Startseite Medizin Nano-engineered vitamins as a potential epigenetic modifier against environmental air pollutants
Artikel
Lizenziert
Nicht lizenziert Erfordert eine Authentifizierung

Nano-engineered vitamins as a potential epigenetic modifier against environmental air pollutants

  • Pooja Ratre , Prachi Chauhan , Arpit Bhargava , Rajnarayan Tiwari , Suresh Thareja , Rupesh Kumar Srivastava und Pradyumna Kumar Mishra ORCID logo EMAIL logo
Veröffentlicht/Copyright: 21. Juni 2022

Abstract

Air pollution has emerged as a serious threat to human health due to close association with spectrum of chronic ailments including cardiovascular disorders, respiratory diseases, nervous system dysfunctions, diabetes and cancer. Exposure to air-borne pollutants along with poor eating behaviours and inferior dietary quality irreversibly impacts epigenomic landscape, leading to aberrant transcriptional control of gene expression which is central to patho-physiology of non-communicable diseases. It is assumed that nutriepigenomic interventions such as vitamins can control such adverse effects through their immediate action on mitochondrial epigenomic-axis. Importantly, the exhaustive clinical utility of vitamins-interceded epigenetic synchronization is not well characterized. Therefore, improving the current limitations linked to stability and bioavailability issues in vitamin formulations is highly warranted. The present review not only sums up the available data on the role of vitamins as potential epigenetic modifiers but also discusses the importance of nano-engineered vitamins as potential epidrugs for dietary and pharmacological intervention to mitigate the long-term effects of air pollution toxicity.


Corresponding author: Prof. (Dr.) Pradyumna Kumar Mishra, MS, PhD, Fulbright-Nehru Fellow (USA), AIMF, FAMS, Scientist-F & Head, Department of Molecular Biology, ICMR-National Institute for Research in Environmental Health, Bypass Road, Bhauri, Bhopal (MP) - 462001, India, Mobile: +91 94799 83943, E-mail: .
Pooja Ratre, Prachi Chauhan and Arpit Bhargava contributed equally

Funding source: ICMR, Intra-mural funding support (PKM)

Award Identifier / Grant number: Unassigned

Acknowledgements

The authors are thankful to the Indian Council of Medical Research (ICMR), Department of Health Research (DHR), Ministry of Health and Family Welfare (MoHFW), Government of India, New Delhi (India) for necessary funding support to the laboratory of Professor Pradyumna Kumar Mishra.

  1. Research funding: This work was supported by ICMR, Intra-mural funding support (PKM).

  2. Author contributions: All authors have accepted responsibility for the entire content of this manuscript and approved its submission.

  3. Competing interests: Authors state no conflict of interest.

  4. Informed consent: Not Applicable.

  5. Ethical approval: Not Applicable.

References

1. World Health Organization. World health organization releases new global air pollution data. CCAC Secretariat; 2018. Available from: http://ccacoalition.org/en/news/world-health-organization-releases-new-global-air-pollution-data. https://www.energy-community.org.Suche in Google Scholar

2. Sharma, J, Parsai, K, Raghuwanshi, P, Ali, SA, Tiwari, V, Bhargava, A, et al.. Emerging role of mitochondria in airborne particulate matter-induced immunotoxicity. Environ Pollut 2021;270:116242.10.1016/j.envpol.2020.116242Suche in Google Scholar PubMed

3. Bhargava, A, Khare, NK, Bunkar, N, Chaudhury, K, Pandey, KC, Jain, SK, et al.. Cell-free circulating epigenomic signatures: non-invasive biomarker for cardiovascular and other age-related chronic diseases. Curr Pharm Des 2017;23:1175–87.10.2174/1381612822666161027145359Suche in Google Scholar PubMed

