Hellack, B.; Gerlofs-Nijland, M.E.; Kuhlbusch, T.; Kelly, F.; Harrison, R.; Brunekreef, B. 2014.Oxidative potential of particulate matter collected at sites with different source characteristics. Sci. Total. Environ., 472, 572–581.
  • Lanfang Rao , Luying Zhang , Xingzi Wang , Tingting Xie , Shumin Zhou , Senlin Lu ,* , Xinchun Liu ,*, Hui Lu , Kai Xiao , Weiqian Wang and Qingyue Wang . 2020,. Oxidative Potential Induced by Ambient Particulate Matters with Acellular Assays: A Review.Processes.MDPI.
  • Lyu, Y.; Guo, H.; Cheng, T.; Li, X., 2018,. Particle Size Distributions of Oxidative Potential of Lung-Deposited Particles: Assessing Contributions from Quinones and Water-Soluble Metals. Environ. Sci. Technol., 52, 6592–6600.
  • Lu, S.; Duffin, R.; Poland, C.; Daly, P.; Murphy, F.; Drost, E.; MacNee, W.; Stone, V.; Donaldson, K.,2009,. Efficacy of Simple Short-Term in Vitro Assays for Predicting the Potential of Metal Oxide Nanoparticles to Cause Pulmonary Inflammation. Environ. Health Perspect., 117, 241–247.
  • Perrone, M.G.; Zhou, J.; Malandrino, M.; Sangiorgi, G.; Rizzi, C.; Ferrero, L.; Dommen, J.; Bolzacchini, E. ,2016, PM chemical composition and oxidative potential of the soluble fraction of particles at two sites in the urban area of Milan, Northern Italy. Atmos. Environ., 128, 104–113.
  • Shi, T.; Schins, R.P.F.; Knaapen, A.M.; Kuhlbusch, T.; Pitz, M.; Heinrich, J.; Borm, P.J.A.,
  • 2003, Hydroxyl radical generation by electron paramagnetic resonance as a new method to monteristics. Science of the total Environment, volume 477,15 tech Pg.572-581. httpitor ambient particulate matter composition. J. Environ. Monit., 5, 550–556.
  • Shi, T.; Knaapen, A.; Begerow, J.; Birmili, W.; Borm, P.; Schins, R.P.F.,2003, Temporal variation of hydroxyl radical generation and 8-hydroxy-20-deoxyguanosine formation by coarse and fine particulate matter. Occup.Environ. Med., 60, 315–321.
  • Tong, H.; Lakey, P.S.J.; Arangio, A.M.; Socorro, J.; Shen, F.; Lucas, K.; Brune, W.H.; Pöschl, U.; Shiraiwa, M.,2018, Reactive Oxygen Species Formed by Secondary Organic Aerosols in Water and Surrogate Lung Fluid. Environ. Sci. Technol., 52, 11642–11651.
  • Vishal Verma, Roberto Rico-Martinez, Neel kotra,Laura King , Jibimeng Liu, Terry W., Snell. And Rodney , weber. ,2012, Contribution of water-soluble and insoluble components and their hydrophobic / hydrophilic subfractions to the Reactive oxygen species –Generating
  • Potential of fine Ambient Aerosol . Environmental Science and Technology. https://doi.org/10.1021/es302484r. ACS.
  • Vishal Verma, Constantinos Sioutas and Rodney J. Weber .,2018, Oxidative Properties of Ambient Particulate matter-An Assessment of the Relative contributions from various Aerosol components and their Emission sources. America Society Journal Chpt. 19, pp 389-416. Multiphase Environmental Chemistry .Atmosphere. Doi:10.1021/bk--1299.ch019.
  • Weichenthal, S.; Shekarrizfard, M.; Traub, A.; Kulka, R.; Al-Rijleh, K.; Anowar, S.; Evans, G.J.;
  • Hatzopoulou, M., 2019,Within-City Spatial Variations in Multiple Measures of PM2.5 OxidativePotential in Toronto, Canada. Environ. Sci. Technol., 53, 2799–2810.
  • Xiong, Q.; Yu, H.; Wang, R.; Wei, J.; Verma, V., 2017, Rethinking Dithiothreitol-Based Particulate Matter Oxidative Potential: Measuring Dithiothreitol Consumption versus Reactive Oxygen Species Generation. Environ. Sci. Technol., 51, 6507–6514.
  • Zielinski, H.; Mudway, I.S.; Bérubé, K.; Murphy, S.; Richards, R.; Kelly, F.J.,1999,Modeling the interactions of particulates with epithelial lining fluid antioxidants. Am. J.Physiol. Content,277,L719–L726.
  • Zomer, B.; Collé, L.; Jedyn´ska, A.; Pasterkamp, G.; Kooter, I.; Bloemen, H.,2011, Chemiluminescent reductive acridinium triggering (CRAT)—Mechanism and applications. Anal. Bioanal. Chem., 401, 2945–2954.
There are 27 citations in total.

