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Article

Dietary Zinc, Copper, and Selenium Intake and High-Risk Human Papillomavirus Infection among American Women: Data from NHANES 2011–2016

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Pages 1958-1967 | Received 05 May 2021, Accepted 03 Sep 2021, Published online: 23 Sep 2021

Reference

  • Han JJ, Beltran TH, Song JW, Klaric J, Choi YS. Prevalence of genital human papillomavirus infection and human papillomavirus vaccination rates among US adult men: National Health and Nutrition Examination Survey (NHANES) 2013–2014. JAMA Oncol. 2017;3:810–816. doi:10.1001/jamaoncol.2016.6192.
  • Forman D, de Martel C, Lacey CJ, Soerjomataram I, Lortet-Tieulent J, Bruni L, Vignat J, Ferlay J, Bray F, Plummer M, Franceschi S. Global burden of human papillomavirus and related diseases. Vaccine. 2012;30(Suppl 5):F12–F23. doi:10.1016/j.vaccine.2012.07.055.
  • Dunne EF, Unger E, Sternberg M, McQuillan G, Swan DC, Patel SS, Markowitz LE. Prevalence of HPV infection among females in the United States. JAMA: J Am Med Assoc. 2007;297:813–819.
  • Gillison ML, Chaturvedi AK, Lowy DR. HPV prophylactic vaccines and the potential prevention of noncervical cancers in both men and women. Cancer. 2008;113:3036–3046. doi:10.1002/cncr.23764.
  • Centers for Disease Control and Prevention. How many cancers are linked with HPV each year?; 2018 Aug 22. https://wwwcdcgov/cancer/hpv/statistics/caseshtm.
  • Julian G, Go D, Shubrook J. Preventing cancer with two injections, a clinical review of the HPV vaccination. Osteopath Fam Phys. 2019;11:24–29. doi:10.33181/11063
  • Das JK, Salam RA, Arshad A, Lassi ZS, Bhutta ZA. Systematic review and meta-analysis of interventions to improve access and coverage of adolescent immunizations. J Adolesc Health. 2016;59:S40–S48. doi:10.1016/j.jadohealth.2016.07.005.
  • Newman PA, Logie CH, Doukas N, Asakura K. HPV vaccine acceptability among men: a systematic review and meta-analysis. Sex Transm Infect. 2013;89:568–574. doi:10.1136/sextrans-2012-050980.
  • Lewis RM, Markowitz LE. Human papillomavirus vaccination coverage among females and males, National Health and Nutrition Examination Survey, United States, 2007–2016. Vaccine. 2018;36:2567–2573. doi:10.1016/j.vaccine.2018.03.083.
  • Ho G, Bierman R, Beardsley L, Chang CJ, Burk RD. Natural history of cervicovaginal papillomavirus infection in young women. N Engl J Med. 1998;338:423–428. doi:10.1056/NEJM199802123380703
  • Franco EL, Villa LL, Sobrinho JP, Prado JM, Rousseau MC, Désy M, Rohan TE. Epidemiology of acquisition and clearance of cervical human papillomavirus infection in women from a high-risk area for cervical cancer. J Infect Dis. 1999;180:1415–1423. doi:10.1086/315086
  • Konya J, Dillner J. Immunity to oncogenic human papillomaviruses. Adv Cancer Res. 2001;82:205–238. doi:10.1016/s0065-230x(01)82007-8.
  • Karuri AR, Kashyap VK, Yallapu MM, Zafar N, Kedia SK, Jaggi M, Chauhan SC. Disparity in rates of HPV infection and cervical cancer in underserved US populations. Front Biosci (Schol Ed). 2017;9:254–269. doi:10.2741/s486.
  • Shifrin AR. APROPOS OF THE STUDY OF TRACE ELEMENTS IN DERMATOLOGY. Vestn Dermatol Venerol. 1964;38:14–18. [Russian].
  • Wintergerst ES, Maggini S, Hornig DH. Contribution of selected vitamins and trace elements to immune function. Ann Nutr Metab. 2007;51:301–323. doi:10.1159/000107673.
  • Chandra KR. Nutrition and the immune system from birth to old age. Eur J Clin Nutr. 2002;56(Suppl 3):S73. doi:10.1038/sj.ejcn.1601492