4. Bhargava, A, Tamrakar, S, Aglawe, A, Lad, H, Srivastava, RK, Mishra, DK, et al.. Ultrafine particulate matter impairs mitochondrial redox homeostasis and activates phosphatidylinositol 3-kinase mediated DNA damage responses in lymphocytes. Environ Pollut 2018;234:406–19.10.1016/j.envpol.2017.11.093Suche in Google Scholar PubMed

5. Bhargava, A, Shukla, A, Bunkar, N, Shandilya, R, Lodhi, L, Kumari, R, et al.. Exposure to ultrafine particulate matter induces NF-κβ mediated epigenetic modifications. Environ Pollut 2019;252:39–50.10.1016/j.envpol.2019.05.065Suche in Google Scholar PubMed

6. Chin, MT. Basic mechanisms for adverse cardiovascular events associated with air pollution. Heart 2015;101:253–6.10.1136/heartjnl-2014-306379Suche in Google Scholar PubMed PubMed Central

7. Johnson, BS, Laloraya, M. A cytokine super cyclone in COVID-19 patients with risk factors: the therapeutic potential of BCG immunization. Cytokine Growth Factor Rev 2020;54:32.10.1016/j.cytogfr.2020.06.014Suche in Google Scholar PubMed PubMed Central

8. Sharma, J, Kumari, R, Bhargava, A, Tiwari, R, Mishra, PK. Mitochondrial-induced epigenetic modifications: from biology to clinical translation. Curr Pharm Des 2021;27:159–76.10.2174/1381612826666200826165735Suche in Google Scholar PubMed

9. Bhargava, A, Kumari, R, Khare, S, Shandilya, R, Gupta, PK, Tiwari, R, et al.. Mapping the mitochondrial regulation of epigenetic modifications in association with carcinogenic and noncarcinogenic polycyclic aromatic hydrocarbon exposure. Int J Toxicol 2020;39:465–76.10.1177/1091581820932875Suche in Google Scholar PubMed

10. Gupta, P, Bhargava, A, Kumari, R, Lodhi, L, Tiwari, R, Gupta, PK, et al.. Impairment of mitochondrial-nuclear cross talk in lymphocytes exposed to landfill leachate. Environ Health Insights 2019;13:1178630219839013.10.1177/1178630219839013Suche in Google Scholar PubMed PubMed Central

11. Jang, AS. Mechanisms of ultrafine particle-induced respiratory health effects. Exp Mol Med 2020;52:1–9.10.1038/s12276-020-0394-0Suche in Google Scholar PubMed PubMed Central

12. Boonpiyathad, T, Sözener, ZC, Satitsuksanoa, P, Akdis, CA. Immunologic mechanisms in asthma. Semin Immunol 2019;46:101333.10.1016/j.smim.2019.101333Suche in Google Scholar PubMed

13. Nagappan, A, Park, SB, Lee, SJ, Moon, Y. Mechanistic implications of biomass-derived particulate matter for immunity and immune disorders. Toxics 2021;9:18.10.3390/toxics9020018Suche in Google Scholar PubMed PubMed Central

14. Mishra, PK, Bhargava, A, Kumari, R, Bunkar, N, Chauhan, P, Mukherjee, S, et al.. Integrated mitoepigenetic signalling mechanisms associated with airborne particulate matter exposure: a cross-sectional pilot study. Atmos Pollut Res 2022;5:101399.10.1016/j.apr.2022.101399Suche in Google Scholar

15. Bhargava, A, Bunkar, N, Aglawe, A, Pandey, KC, Tiwari, R, Chaudhury, K, et al.. Epigenetic biomarkers for risk assessment of particulate matter associated lung cancer. Curr Drug Targets 2018;19:1127–47.10.2174/1389450118666170911114342Suche in Google Scholar PubMed

16. Shukla, A, Bunkar, N, Kumar, R, Bhargava, A, Tiwari, R, Chaudhury, K, et al.. Air pollution associated epigenetic modifications: transgenerational inheritance and underlying molecular mechanisms. Sci Total Environ 2019;656:760–77.10.1016/j.scitotenv.2018.11.381Suche in Google Scholar PubMed

