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Impact of air dust fractions on the immune system in patients with bronchopulmonary pathology

https://doi.org/10.36604/1998-5029-2023-88-27-34

Abstract

Introduction. The study of disorders that develop in the immune system under the influence of technogenic factors remains a very urgent problem.
Aim. To identify criteria for the impact of trigger dust fractions of the atmospheric air in Vladivostok (in the ranges: 0-1, 1-10, 10-50, 50-100, 100-400, 400-700, >700 microns) on the human immune system with respiratory diseases.
Materials and methods. The objects of the study were the fractional composition of suspended particulate matter (SPM) in the air of Vladivostok and the immune system of residents with bronchopulmonary pathology. The study included 320 people: patients with asthma − 112, chronic obstructive pulmonary disease (COPD) of a stable course − 107, healthy people − 101. Using the multiple correlation, the indicators characterizing the integral response of the immune system parameters to the impact of SPM were determined.
Results. The results obtained for the groups of subjects showed a difference in the number of factors of influence and immune responses to their influence. Dust fractions of the air form the greatest pathogenic effect in individuals with COPD. There is a negative reaction to all the studied dust fractions, however, the reaction of the immune system is maximum in the range from 0 to 100 microns (Nr =13, Dp %=0.13-0.19%). For the individuals with asthma, the maximum pathogenic effect is exerted by nanofractions of 0-1 μm (Nr =4, Dp =0.2%).
Conclusion. Dust fractions negatively affect the immune system of all studied cohorts of the population of Vladivostok. However, in the individuals with respiratory diseases, dust air pollution causes a more pronounced response of the immune system. 

About the Authors

E. V. Kondratyeva
Vladivostok Branch of Far Eastern Scientific Center of Physiology and Pathology of Respiration – Research Institute of Medical Climatology and Rehabilitative Treatment
Russian Federation

Elena V. Kondratyeva, PhD (Biol.), Staff Scientist, Laboratory of Medical Ecology and Recreational Resources 

73g Russkaya Str., Vladivostok, 690105



L. V. Veremchuk
Vladivostok Branch of Far Eastern Scientific Center of Physiology and Pathology of Respiration – Research Institute of Medical Climatology and Rehabilitative Treatment
Russian Federation

Lyudmila V. Veremchuk, PhD, DSc (Biol.), Leading Staff Scientist, Laboratory of Medical Ecology and Recreational Resources 

73g Russkaya Str., Vladivostok, 690105



T. I. Vitkina
Vladivostok Branch of Far Eastern Scientific Center of Physiology and Pathology of Respiration – Research Institute of Medical Climatology and Rehabilitative Treatment
Russian Federation

Tatiana I. Vitkina, PhD, DSc (Biol.), Professor of RAS, Head of Laboratory of Medical Ecology and Recreational Resources 

73g Russkaya Str., Vladivostok, 690105



References

1. Pisareva L.F., Ananina O.A., Odintsova I.N., Zhujkova L.D. [Urban pollution and population health: a review of literature]. Profilakticheskaya meditsina = The Russian Journal of Preventive Medicine 2016; 19(4):60−64 (in Russian). https://doi.org/10.17116/profmed201619460-64

2. Burnett R., Chen H., Szyszkowicz M., Fann N., Hubbell B., Pope C.A. 3rd, Apte J.S., Brauer M., Cohen A., Weichenthal S., Coggins J., Di Q., Brunekreef B., Frostad J., Lim S.S., Kan H., Walker K.D., Thurston G.D., Hayes R.B., Lim C.C., Turner M.C., Jerrett M., Krewski D., Gapstur S.M., Diver W.R., Ostro B., Goldberg D., Crouse D.L., Martin R.V., Peters P., Pinault L., Tjepkema M., van Donkelaar A., Villeneuve P.J., Miller A.B., Yin P., Zhou M., Wang L., Janssen N.A.H., Marra M., Atkinson R.W., Tsang H., Quoc Thach T., Cannon J.B., Allen R.T., Hart J.E., Laden F., Cesaroni G., Forastiere F., Weinmayr G., Jaensch A., Nagel G., Concin H., Spadaro J.V. Global estimates of mortality associated with long-term exposure to outdoor fine particulate matter. Proc. Natl Acad. Sci. USA 2018; 115(38):9592−9597. https://doi.org/10.1073/pnas.1803222115. PMID: 30181279; PMCID: PMC6156628.

3. Harrison R.M., Yin J. Particulate matter in the atmosphere: which particle properties are important for its effects on health? Sci. Total Environ. 2000; 249(1-3):85−101. https://doi.org/10.1016/s0048-9697(99)00513-6. PMID: 10813449.

4. Barskova L.S., Vitkina T.I., Gvozdenko T.A., Veremchuk L.V., Golokhvast K.S. Assessment of air pollution by small-sized suspended particulate matter in urbanized territories with various technogenic load (on the example of Vladivostok, Russia). Russian Open Medical Journal 2019; 8(3):e0304. https://doi.org/10.15275/rusomj.2019.0304

5. Barskova L.S., Vitkina T.I., Gvozdenko T.A., Kondratyeva E.V., Veremchuk L.V. Mechanism of Response of Alveolar Macrophages in Wistar Rats to the Composition of Atmospheric Suspensions. Atmosphere 2022; 13(9):1500. https://doi.org/10.3390/atmos13091500

6. Kajtmazova N.K. [Dynamics of immunity indicators in children with obstructive bronchitis]. Sovremennye voprosy biomeditsiny = Modern Issues of Biomedicine 2022; 6(1) (in Russian). https://doi.org/10.51871/2588-0500_2022_06_01_2

7. Potapnev M.P. [How immune system works. Part I. Mechanisms of innate immunity]. Zdravookhranenie = Healthcare (Minsk) 2020; (4):37−52 (in Russian).

