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Risk of Cancer in Patients with Iron Deficiency Anemia: A Nationwide Population-Based Study

  • Ning Hung ,

    Contributed equally to this work with: Ning Hung, Cheng-Che Shen

    Affiliation Department of Psychiatry, Kaohsiung Veterans General Hospital, Kaohsiung, Taiwan

  • Cheng-Che Shen ,

    Contributed equally to this work with: Ning Hung, Cheng-Che Shen

    Affiliations School of Medicine, National Yang-Ming University, Taipei, Taiwan, Department of Psychiatry, Chiayi Branch, Taichung Veterans General Hospital, Chiayi, Taiwan

  • Yu-Wen Hu,

    Affiliations Department of Psychiatry, Kaohsiung Veterans General Hospital, Kaohsiung, Taiwan, Department of information magagement, National Chung-Cheng University, Chiayi, Taiwan, Cancer Center, Taipei Veterans General Hospital, Taipei, Taiwan

  • Li-Yu Hu,

    Affiliation Institute of Public Health, National Yang-Ming University, Taipei, Taiwan

  • Chiu-Mei Yeh,

    Affiliation Department of Family Medicine, Taipei Veterans General Hospital, Taipei, Taiwan

  • Chung-Jen Teng,

    Affiliations Department of Psychiatry, Kaohsiung Veterans General Hospital, Kaohsiung, Taiwan, Cancer Center, Taipei Veterans General Hospital, Taipei, Taiwan, Division of Oncology and Hematology, Department of Medicine, Far Eastern Memorial Hospital, New Taipei City, Taiwan

  • Ai-Seon Kuan,

    Affiliation Department of Psychiatry, Kaohsiung Veterans General Hospital, Kaohsiung, Taiwan

  • San-Chi Chen,

    Affiliation Division of Hematology and Oncology, Department of Medicine, Taipei Veterans General Hospital, Taipei, Taiwan

  • Tzeng-Ji Chen,

    Affiliations Cancer Center, Taipei Veterans General Hospital, Taipei, Taiwan, Department of Family Medicine, Taipei Veterans General Hospital, Taipei, Taiwan

  • Chia-Jen Liu

    pures1000@yahoo.com.tw

    Affiliations Department of Psychiatry, Kaohsiung Veterans General Hospital, Kaohsiung, Taiwan, Cancer Center, Taipei Veterans General Hospital, Taipei, Taiwan, Division of Hematology and Oncology, Department of Medicine, Taipei Veterans General Hospital, Taipei, Taiwan

Correction

23 Apr 2015: The PLOS ONE Staff (2015) Correction: Risk of Cancer in Patients with Iron Deficiency Anemia: A Nationwide Population-Based Study. PLOS ONE 10(4): e0125951. https://doi.org/10.1371/journal.pone.0125951 View correction

Abstract

Objective

This study evaluated the risk of cancer among patients with iron deficiency anemia (IDA) by using a nationwide population-based data set.

Method

Patients newly diagnosed with IDA and without antecedent cancer between 2000 and 2010 were recruited from the Taiwan National Health Insurance Research Database. The standardized incidence ratios (SIRs) of cancer types among patients with IDA were calculated.

Results

Patients with IDA exhibited an increased overall cancer risk (SIR: 2.15). Subgroup analysis showed that patients of both sexes and in all age groups had an increased SIR. After we excluded patients diagnosed with cancer within the first and first 5 years of IDA diagnosis, the SIRs remained significantly elevated at 1.43 and 1.30, respectively. In addition, the risks of pancreatic (SIR: 2.31), kidney (SIR: 2.23), liver (SIR: 1.94), and bladder cancers (SIR: 1.74) remained significantly increased after exclusion of patients diagnosed with cancer within 5 years after IDA diagnosis.

Conclusion

The overall cancer risk was significantly elevated among patients with IDA. After we excluded patients diagnosed with IDA and cancer within 1 and 5 years, the SIRs remained significantly elevated compared with those of the general population. The increased risk of cancer was not confined to gastrointestinal cancer when the SIRs of pancreatic, kidney, liver, and bladder cancers significantly increased after exclusion of patients diagnosed with IDA and cancer within the first 5 years. This finding may be caused by immune activities altered by IDA. Further study is necessary to determine the association between IDA and cancer risk.

Introduction

Anemia is the most common micronutrient deficiency, affecting 24.8% of the general population, with an estimated 1.62 billion people affected[1, 2]. Anemia is a crucial indicator of cancer risk[3], and iron deficiency anemia (IDA) is the most significant contributor, accounting for 50% of all causes of anemia[2].

Numerous epidemiological and experimental studies have shown that iron plays a significant role in cancer development; however, whether iron deficiency (ID) or overload leads to carcinogenesis remains controversial[47]. Studies from Japan, the United States, and Finland have associated ID with an increased risk of developing esophageal[6, 7], gastric[810], and colon cancers[1117]. Animal models support that ID accelerates the early development of oral and liver tumors[18, 19] and increases the incidence of colonic and duodenal tumors[20]. By detecting altered iron metabolism in cancer cells, a study concluded that iron contributes to all aspects of tumor growth including tumor initiation, microenvironment, and metastasis[21].