17. Mishra, PK, Bunkar, N, Singh, RD, Kumar, R, Gupta, PK, Tiwari, R, et al.. Comparative profiling of epigenetic modifications among individuals living in different high and low air pollution zones: a pilot study from India. Environ Protect 2021;4:100052.10.1016/j.envadv.2021.100052Suche in Google Scholar

18. Gordon, JA, Stein, JL, Westendorf, JJ, VanWijnen, AJ. Chromatin modifiers and histone modifications in bone formation, regeneration, and therapeutic intervention for bone-related disease. Bone 2015;81:739–45.10.1016/j.bone.2015.03.011Suche in Google Scholar PubMed PubMed Central

19. Duncan, KW, Campbell, JE. Epigenetic modulators. In: Waring, MJ, editor. Cancer II. Topics in medicinal chemistry, vol 28. Cham: Springer; 2017.10.1007/7355_2017_30Suche in Google Scholar

20. Muller, MM, Muir, TW. Histones: at the crossroads of peptide and protein chemistry. Chem Rev 2015;115:2296–349.10.1021/cr5003529Suche in Google Scholar PubMed PubMed Central

21. Xu, G, Jaffrey, SR. Comprehensive profiling of protein ubiquitination for drug discovery. Curr Pharm Des 2013;19:3315–28.10.2174/13816128113199990305Suche in Google Scholar PubMed

22. Wei, JW, Huang, K, Yang, C, Kang, CS. Non-coding RNAs as regulators in epigenetics. Oncol Rep 2017;37:3–9.10.3892/or.2016.5236Suche in Google Scholar PubMed

23. Fernandes, JC, Acuña, SM, Aoki, JI, Floeter-Winter, LM, Muxel, SM. Long non-coding RNAs in the regulation of gene expression: physiology and disease. Noncoding RNA 2019;5:17.10.3390/ncrna5010017Suche in Google Scholar PubMed PubMed Central

24. Cetin, I, Bühling, K, Demir, C, Kortam, A, Prescott, SL, Yamashiro, Y, et al.. Impact of micronutrient status during pregnancy on early nutrition programming. Ann Nutr Metab 2019;74:269–78.10.1159/000499698Suche in Google Scholar PubMed

25. Perez-Castineira, J. Vitamins. In: Chemistry and biochemistry of food. Berlin, Boston: De Gruyter; 2020:189–252 pp.10.1515/9783110595482-006Suche in Google Scholar

26. Pisoschi, AM, Pop, A. The role of antioxidants in the chemistry of oxidative stress: a review. Eur J Med Chem 2015;97:55–74.10.1016/j.ejmech.2015.04.040Suche in Google Scholar PubMed

27. Santos-Sánchez, NF, Salas-Coronado, R, Villanueva-Cañongo, C, Hernández-Carlos, B. Antioxidant compounds and their antioxidant mechanism. London, UK: Intech Open; 2019.Suche in Google Scholar

28. Wu, Y, Ding, Y, Ramprasath, T, Zou, MH. Oxidative stress, GTPCH1, and endothelial nitric oxide synthase uncoupling in hypertension. Antioxid Redox Signal 2021;34:750–64.10.1089/ars.2020.8112Suche in Google Scholar PubMed PubMed Central

29. Miyazawa, T, Burdeos, GC, Itaya, M, Nakagawa, K, Miyazawa, T. Vitamin E: regulatory redox interactions. IUBMB Life 2019;71:430–41.10.1002/iub.2008Suche in Google Scholar PubMed

30. Davies, DA, Adlimoghaddam, A, Albensi, BC. The effect of covid-19 on NF-κB and neurological manifestations of disease. Mol Neurobiol 2021;58:4178–87.10.1007/s12035-021-02438-2Suche in Google Scholar PubMed PubMed Central