8. Barskova L.S., Vitkina T.I., Veremchuk L.V., Gvozdenko T.A. [Assessment of the influence of the composition of atmospheric microparticles on redox homeostasis of alveolar macrophages]. Gigiena i Sanitaria = Hygiene and Sanitation 2022. 101(9):1004–1010 (in Russian). https://doi.org/10.47470/0016-9900-2022-101-9-1004-1010

9. Veremchuk L.V., Vitkina T.I., Mineeva E.E., Barskova L.S., Gvozdenko T.A. [Weather reactions in persons with respiratory diseases who lives in conditions of the marine climate of Vladivostok]. Gigiena i Sanitaria = Hygiene and Sanitation 2022; 101(12):1438−1442 (in Russian). https://doi.org/10.47470/0016-9900-2022-101-12-1438-1442

10. Golokhvast K., Vitkina T., Gvozdenko T., Kolosov V., Yankova V., Kondratieva E., Gorkavaya A., Nazarenko A., Chaika V., Romanova T., Karabtsov A., Perelman J., Kiku P., Tsatsakis A. Impact of Atmospheric Microparticles on the Development of Oxidative Stress in Healthy City/Industrial Seaport Residents. Oxid. Med. Cell. Longev. 2015; 2015:412173. https://doi.org/10.1155/2015/41217

11. Vitkina T.I., Yankova V.I., Gvozdenko T.A., Nazarenko A.V., Golokhvast K.S., Kuznetsov V.L., Krasnikov D.V., Chaika V.V., Smagin S.V., Tsatsakis A.M., Engin A.B., Karakitsios S.P., Sarigiannis D.A. The impact of multi-walled carbon nanotubes with different amount of metallic impurities on immunometabolic parameters in healthy volunteers. Food Chem. Toxicol. 2016; 87:138−147. https://doi.org/10.1016/j.fct.2015.11.023

12. Vitkina T.I., Sidletskaya K.A. [Diagnostic criteria for the progression of the chronic obstructive pulmonary disease under a high technogenic load]. Gigiena i Sanitaria = Hygiene and Sanitation 2020; 99(2):140−144 (in Russian). https://doi.org/10.47470/0016-9900-2020-99-2-140-144

13. Veremchuk L.V., Vitkina T.I., Barskova L.S, Gvozdenko T.A., Mineeva E.E. Estimation of the size distribution of suspended particulate matters in the urban atmospheric surface layer and its influence on bronchopulmonary pathology. Atmosphere 2021; 12(8):1010. https://doi.org/10.3390/atmos12081010

14. Golokhvast K.S., Khristoforova N.K., Kiku P.F., Gul'kov A.N. Granulometric and mineralogic analysis of suspended particles in the air. Bûlleten' fiziologii i patologii dyhaniâ = Bulletin Physiology and Pathology of Respiration 2011; (40):94−100 (in Russian).

15. Golokhvast K.S. [Urban atmospheric suspensions of the Russian Far East: monograph]. Vladivostok: Far Eastern Federal University; 2013 (in Russian). ISBN: 978-5-7444-3244-7

16. Grzywa-Celińska A, Krusiński A, Milanowski J. 'Smoging kills' - Effects of air pollution on human respiratory system. Ann. Agric. Environ. Med. 2020; 27(1):1−5. https://doi.org/10.26444/aaem/110477. PMID: 32208572.

17. Jacquet A. Characterization of Innate Immune Responses to House Dust Mite Allergens: Pitfalls and Limitations. Front. Allergy 2021; 2:662378. https://doi.org/10.3389/falgy.2021.662378. PMID: 35386970.

18. Shaw O.M., Sawyer G.M., Hurst R.D., Dinnan H., Martell S. Different immune and functional effects of urban dust and diesel particulate matter inhalation in a mouse model of acute air pollution exposure. Immunol. Cell Biol. 2021; 99(4):419−427. https://doi.org/10.1111/imcb.12425. PMID: 33169881.

19. Veremchuk L.V., Yankova V.I., Vitkina T.I., Nazarenko A.V., Golokhvast K.S. Urban air pollution, climate and its impact on asthma morbidity. Asian Pac. J. Trop. Biomed. 2016; 6(1):76–79. https://doi.org/10.1016/j.apjtb.2015.10.001

20. Veremchuk L.V., Mineeva E.E., Vitkina T.I., GvozdenkoT.A., Golokhvast K.S. Impact of atmospheric microparticles and heavymetals on external respiration function of urbanized territory population. Russian Open Medical Journal 2017; 6(4):e0402. https://doi.org/10.15275/rusomj.2017.0402

21. Dunn R.M., Busse P.J., Wechsler M.E. Asthma in the elderly and late-onset adult asthma. Allergy 2018; 73(2):284−294. https://doi.org/10.1111/all.13258. PMID: 28722758.

22. Nanda A., Baptist A.P., Divekar R., Parikh N., Seggev J.S., Yusin J.S., Nyenhuis S.M. Asthma in the older adult. J. Asthma 2020; 57(3):241−252. https://doi.org/10.1080/02770903.2019.1565828. PMID: 30656998.

23. Sun H., Sun C., Xiao W., Sun R. Tissue-resident lymphocytes: from adaptive to innate immunity. Cell. Mol. Immunol. 2019; 16(3):205−215. https://doi.org/10.1038/s41423-018-0192-y. PMID: 30635650.


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For citations:


Kondratyeva E.V., Veremchuk L.V., Vitkina T.I. Impact of air dust fractions on the immune system in patients with bronchopulmonary pathology. Bulletin Physiology and Pathology of Respiration. 2023;(88):27-34. (In Russ.) https://doi.org/10.36604/1998-5029-2023-88-27-34

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ISSN 1998-5029 (Print)