Nevertheless, all relevant studies have focused on the causality between ID and cancer incidence, without accounting for anemia. Therefore, no studies have focused on whether IDA increases the incidence of cancer. Additionally, most related studies have focused on the gastrointestinal tract[611, 1317], except for a study on a Finnish population; however, this particular study only showed that individuals with a high total iron-binding capacity (TIBC) were likely to develop rectal cancer[12]. Therefore, we explored the role of IDA in increasing the cancer risk in other organ systems by classifying all cancers into 22 categories. Moreover, because the aforementioned studies were case—control or nested case—control studies[617], we conducted a population-based cohort study to establish a casual relationship between IDA and the increased risk of cancer. We conducted this population-based retrospective cohort study by using a database from the National Health Insurance (NHI) system in Taiwan.

Materials and Methods

Data Sources

The NHI program, started in 1995 as a compulsory universal health insurance program, offers comprehensive medical care coverage to all residents of Taiwan, with a coverage rate of up to 98%[22]. The program provides extensive coverage for outpatient, inpatient, emergency, and dental care, as well as prescription drugs. This study used the NHI research database, which is managed and made available to the public by the Taiwan National Health Research Institute (NHRI). The NHI database of catastrophic illness specifically provides comprehensive enrollment information for all patients with severe diseases, such as cancer, who have received copayment exemption under the NHI program. Confidentiality is maintained according to the data regulations of the Bureau of National Health Insurance and the NHRI.

The Taiwan Cancer Registry, which provides data on the incidence rate of cancer, was founded in 1979 by the Department of Health of the executive branch of the central government. The registry is currently operated by the National Public Health Association, and it records newly diagnosed malignant neoplasms from hospitals that provide outpatient or inpatient cancer care.

Standard Protocol Approvals, Registration, and Patient Consent

The Institutional Review Board of Taipei Veterans General Hospital approved this study (2012-12-013BC). Written patient consent was not required because the NHI data set consists of deidentified secondary data used for research purposes, and the Institutional Review Board issued a formal written waiver regarding the need for consent.

Study Population

We conducted a retrospective cohort study on the period from January 1, 1996 to December 31, 2011. Patients newly diagnosed with IDA were selected from the period between January 1, 2000 and December 31, 2010. We recruited patients aged 20 years or older at the time of IDA diagnosis who had no prior malignancies. IDA was defined according to the International Classification of Diseases, Ninth Revision, Clinical Modification (ICD-9-CM) code 280.X.

Statistical Analyses

The main dependent variable was the occurrence of cancer, as reported in the Registry for Catastrophic Illness. For an occurrence of cancer to be reported in the registry, histological confirmation is required for patients diagnosed with cancer. Patients with IDA were followed until the development of cancer, dropout from the NHI program, death, or the end of 2010.

The risk of cancer in the IDA cohort was determined using standardized incidence ratios (SIRs), defined as the observed number of cancer occurrences divided by the expected number of cancer occurrences. The expected number of cancer occurrences was calculated by multiplying the national incidence rate of cancer, stratified by sex, calendar year, and age in 5-year intervals, according to the corresponding stratum-specific person-time accrued in the cohort. The incidence rates of cancer in the general population were obtained from the Taiwan Cancer Registry. The 95% confidence intervals (CIs) for the SIRs were estimated by assuming that the number of cancer occurrences followed a Poisson probability distribution. We determined the SIRs for the subgroups of sex and age. To avoid potential detection bias and the possibility that IDA is a paraneoplastic phenomenon, the subgroups were stratified by the duration when IDA was diagnosed. SIRs were also estimated for each cancer type. To exclude IDA caused by prominent inflammatory diseases that could also increase cancer risk, we conducted a supplemental survey to determine the SIRs of IDA patients by excluding gastroesophageal reflux disease; cholangitis; ulcerative colitis; Crohn’s disease; gastric ulcer; duodenal ulcer; peptic ulcer; gastrojejunal ulcer; chronic hepatitis; Wilson’s disease; alcoholic liver disease; chronic pancreatitis; chronic renal disease; rheumatoid arthritis; diffuse diseases of connective tissue, including systemic lupus erythematosus; tuberculosis; human immunodeficiency virus/acquired immunodeficiency syndrome; syphilis; osteomyelitis; and rheumatic fever.

Data extraction and computation were performed using the Perl programming language (Version 5.12.2). Microsoft SQL Server 2012 (Microsoft Corp., Redmond, WA, USA) was used for data linkage, processing, and sampling. All statistical analyses were performed using SPSS statistical software Version 17.0 for Windows (SPSS, Inc., Chicago, IL, USA). Statistical significance was set at p < 0.05.

Results

Patient Demographics

A total of 32,390 patients with IDA were identified; 24,610 (75.98%) of whom were female and 7,780 (24.0%) were male. Overall, the cohort was observed for 185,070 person-years from 2000 to 2011. The median follow-up period was 5.43 years [interquartile range (IQR): 2.59–8.80]. The median age of the female patients at diagnosis was 44.15 years (IQR: 34.3–54.05); most of them were diagnosed before 60 years of age (n = 19, 468, 79.1%; Table 1). By comparison, the median age of the male patients at diagnosis was 61.72 years (IQR: 44.75–74.78); 52.59% of them were diagnosed after 60 years of age. Table 1 lists the patient demographics.

