1. Ibrayeva D, Bakhtin M, Kashkinbayev Y, Kazymbet P, et al. (2020) radiation situation in the territories affected by mining activities in stepnogorsk areas, republic of Kazakhstan: Pilot study. Radiation Protection Dosimetry, 189(4): 517-526. [ DOI:10.1093/rpd/ncaa068] 2. Kashkinbayev Y, Kazymbet P, Bakhtin M., Khazipova A, et al. (2023). Indoor Radon Survey in Aksu School and Kindergarten Located near Radioactive Waste Storage Facilities and Gold Mines in Northern Kazakhstan (Akmola Region). Atmosphere, 14(7): 1133. [ DOI:10.3390/atmos14071133] 3. Saifulina A, Janabayev D, Kashkinbayev Y, Shokabaeva A, et al. (2023) Epidemiology of somatic diseases and risk factors in the population living in the zone of influence of uranium mining enterprises of Kazakhstan: A pilot study. Healthcare (Basel, Switzerland), 11(6): 804. [ DOI:10.3390/healthcare11060804] 4. Available online: https://ir-esg.kazatomprom.kz/ru/development/human-capital (accessed on 13 September 2023). 5. Rump A., Eder S, Lamkowski A, Hermann C, et al. (2019) A quantitative comparison of the chemo- and radiotoxicity of uranium at different enrichment grades. Toxicology letters, 313: 159-168. [ DOI:10.1016/j.toxlet.2019.07.004] 6. Aumalikova M, Bakhtin M, Кazymbet P, Zhumadilov K, et al. (2020). Site-specific concentration of uranium in urine of workers of the hydrometallurgical plant of Stepnogorsk mining and chemical combine. Radiation and Environmental Biophysics, 59(4): 703-710. [ DOI:10.1007/s00411-020-00874-7] 7. Ngan Thy T, Thich N, Cung N, Phuong Dung T, et al. (2024) Assessment of radiological risk due to radioactive contamination in the air for different types of laboratories in Ho Chi Minh City, Vietnam. Int J Radiat Res, 22(3): 551-557. [ DOI:10.61186/ijrr.22.3.557] 8. Janavayev DJ, Kashkinbayev YT, Ilbekova KB, Saifulina YA, et al. (2019) Health status of the population living in the zone of influence of radioactive waste repositories. Electronic J General Medicine, 16(6): em176. [ DOI:10.29333/ejgm/115852] 9. Vellingiri B (2023) A deeper understanding about the role of uranium toxicity in neurodegeneration. Environmental Research, 233: 116430. [ DOI:10.1016/j.envres.2023.116430] 10. Lestaevel P, Grison S, Favé G, Elie C, et al. (2016). Assessment of the Central Effects of Natural Uranium via Behavioural Performances and the Cerebrospinal Fluid Metabolome. Neural Plasticity, 2016: 9740353. [ DOI:10.1155/2016/9740353] 11. Kempf SJ, Janik D, Barjaktarovic Z, Braga-Tanaka I, et al. (2016) Chronic low-dose-rate ionising radiation affects the hippocampal phosphoproteome in the ApoE-/- Alzheimer's mouse model. Oncotarget, 7(44): 71817-71832. [ DOI:10.18632/oncotarget.12376] 12. Saint-Marc B, Elie C, Manens L, Tack K, et al. (2016) Chronic uranium contamination alters spinal motor neuron integrity via modulation of SMN1 expression and microglia recruitment. Toxicology letters, 254: 37-44. [ DOI:10.1016/j.toxlet.2016.05.004] 13. Legrand M, Lam S, Anselme I, Gloaguen C, et al. (2016) Exposure to depleted uranium during development affects neuronal differentiation in the hippocampal dentate gyrus and induces depressive-like behavior in offspring. Neurotoxicology, 57: 153-162. [ DOI:10.1016/j.neuro.2016.09.006] 14. Zhang Y, Ou G, Li Q, Ma S, Du L (2022) Treatment strategies for radiation-induced brain injury. Int J Radiat Res, 20(4):727-736. 