Polymorphism of the VEGFA (rs2010963) gene and low-dose exposure to airborne nickel as modification factors of programmed cell death in the Far North residents
https://doi.org/10.47470/0016-9900-2026-105-7-793-799
EDN: mcyywi
Abstract
Introduction. Special relevance should be assigned to investigating a phenomenon of programmed cell death in working age population in the Far North exposed to airborne metals and sub-Arctic climate, with gene polymorphism taken into account.
Materials and methods. We examined adult participants (aged 21–59 years) who lived on territories with subarctic and continental type of climate with different levels of exposure to airborne nickel (n=525). Nickel levels were identified in blood using inductively coupled plasma mass spectrometry; cell death indicators AnnexinV-FITC+7AAD– and AnnexinV-FITC+7AAD+ – were established with flow cytometry; vascular endothelial growth factor VEGF, immune enzyme assay; IgE to nickel, allergosorbent tests; VEGFA (rs2010963) gene polymorphism, real-time PCR.
Results. The immune profile in adults living in the Far North under low-dose exposure to airborne nickel (1.36 ∙ 10-³ mg/(kg ∙ day); 0.12 average daily MPC) and with resulting nickel in blood (0.0123±0.0015 µg/cm³) was characterized with excess levels of AnnexinV-FITC+7AAD+ (R²=0.404–0.503; p=0.029–0.042) and IgE to nickel (R²=0.613; p=0.001). However, exposure to airborne nickel in sub-Arctic climate leads to relative risk RR=1.19 (1.03–1.36); p=0.005) for apoptosis inhibition per the level of AnnexinV-FITC+7AAD– (R²=0.723–0.786; p=0.001–0.016). This risk is associated with the minor C-allele and CC-genotype of the VEGFA (rs2010963) (OR=1.91 (1.03–3.55)–2.93 (1.31–6.57).
Limitations. The reference group samples are limited; the results should be verified in future research
Conclusion. Exposure to airborne nickel in the average daily dose of 1.36 ∙ 10–³ mg/(kg ∙ day), combined with the minor C-allele and CC-genotype of the VEGFA (rs2010963) induces changes in indices of cell death and the immune profile in adults in the Far North (declining AnnexinV-FITC+7AAD– levels, growing levels of VEGF and IgE to nickel). These genetic and immunological indices can be recommended as key ones in pre-nosologic diagnostics and disease prevention in the far North population.
Compliance with ethical standards. The study was accomplished in conformity with ethical standards stipulated by the Declaration of Helsinki and approved by the local ethics committee of the Federal Scientific Center for Medical and Preventive Health Risk Management Technologies (Meeting Report No. 4 dated April 20, 2025). All participants gave informed voluntary written consent to participate in the study.
Contributions:
Zaitseva N.V. – study concept and design;
Nikonoshina N.А. – data collection and analysis, writing the text;
Dolgikh О.V. – study concept and design, editing the text;
Alikina I.N., Kazakova О.А. – immunogenetic studies;
Chigvintsev V.М. – mathematical modeling.
All authors are responsible for the integrity of all parts of the manuscript and approval of the manuscript final version.
Conflict of interest. The authors declare no conflict of interest.
Funding. The study had no sponsorship.