31. Carr, AC, Maggini, S. Vitamin C and immune function. Nutrients 2017;9:1211.10.3390/nu9111211Suche in Google Scholar PubMed PubMed Central

32. Lee, GY, Han, SN. The role of vitamin E in immunity. Nutrients 2018;10:1614.10.3390/nu10111614Suche in Google Scholar PubMed PubMed Central

33. Acevedo, N, Alashkar Alhamwe, B, Caraballo, L, Ding, M, Ferrante, A, Garn, H, et al.. Perinatal and early-life nutrition, epigenetics, and allergy. Nutrients 2021;13:724.10.3390/nu13030724Suche in Google Scholar PubMed PubMed Central

34. Allison, J, Kaliszewska, A, Uceda, S, Reiriz, M, Arias, N. Targeting DNA methylation in the adult brain through diet. Nutrients 2021;13:3979.10.3390/nu13113979Suche in Google Scholar PubMed PubMed Central

35. von Lintig, J, Babino, D. Vitamin A and other carotenoids. In: Principles of Nutrigenetics and Nutrigenomics. Amsterdam: Academic Press; 2020:237–44 pp.10.1016/B978-0-12-804572-5.00031-8Suche in Google Scholar

36. Wiseman, EM, Bar-El Dadon, S, Reifen, R. The vicious cycle of vitamin a deficiency: a review. Crit Rev Food Sci Nutr 2017;57:3703–14.10.1080/10408398.2016.1160362Suche in Google Scholar PubMed

37. Godoy-Parejo, C, Deng, C, Zhang, Y, Liu, W, Chen, G. Roles of vitamins in stem cells. Cell Mol Life Sci 2020;77:1771–91.10.1007/s00018-019-03352-6Suche in Google Scholar PubMed

38. Green, AC, Martin, TJ, Purton, LE. The role of vitamin A and retinoic acid receptor signaling in post-natal maintenance of bone. J Steroid Biochem Mol Biol 2016;155:135–46.10.1016/j.jsbmb.2015.09.036Suche in Google Scholar PubMed

39. Zhong, J, Karlsson, O, Wang, G, Li, J, Guo, Y, Lin, X, et al.. B vitamins attenuate the epigenetic effects of ambient fine particles in a pilot human intervention trial. Proc Natl Acad Sci U S A 2017;114:3503–8.10.1073/pnas.1618545114Suche in Google Scholar PubMed PubMed Central

40. de Queiroz, KB, Cavalcante-Silva, V, Lopes, FL, Rocha, GA, D’Almeida, V, Coimbra, RS. Vitamin B12 is neuroprotective in experimental pneumococcal meningitis through modulation of hippocampal DNA methylation. J Neuroinflammation 2020;17:96.10.1186/s12974-020-01763-ySuche in Google Scholar PubMed PubMed Central

41. Froese, DS, Fowler, B, Baumgartner, MR. Vitamin B12, folate, and the methionine remethylation cycle-biochemistry, pathways, and regulation. J Inherit Metab Dis 2019;42:673–85.10.1002/jimd.12009Suche in Google Scholar PubMed

42. Boughanem, H, Hernandez-Alonso, P, Tinahones, A, Babio, N, Salas-Salvadó, J, Tinahones, FJ, et al.. Association between serum vitamin B12 and global DNA methylation in colorectal cancer patients. Nutrients 2020;12:3567.10.3390/nu12113567Suche in Google Scholar PubMed PubMed Central

43. Mrityunjaya, M, Pavithra, V, Neelam, R, Janhavi, P, Halami, PM, Ravindra, PV. Immune-boosting, antioxidant and anti-inflammatory food supplements targeting pathogenesis of COVID-19. Front Immunol 2020;11:570122.10.3389/fimmu.2020.570122Suche in Google Scholar PubMed PubMed Central