15. Koterov AN, Ushenkova LN, Zubenkova ES Zubenkova ES, et al. (2018) Correlation of ages of main laboratory animals (mice, rats, hamsters and dogs) and humans: relevance for the problem of age-related radiosensitivity and analysis of published data. Medical Radiology and Radiation Safety (1): 5-27. [ DOI:10.12737/article_5a82e4a3908213.56647014] 16. Saifulina Y, Toklayeva S, Sharipov M, Medethan R, et al. (2019). Distribution of uranium in the internal organs of laboratory animals after incorporation of uranium ore dust. BIO Web Conf. 14 05015. [ DOI:10.1051/bioconf/20191405015] 17. Moiseev AA and Ivanov VI (1984) Handbook of dosimetry and radiation hygiene. Energoatomizdat. Moscow. 18. Severyukhin YS, Lalkovičová M, Utina DM, Lyakhova KN, et al. (2023) Comparative analysis of behavioral reactions and morphological changes in the rat brain after exposure to ionizing radiation with different physical characteristics. Cellular and Molecular Neurobiology, 43(1): 339-353. [ DOI:10.1007/s10571-021-01187-z] 19. Lecorps B, Rödel HG, Féron C (2016) Assessment of anxiety in open field and elevated plus maze using infrared thermography. Physiology & Behavior, 157: 209-216. [ DOI:10.1016/j.physbeh.2016.02.014] 20. Aitken P, Zheng Y, Smith PF (2017) Ethovision™ analysis of open field behavior in rats following bilateral vestibular loss. J Vestibular Research: Equilibrium & Orientation, 27(2-3): 89-101. [ DOI:10.3233/VES-170612] 21. Samih M and Ahami AOT (2019) Effects of nettle on locomotor activity and anxiety behavior in male Wistar rats after pesticide intoxication. Pakistan Journal of Biological Sciences: PJBS, 22(4): 196-200. [ DOI:10.3923/pjbs.2019.196.200] 22. Tazhibayeva D, Kabdualieva N, Aitbayeva Z, Sengaliy M, Niyazbekova, K. (2020) The dynamics of lipoperoxidation processes in the early period after combined effects of a high dose gamma radiation and immobilization stress (experimental research). Georgian Medical News, (302): 127-132. 23. Kim M, Oh, S, Kim S, Ji M, et al. (2023) Alcohol perturbed locomotor behavior, metabolism, and pharmacokinetics of gamma-hydroxybutyric acid in rats. Biomedicine & pharmacotherapy, 164: 114992. [ DOI:10.1016/j.biopha.2023.114992] 24. Huang C, Zhang F, Li P, Song C (2022) Low-dose IL-2 attenuated depression-like behaviors and pathological changes through restoring the balances between IL-6 and TGF-β and between Th17 and Treg in a Chronic stress-induced mouse model of depression. Int J Molecular Sciences, 23(22): 13856. [ DOI:10.3390/ijms232213856] 25. Franco CCDS, Previate C, Trombini AB, Miranda RA, et al. (2021) Metformin improves autonomic nervous system imbalance and metabolic dysfunction in monosodium l-glutamate-treated rats. Frontiers in Endocrinology, 12: 660793. [ DOI:10.3389/fendo.2021.660793] 26. Pavlik L, Mikheeva I, Shtanchaev R, Mikhailova G, Arkhipov V (2020) influence of a 30-day spaceflight on the structure of motoneurons of the trochlear nerve nucleus in mice. BioRxiv, 2020: 299461. [ DOI:10.1101/2020.09.16.299461] 27. Thibaut F (2017) Anxiety disorders: a review of current literature. Dialogues in Clinical Neuroscience, 19(2): 87-88. [ DOI:10.31887/DCNS.2017.19.2/fthibaut] 28. Ayala-Lopez N and Watts SW (2021) Physiology and pharmacology of neurotransmitter transporters. Comprehensive Physiology, 11(3): 2279-2295. [ DOI:10.1002/cphy.c200035] 29. Rathod AM, Verpaele S, Kelvin M, Sullivan KV, Leybourne MI (2023) Uranium: an overview of physicochemical properties, exposure assessment methodologies, and health effects of environmental and occupational exposure. Environmental Geochemistry and Health, 45(5): 1183-1200. [ DOI:10.1007/s10653-022-01293-x]
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