Received: May 18, 2026 / Accepted: July 1, 2026 / Published: August 14, 2026
About the Authors
Nina V. ZaitsevaRussian Federation
DSc (Medicine), professor, academician of the Russian Academy of Sciences, Federal Scientific Center for Medical and Preventive Health Risk Management Technologies, Perm, 614045, Russian Federation
e-mail: znv@fcrisk.ru
Natalya A. Nikonoshina
Russian Federation
Researcher, Laboratory of immunology and allergology, Federal Scientific Center for Medical and Preventive Health Risk Management Technologies, Perm, 614045, Russian Federation
e-mail: nat08.11@yandex.ru
Oleg V. Dolgikh
Russian Federation
DSc (Medicine), Professor, head, Department of Immunobiological Diagnostic Methods, Federal Scientific Center for Medical and Preventive Health Risk Management Technologies, Perm, 614045, Russian Federation
e-mail: oleg@fcrisk.ru
Inga N. Alikina
Russian Federation
Researcher, Laboratory of cell diagnostic methods, Federal Scientific Center for Medical and Preventive Health Risk Management Technologies, Perm, 614045, Russian Federation
e-mail: alikina.in@mail.ru
Olga A. Kazakova
Russian Federation
PhD (Biology), senior researcher, head, Laboratory of Immunogenetics, Federal Scientific Center for Medical and Preventive Health Risk Management Technologies, 614045, Perm, Russian Federation
e-mail: chakina2011@yandex.ru
Vladimir M. Chigvintsev
Russian Federation
PhD, senior researcher, Laboratory of situational modeling and expert analytical management methods, Federal Scientific Center for Medical and Preventive Health Risk Management Technologies, Perm, 614045, Russian Federation
e-mail: cvm@fcrisk.ru
References
1. Rizwan M., Usman K., Alsafran M. Ecological impacts and potential hazards of nickel on soil microbes, plants, and human health. Chemosphere. 2024; 357: 142028. https://doi.org/10.1016/j.chemosphere.2024.142028 https://elibrary.ru/xiklcl
2. Begum W., Rai S., Banerjee S., Bhattacharjee S., Mondal M.H., Bhattarai A., et al. A comprehensive review on the sources, essentiality and toxicological profile of nickel. RSC Adv. 2022; 12(15): 9139–53. https://doi.org/10.1039/d2ra00378c https://elibrary.ru/whdrle
3. Yubolphan R., Phuagkhaopong S., Sangpairoj K., Sibmooh N., Power C., Vivithanaporn P. Intracellular nickel accumulation induces apoptosis and cell cycle arrest in human astrocytic cells. Metallomics. 2021; 13(1): mfaa006. https://doi.org/10.1093/mtomcs/mfaa006 https://elibrary.ru/utleiu
4. Wang Y., Mang X., Li X., Cai Z., Tan F. Cold atmospheric plasma induces apoptosis in human colon and lung cancer cells through modulating mitochondrial pathway. Front. Cell Dev. Biol. 2022; 10: 915785. https://doi.org/10.3389/fcell.2022.915785
5. Della Torre L., Beato A., Capone V., Carannante D., Verrilli G., Favale G., et al. Involvement of regulated cell deaths in aging and age-related pathologies. Ageing Res. Rev. 2024; 95: 102251. https://doi.org/10.1016/j.arr.2024.102251 https://elibrary.ru/ugpenk
6. Ajoolabady A., Pratico D., Bahijri S., Eldakhakhny B., Tuomilehto J., Wu F., et al. Hallmarks and mechanisms of cellular senescence in aging and disease. Cell Death Discov. 2025; 11(1): 364. https://doi.org/10.1038/s41420-025-02655-x https://elibrary.ru/lzpejd
7. Dianova D.G., Dolgih O.V., Kazakova O.A., Shirinkina A.S. Immune and genetic status in children residing in conditions of airogenic exposure to nickel. Gigiena i Sanitaria (Hygiene and Sanitation, Russian journal). 2025; 104(12): 1721–6. https://doi.org/10.47470/0016-9900-2025-104-12-1721-1726 https://elibrary.ru/ptnnbg (in Russian)
8. Antontseva E.V., Degtyareva A.O., Korbolina E.E., Damarov I.S., Merkulova T.I. Human-genome single nucleotide polymorphisms affecting transcription factor binding and their role in pathogenesis. Vavilovskii zhurnal genetiki i selektsii. 2023; 27(6): 662–75. https://doi.org/10.18699/VJGB-23-77 https://elibrary.ru/jdrpje (in Russian)