44. Cimmino, L, Neel, BG, Aifantis, I. Vitamin C in stem cell reprogramming and cancer. Trends Cell Biol 2018;28:698–708.10.1016/j.tcb.2018.04.001Suche in Google Scholar PubMed PubMed Central

45. Scourzic, L, Mouly, E, Bernard, OA. TET proteins and the control of cytosine demethylation in cancer. Genome Med 2015;7:1–6.10.1186/s13073-015-0134-6Suche in Google Scholar PubMed PubMed Central

46. Gillberg, L, Ørskov, AD, Liu, M, Harsløf, LB, Jones, PA, Grønbæk, K. Vitamin C–A new player in regulation of the cancer epigenome. Semin Cancer Biol 2018;51:59–67.10.1016/j.semcancer.2017.11.001Suche in Google Scholar PubMed

47. Camarena, V, Wang, G. The epigenetic role of vitamin C in health and disease. Cell Mol Life Sci 2016;73:1645–58.10.1007/s00018-016-2145-xSuche in Google Scholar PubMed PubMed Central

48. Wei, F, Qu, C, Song, T, Ding, G, Fan, Z, Liu, D, et al.. Vitamin C treatment promotes mesenchymal stem cell sheet formation and tissue regeneration by elevating telomerase activity. J Cell Physiol 2012;227:3216–24.10.1002/jcp.24012Suche in Google Scholar PubMed PubMed Central

49. Cimmino, L, Brabson, JP, Leesang, T, Mohammad, S. Epigenetic regulation of genomic stability by vitamin C. Front Genet 2021;12:640.10.3389/fgene.2021.675780Suche in Google Scholar PubMed PubMed Central

50. Stefanska, B, Karlic, H, Varga, F, Fabianowska‐Majewska, K, Haslberger, AG. Epigenetic mechanisms in anti-cancer actions of bioactive food components–the implications in cancer prevention. Br J Pharmacol 2012;167:279–97.10.1111/j.1476-5381.2012.02002.xSuche in Google Scholar PubMed PubMed Central

51. Hossein-nezhad, A, Holick, MF. Optimize dietary intake of vitamin D: an epigenetic perspective. Curr Opin Clin Nutr Metab Care 2012;15:567–79.10.1097/MCO.0b013e3283594978Suche in Google Scholar PubMed

52. Pálmer, HG, González-Sancho, JM, Espada, J, Berciano, MT, Puig, I, Baulida, J, et al.. Vitamin D3 promotes the differentiation of colon carcinoma cells by the induction of E-cadherin and the inhibition of β-catenin signaling. J Cell Biol 2001;154:369–88.10.1083/jcb.200102028Suche in Google Scholar PubMed PubMed Central

53. Vanoirbeek, E, Eelen, G, Verlinden, L, Carmeliet, G, Mathieu, C, Bouillon, R, et al.. PDLIM2 expression is driven by vitamin D and is involved in the pro-adhesion, and anti-migration and-invasion activity of vitamin D. Oncogene 2014;33:1904–11.10.1038/onc.2013.123Suche in Google Scholar PubMed

54. Lopes, N, Carvalho, J, Durães, C, Sousa, B, Gomes, M, Costa, JL, et al.. 1Alpha,25-dihydroxyvitamin D3 induces de novo E-cadherin expression in triple-negative breast cancer cells by CDH1-promoter demethylation. Anticancer Res 2012;32:249–57.Suche in Google Scholar

55. Nguyen, TTU, Yeom, JH, Kim, W. Beneficial effects of vitamin E supplementation on endothelial dysfunction, inflammation, and oxidative stress biomarkers in patients receiving hemodialysis: a systematic review and meta-analysis of randomized controlled trials. Int J Mol Sci 2021;22:11923.10.3390/ijms222111923Suche in Google Scholar PubMed PubMed Central