  • Nowak G, Kubera M, Maes M. Neuroimmunological aspects of the alterations in zinc homeostasis in the pathophysiology and treatment of depression. Acta Neuropsychiatr. 2000;12:49–53. doi:10.1017/s0924270800035705.
  • Wuehler SE, Peerson JM, Brown KH. Use of national food balance data to estimate the adequacy of zinc in national food supplies: methodology and regional estimates. Public Health Nutr. 2005;8:812–819. doi:10.1079/phn2005724.
  • Read SA, Obeid S, Ahlenstiel C, Ahlenstiel G. The role of zinc in antiviral immunity. Adv Nutr. 2019;10:696–710. doi:10.1093/advances/nmz013.
  • Jin HK, Bae SN, Lee CW, Min JS, Lee SJ, Yoon JH, Lee KH, Hur SY, Park TC, Park JS. A pilot study to investigate the treatment of cervical human papillomavirus infection with zinc-citrate compound (CIZAR®). Gynecol Oncol. 2011;122:303–306. doi:10.1016/j.ygyno.2011.04.026
  • Sagripanti JL, Lightfoote MM. Cupric and ferric ions inactivate HIV. AIDS Res Hum Retroviruses. 1996;12:333–337. doi:10.1089/aid.1996.12.333.
  • Boyd LO. Interleukin-2 production is altered by copper deficiency. Nutr Rev. 2009;51:307–309. doi:10.1111/j.1753-4887.1993.tb03062.x
  • Lehain S. Molecular mechanisms governing CD4+ T cell recognition of human papilloma virus (HPV) E6 in cervical carcinoma. Cardiff University; 2009.
  • Gropper S, Smith JL, Groff J. Advanced nutrition and human metabolism. 6th ed. Belmont: Wadsworth Cengage Learning; 2013.
  • Ferencík M, Ebringer L. Modulatory effects of selenium and zinc on the immune system. Folia Microbiol (Praha). 2003;48:417–426. doi:10.1007/bf02931378.
  • Shah KK, Verma R, Oleske JM, Scolpino A, Bogden JD. Essential trace elements and progression and management of HIV infection. Nutr Res. 2019;71:21–29. doi:10.1016/j.nutres.2019.08.001.
  • Abulizi G, Zhang YY, Mijiti P, Li H, Abuduxikuer G, Cai J, Dong Z-H, Naizhaer G, Yang X-W, Maimaiti M. Serum Se, Ni, and As are associated with HPV infection and CIN2+ among Uyghur women in rural China. BMC Cancer. 2018;18:925. doi:10.1186/s12885-018-4734-6.
  • Xie Y, Wang J, Zhao X, Zhou X, Nie X, Li C, Huang F, Yuan H. Higher serum zinc levels may reduce the risk of cervical cancer in Asian women: a meta-analysis. J Int Med Res. 2018;46:4898–4906. doi:10.1177/0300060518805600.
  • Zhang M, Shi M, Zhao Y. Association between serum copper levels and cervical cancer risk: a meta-analysis. Biosci Rep. 2018;38:BSR20180161. doi:10.1042/bsr20180161
  • Obhielo E, Ezeanochie M, Olokor O, Okonkwo A, Gharoro E. The relationship between the serum level of selenium and cervical intraepithelial neoplasia: a comparative study in a population of Nigerian women. Asian Pac J Cancer Prev. 2019;20:1433–1436. doi:10.31557/APJCP.2019.20.5.1433.
  • Cheng YJ, Kanaya AM, Araneta MRG, Saydah SH, Kahn HS, Gregg EW, Fujimoto WY, Imperatore G. Prevalence of diabetes by race and ethnicity in the United States, 2011–2016. JAMA. 2019;322:2389–98. doi:10.1001/jama.2019.19365.
  • Dietary guidelines for Americans. 2015–2020. https://health.gov/our-work/nutrition-physical-activity/dietary-guidelines/previous-dietary-guidelines/2015.
  • Huang X, Chen C, Zhu F, Zhang Y, Feng Q, Li J, Yu Q, Zhong Y, Luo S, Gao J. Association between dietary vitamin A and HPV infection in American women: data from NHANES 2003–2016. Biomed Res Int. 2020;2020:4317610. doi:10.1155/2020/4317610