9. Aziz M.A., Uddin M.S., Millat M.S., Islam M.S. Vascular endothelial growth factor A (VEGFA) promoter rs2010963 polymorphism and cancer risk: An updated meta-analysis and trial sequential analysis. Meta Gene. 2022; 31: 101017. https://doi.org/10.1016/j.mgene.2022.101017 https://elibrary.ru/ertfsg
10. Shashkova E.Y., Shchegoleva L.S., Filippova O.E., Popovskaya E.V., Sergeeva T.B. Adaptive immune response in women from the Russian arctic region after Covid-19 infection. Ekologiya cheloveka. 2023; (11): 857–63. https://doi.org/10.17816/humeco624207 https://elibrary.ru/mfovun (in Russian)
11. Trotsenko A.A. The arctic climate impact on the non-specific resistance of the extreme north inhabitants. Rossiya v global’nom mire. 2016; (9): 211–8. https://elibrary.ru/ykpljz (in Russian)
12. Dolgikh O.V., Shirinkina A.S., Zaitseva N.V. Features of the immune and genetic profile in children suffering from diseases of the cardiovascular system associated with contamination of biological media with nickel and copper. Zdravookhranenie Rossiiskoi Federatsii. 2025; 69(1): 77–82. https://doi.org/10.47470/0044-197X-2025-69-1-77-82 https://elibrary.ru/ftunau (in Russian)
13. Kryuchkova E.N., Antoshina L.I., Sukhova A.V., Preobrazhenskaya E.A. Influence of factors of electroplating production on the immunoreactivity of the body of workers. Gigiena i Sanitaria (Hygiene and Sanitation, Russian journal). 2021; 100(9): 959–63. https://doi.org/10.47470/0016-9900-2021-100-9-959-963 https://elibrary.ru/casyft (in Russian)
14. Stavinskaya O.A. Apoptosis of monocytes in the conditions of the general cooling at persons with background monocytosis. Vestnik Ural‘skoi meditsinskoi akademicheskoi nauki. 2019; 16(2): 202–8. https://elibrary.ru/bmyzyb (in Russian)
15. Sharavieva I.L., Gein S.V. Influence of different kinds of stress on apoptosis of CD4+/CD8+ lymphocytes upon in vivo blockage of opiate receptors. Rossiiskii immunologicheskii zhurnal. 2021; 24(2): 203–8. https://doi.org/10.46235/1028-7221-1012-IOD https://elibrary.ru/tkofgh (in Russian)
16. Samoylenko E.S., Kolesnikova N.V., Baklay V.I., Maydannikova E.Yu., Omelchenko E.V. VEGF gene polymorphism in complicated infective endocarditis. Infektsiya i immunitet. 2022; 12(5): 938–46. https://doi.org/10.15789/2220-7619-VGP-1877 https://elibrary.ru/kntffn (in Russian)
17. Wang J.C., Chen S.Y., Wang M., Ko J.L., Wu C.L., Chen C.C., et al. Nickel-induced VEGF expression via regulation of Akt, ERK1/2, NFκB, and AMPK pathways in H460 cells. Environ. Toxicol. 2019; 34(5): 652–8. https://doi.org/10.1002/tox.22731
18. Guo Q., Dai S.B., Shen F., Yu D., Shen S.T., Zhang Q., et al. VEGF +405G/C (rs2010963) polymorphisms and digestive system cancer risk: a meta-analysis. Tumour. Biol. 2014; 35(5): 4977–82. https://doi.org/10.1007/s13277-014-1655-0 https://elibrary.ru/cukifx
19. Dolgikh O.V., Zaitseva N.V., Letyushev A.N., Chelakova Yu.A. Features of the polymorphism of the VEGFa g634c gene and the expression of the vasculodothelial growth receptor (CD304+) as risk factors for angiogenesis disorders in conditions of rare earth elements. Meditsina truda i promyshlennaya ekologiya. 2024; 64(7): 447–52. https://doi.org/10.31089/1026-9428-2024-64-7-447-452 https://elibrary.ru/kbrbff (in Russian)
20. Zhukova A.G., Kazitskaya A.S., Yadykina T.K., Panev N.I. Polymorphism of HIF-1A (rs11549465) and VEGFA (rs2010963) genes and the immune status in the dust lung pathology miners working at the coal enterprises in the south of Kuzbass. Gigiena i Sanitaria (Hygiene and Sanitation, Russian journal). 2021; 100(7): 683–7. https://doi.org/10.47470/0016-9900-2021-100-7-683-687 https://elibrary.ru/wsumfn (in Russian)
Review
For citations:
Zaitseva N.V., Nikonoshina N.A., Dolgikh O.V., Alikina I.N., Kazakova O.A., Chigvintsev V.M. Polymorphism of the VEGFA (rs2010963) gene and low-dose exposure to airborne nickel as modification factors of programmed cell death in the Far North residents. Hygiene and Sanitation. 2026;105(7):793-799. (In Russ.) https://doi.org/10.47470/0016-9900-2026-105-7-793-799. EDN: mcyywi
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