56. Remely, M, Ferk, F, Sterneder, S, Setayesh, T, Kepcija, T, Roth, S, et al.. Vitamin E modifies high-fat diet-induced increase of DNA strand breaks, and changes in expression and DNA methylation of Dnmt1 and MLH1 in C57BL/6J male mice. Nutrients 2017;9:607.10.3390/nu9060607Suche in Google Scholar PubMed PubMed Central

57. Schnellbaecher, A, Binder, D, Bellmaine, S, Zimmer, A. Vitamins in cell culture media: stability and stabilization strategies. Biotechnol Bioeng 2019;116:1537–55.10.1002/bit.26942Suche in Google Scholar PubMed PubMed Central

58. Pinela, J, Carvalho, AM, Ferreira, IC. Wild edible plants: nutritional and toxicological characteristics, retrieval strategies and importance for today’s society. Food Chem Toxicol 2017;110:165–88.10.1016/j.fct.2017.10.020Suche in Google Scholar PubMed

59. Holick, MF. The vitamin D deficiency pandemic: approaches for diagnosis, treatment and prevention. Rev Endocr Metab Disord 2017;18:153–65.10.1007/s11154-017-9424-1Suche in Google Scholar PubMed

60. Barden, L, Decker, EA. Lipid oxidation in low-moisture food: a review. Crit Rev Food Sci Nutr 2016;56:2467–82.10.1080/10408398.2013.848833Suche in Google Scholar PubMed

61. Mishra, PK, Sharma, J. Navigating the ethics of nanomedicine: are we lost in translation? Nanomedicine (Lond) 2021;16:1075–80.10.2217/nnm-2021-0054Suche in Google Scholar PubMed

62. Bunkar, N, Shandilya, R, Bhargava, A, Samarth, RM, Tiwari, R, Mishra, DK, et al.. Nano-engineered flavonoids for cancer protection. Front Biosci (Landmark Ed) 2019;24:1097–157.10.2741/4771Suche in Google Scholar PubMed

63. Bhargava, A, Mishra, DK, Tiwari, R, Lohiya, NK, Goryacheva, IY, Mishra, PK. Immune cell engineering: opportunities in lung cancer therapeutics. Drug Deliv Transl Res 2020;10:1203–27.10.1007/s13346-020-00719-2Suche in Google Scholar PubMed

64. Shandilya, R, Bhargava, A, Bunkar, N, Tiwari, R, Goryacheva, IY, Mishra, PK. Nanobiosensors: point-of-care approaches for cancer diagnostics. Biosens Bioelectron 2019;130:147–65.10.1016/j.bios.2019.01.034Suche in Google Scholar PubMed

65. Agrahari, V, Burnouf, PA, Burnouf, T, Agrahari, V. Nanoformulation properties, characterization, and behavior in complex biological matrices: challenges and opportunities for brain-targeted drug delivery applications and enhanced translational potential. Adv Drug Deliv Rev 2019;148:146–80.10.1016/j.addr.2019.02.008Suche in Google Scholar PubMed

66. Arnold, T. Assessing the impact of oral vitamin B12 supplementation on vibration sensitivity, dexterity, and balance in young adult vegetarians and vegans. Tempe: Arizona State University; 2016.Suche in Google Scholar

67. Abbasi, A, Emam-Djomeh, Z, Mousavi, MA, Davoodi, D. Stability of vitamin D(3) encapsulated in nanoparticles of whey protein isolate. Food Chem 2014;143:379–83.10.1016/j.foodchem.2013.08.018Suche in Google Scholar PubMed

68. Liu, K, Kong, XL, Li, QM, Zhang, HL, Zha, XQ, Luo, JP. Stability and bioavailability of vitamin D3 encapsulated in composite gels of whey protein isolate and lotus root amylopectin. Carbohydr Polym 2020;227:115337.10.1016/j.carbpol.2019.115337Suche in Google Scholar PubMed