  • Centers for Disease Control and Prevention. National Center for Health Statistics NCHS Research Ethics Review Board (ERB) Approval [accessed 2015 Aug 1]. http://www.cdc.gov/nchs/nhanes/irba98.htm.
  • US Department of Health & Human Services Office of Extramural Research [accessed 2017 Aug 30]. http://grants.nih.gov/grants/policy/hs/hs_policies.htm.
  • Wessells KR, Brown KH. Estimating the global prevalence of zinc deficiency: results based on zinc availability in national food supplies and the prevalence of stunting. PLoS One. 2012;7:e50568. doi:10.1371/journal.pone.0050568
  • Martina B, Andrea M, Quattrocchi A, Agrifoglio O, Scalisi A, Agodi A. The association of dietary patterns with high-risk human papillomavirus infection and cervical cancer: a cross-sectional study in Italy. Nutrients. 2018;10:469. doi:10.3390/nu10040469.
  • Barchitta M, Maugeri A, La Mastra C, Rosa MC, Favara G, San Lio RM, Agodi A. Dietary antioxidant intake and human papillomavirus infection: evidence from a cross-sectional study in Italy. Nutrients. 2020;12. doi:10.3390/nu12051384.
  • Wintergerst ES, Maggini S, Hornig DH. Immune-enhancing role of vitamin C and zinc and effect on clinical conditions. Ann Nutr Metab. 2006;50(2):85–94. doi:10.1159/000090495.
  • Prasad AS. Zinc: role in immunity, oxidative stress and chronic inflammation. Curr Opin Clin Nutr Metab Care. 2009;12(6):646–652. doi:10.1097/MCO.0b013e3283312956
  • Raha S, Mallick R, Basak S, Duttaroy AK. Is copper beneficial for COVID-19 patients? Med Hypotheses. 2020;142:109814. doi:10.1016/j.mehy.2020.109814.
  • Percival SS. Copper and immunity. Am J Clin Nutr. 1998;67(5 Suppl):1064S–1068S. doi:10.1093/ajcn/67.5.1064S
  • Inactivation and morphological changes of avian influenza virus by copper ions. Arch Virol. 2008;153:1467–1472.
  • Sagripanti JL, Routson LB, Bonifacino AC, Lytle CD. Mechanism of copper-mediated inactivation of herpes simplex virus. Antimicrob Agents Chemother. 1997;41(4):812–817. doi:10.1128/aac.41.4.812.
  • Sagripanti JL, Routson LB, Lytle CD. Virus inactivation by copper or iron ions alone and in the presence of peroxide. Appl Environ Microbiol. 1993;59(12):4374–6. doi:10.1128/aem.59.12.4374-4376.1993.
  • Rupp JC, Locatelli M, Grieser A, Ramos A, Campbell PJ, Yi H, Steel J, Burkhead JL, Bortz E. Host cell copper transporters CTR1 and ATP7A are important for Influenza A virus replication. Virol J. 2017;14(1):11. doi:10.1186/s12985-016-0671-7.
  • Novello F, Stirpe F. The effects of copper and other ions on the ribonucleic acid polymerase activity of isolated rat liver nuclei. Biochem J. 1969;111(1):115–119. doi:10.1042/bj1110115.
  • Fujimori Y, Sato T, Hayata T, Nagao T, Nakayama M, Nakayama T, Sugamata R, Suzuki K. Novel antiviral characteristics of nanosized copper(I) iodide particles showing inactivation activity against 2009 pandemic H1N1 influenza virus. Appl Environ Microbiol. 2012;78(4):951–955. doi:10.1128/aem.06284-11.
  • Shionoiri N, Sato T, Fujimori Y, Nakayama T, Nemoto M, Matsunaga T, Tanaka T. Investigation of the antiviral properties of copper iodide nanoparticles against feline calicivirus. J Biosci Bioeng. 2012;113(5):580–586. doi:10.1016/j.jbiosc.2011.12.006.
  • Zhou YX, Zhu FF, Chen C, Zhang YX, Lv XL, Li J-W, Luo S-P, Gao J. Association of thiamine intake with human papillomavirus (HPV) infection in American women: a secondary data analysis based on the National Health and Nutrition Examination Survey from 2003 to 2016. Med Sci Monit. 2020;26:e924932. doi:10.12659/msm.924932.

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