Details

Primary Language English
Subjects Air Pollution Modelling and Control
Journal Section Articles
Authors

Andrew Olafusi 0009-0002-6099-0571

Emmanuel Olumayede 0000-0002-9554-2261

Project Number 1
Publication Date January 4, 2025
Submission Date December 24, 2023
Acceptance Date January 3, 2025
Published in Issue Year 2024 Volume: 7 Issue: 2

Cite

APA Olafusi, A., & Olumayede, E. (2025). Analytical Methods for Oxidative Potential in Trace Elements Bound To Particulates Samples Collected From Urban Locations And Human Health Effects. A Review. International Journal of Environmental Pollution and Environmental Modelling, 7(2), 86-95.
AMA Olafusi A, Olumayede E. Analytical Methods for Oxidative Potential in Trace Elements Bound To Particulates Samples Collected From Urban Locations And Human Health Effects. A Review. Int. j. environ. pollut. environ. model. January 2025;7(2):86-95.
Chicago Olafusi, Andrew, and Emmanuel Olumayede. “Analytical Methods for Oxidative Potential in Trace Elements Bound To Particulates Samples Collected From Urban Locations And Human Health Effects. A Review”. International Journal of Environmental Pollution and Environmental Modelling 7, no. 2 (January 2025): 86-95.
EndNote Olafusi A, Olumayede E (January 1, 2025) Analytical Methods for Oxidative Potential in Trace Elements Bound To Particulates Samples Collected From Urban Locations And Human Health Effects. A Review. International Journal of Environmental Pollution and Environmental Modelling 7 2 86–95.
IEEE A. Olafusi and E. Olumayede, “Analytical Methods for Oxidative Potential in Trace Elements Bound To Particulates Samples Collected From Urban Locations And Human Health Effects. A Review”, Int. j. environ. pollut. environ. model., vol. 7, no. 2, pp. 86–95, 2025.
ISNAD Olafusi, Andrew - Olumayede, Emmanuel. “Analytical Methods for Oxidative Potential in Trace Elements Bound To Particulates Samples Collected From Urban Locations And Human Health Effects. A Review”. International Journal of Environmental Pollution and Environmental Modelling 7/2 (January 2025), 86-95.
JAMA Olafusi A, Olumayede E. Analytical Methods for Oxidative Potential in Trace Elements Bound To Particulates Samples Collected From Urban Locations And Human Health Effects. A Review. Int. j. environ. pollut. environ. model. 2025;7:86–95.
MLA Olafusi, Andrew and Emmanuel Olumayede. “Analytical Methods for Oxidative Potential in Trace Elements Bound To Particulates Samples Collected From Urban Locations And Human Health Effects. A Review”. International Journal of Environmental Pollution and Environmental Modelling, vol. 7, no. 2, 2025, pp. 86-95.
Vancouver Olafusi A, Olumayede E. Analytical Methods for Oxidative Potential in Trace Elements Bound To Particulates Samples Collected From Urban Locations And Human Health Effects. A Review. Int. j. environ. pollut. environ. model. 2025;7(2):86-95.
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