69. Katouzian, I, Jafari, SM. Nano-encapsulation as a promising approach for targeted delivery and controlled release of vitamins. Trends Food Sci Technol 2016;53:34–48.10.1016/j.tifs.2016.05.002Suche in Google Scholar

70. Bajaj, SR, Marathe, SJ, Singhal, RS. Co-encapsulation of vitamins B12 and D3 using spray drying: wall material optimization, product characterization, and release kinetics. Food Chem 2021;335:127642.10.1016/j.foodchem.2020.127642Suche in Google Scholar PubMed

71. Hategekimana, J, Chamba, MVM, Shoemaker, CF, Majeed, H, Zhong, F. Vitamin E nanoemulsions by emulsion phase inversion: effect of environmental stress and long- term storage on stability and degradation in different carrier oil types. Colloids Surfaces A Physicochem Eng Asp 2015;483:70–80.10.1016/j.colsurfa.2015.03.020Suche in Google Scholar

72. Lv, S, Gu, J, Zhang, R, Zhang, Y, Tan, H, McClements, DJ. Vitamin E encapsulation in plant-based nanoemulsions fabricated using dual-channel microfluidization: formation, stability, and bioaccessibility. J Agric Food Chem 2018;66:10532–42.10.1021/acs.jafc.8b03077Suche in Google Scholar PubMed

73. Raikos, V. Encapsulation of vitamin E in edible orange oil-in-water emulsion beverages: influence of heating temperature on physicochemical stability during chilled storage. Food Hydrocolloids 2017;72:155–62.10.1016/j.foodhyd.2017.05.027Suche in Google Scholar

74. El-Say, KM, Ahmed, TA, Ahmed, OAA, Hosny, KM, Abd-Allah, FI. Self-nanoemulsifying lyophilized tablets for flash oral transmucosal delivery of vitamin K: development and Clinical Evaluation. J Pharm Sci 2017;106:2447–56.10.1016/j.xphs.2017.01.001Suche in Google Scholar PubMed

Received: 2022-02-09
Accepted: 2022-05-23
Published Online: 2022-06-21
Published in Print: 2023-09-26

© 2022 Walter de Gruyter GmbH, Berlin/Boston

Artikel in diesem Heft

  1. Frontmatter
  2. Reviews
  3. Determination of safe levels of persistent organic pollutants in toxicology and epidemiology
  4. A critical analysis of the MOBI-Kids study of wireless phone use in childhood and adolescence and brain tumor risk
  5. Occupational and environmental noise exposure during pregnancy and rare health outcomes of offspring: a scoping review focusing on congenital anomalies and perinatal mortality
  6. Exposure to air pollution and risk of ovarian cancer: a review
  7. Evaluation of the impact of different disinfectants on new coronavirus and human health
  8. A review on chromium health hazards and molecular mechanism of chromium bioremediation
  9. A review of the characteristic properties of selected tobacco chemicals and their associated etiological risks
  10. Using biomonitoring as a complementary approach in BTEX exposure assessment in the general population and occupational settings: a systematic review and meta-analysis
  11. Review, meta-analysis and carcinogenic risk assessment of aflatoxin M1 in different types of milks in Iran
  12. The effect of long-term exposure to toxic air pollutants on the increased risk of malignant brain tumors
  13. Self-referencing authorships behind the ICNIRP 2020 radiation protection guidelines
  14. Nano-engineered vitamins as a potential epigenetic modifier against environmental air pollutants
  15. The effect of toxic air pollutants on fertility men and women, fetus and birth rate
  16. A systematic review of photocatalytic degradation of humic acid in aqueous solution using nanoparticles
  17. Letter to the Editor
  18. Dariusz Leszczynski responds to comments of Maël Dieudonné on Leszczynski’s review of the scientific evidence on the individual sensitivity to electromagnetic fields (EHS)
Heruntergeladen am 7.1.2026 von https://www.degruyterbrill.com/document/doi/10.1515/reveh-2022-0027/html
Button zum nach oben scrollen