All Cancers

A total of 2,051 patients were diagnosed with cancer within the observation period. Compared with the general population, patients with IDA had an increased overall cancer risk, with an SIR of 2.15 (95% CI: 2.06–2.25; p < 0.001). Subgroup analysis for sex showed that both males (SIR: 2.43; 95% CI: 2.27–2.60; p < 0.001) and females (SIR: 1.99; 95% CI: 1.88–2.11; p < 0.001) had increased SIRs. Similarly, subgroup analysis for age showed that patients in all age groups had increased SIRs (p < 0.001). Within the first year of IDA diagnosis, 916 patients were diagnosed with cancer, and the SIR was 5.84 (95% CI: 5.47–6.23; p < 0.001). When data from the first year were excluded, the SIR remained significantly elevated at 1.43 (95% CI: 1.34–1.51; p < 0.001); when data from the first 5 years were excluded, the SIR remained significantly elevated at 1.30 (95% CI: 1.18–1.43; p < 0.001). Table 2 lists the subgroup analysis results. Furthermore, the SIR remained elevated at 1.78 (95% CI: 1.64–1.93; p < 0.001) in patients with IDA after exclusion of prominent inflammatory diseases. When data from the first year were excluded, the SIR remained elevated at 1.15 (95% CI: 1.03–1.28; p < 0.001). S2 Table presents the results.

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Table 2. Standardized incidence ratios (SIRs) according to sex, age at diagnosis, and duration of follow-up.

https://doi.org/10.1371/journal.pone.0119647.t002

Specific Cancer Types

To eliminate the influence of a potential detection bias and undetected cancer, SIR analyses were performed after exclusion of patients diagnosed with cancer within 1 year after IDA diagnosis. Patients with IDA, rather than the general population, had a significantly higher risk of developing a subsequent cancer of the following types: leukemia (SIR: 2.51; 95% CI: 1.67–3.63), liver (SIR: 2.27; 95% CI: 1.95–2.62), kidney (SIR: 1.89; 95% CI: 1.33–2.67), esophageal (SIR: 1.80; 95% CI: 1.07–2.85), pancreatic (SIR: 1.75; 95% CI: 1.12–2.61), uterine (SIR: 1.71; 95% CI: 1.19–2.38), bladder (SIR: 1.66; 95% CI: 1.18–2.61), thyroid (SIR: 1.49; 95% CI: 1.05–2.05), colon and rectal (SIR: 1.48; 95% CI: 1.27–1.72), stomach (SIR: 1.43; 95% CI: 1.07–1.87), and head and neck cancer (SIR: 1.33; 95% CI: 1.01–1.72). Table 3 presents the results. After we excluded patients diagnosed with cancer within 5 years after IDA diagnosis, a significantly higher risk of developing a subsequent cancer remained for the following: pancreatic (SIR: 2.31; 95% CI: 1.23–3.95), kidney (SIR: 2.23; 95% CI: 1.32–3.52), liver (SIR: 1.94; 95% CI: 1.48–2.48) and bladder cancers (SIR: 1.74; 95% CI: 1.00–2.83). Table 4 presents the results.

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Table 3. SIRs of specific cancer types among patients with iron deficiency anemia (IDA) after excluding the first year of observation post IDA.

https://doi.org/10.1371/journal.pone.0119647.t003

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Table 4. SIRs of specific cancer types among patients with iron deficiency anemia (IDA) after excluding the first five years of observation post IDA.

https://doi.org/10.1371/journal.pone.0119647.t004

Discussion

Based on our research, this is the first population-based cohort study to evaluate the risk of all cancer types among patients with IDA. Our study included 32,390 patients with a follow-up of 185,070 person-years. The study data showed that compared with the general population, patients with IDA had an increased overall cancer risk (SIR: 2.15), with SIRs of 2.43 and 1.99 for males and females, respectively. After we excluded patients diagnosed with cancer in the first year and first 5 years, the remaining patients still showed a significantly increased cancer risk with SIRs of 1.43 and 1.30, respectively.

The study design included unbiased subject selection and age-, sex-, and calendar-year-matched SIR estimates. Because participation in the NHI is compulsory and all residents of Taiwan can access healthcare with low copayments, referral bias is essentially removed and follow-up is complete. To apply for a cancer catastrophic illness certificate, pathologic proof of malignancy is mandatory, and relevant reports of laboratory and imaging studies should be provided. Patients with a certificate of catastrophic illness can be exempted from related medical expenses, particularly hospital costs. Therefore, cancer diagnoses in this study were reliable and exhaustive.

In this study, the number of women diagnosed with IDA was three times that of men diagnosed with IDA. Furthermore, the median age of the female patients at IDA diagnosis was 44.15 years; most of them were diagnosed before 60 years of age. By comparison, the median age of the male patients at IDA diagnosis was 61.72 years; 52.59% of whom were diagnosed after 60 years of age. These findings are comparable with those of a study in which IDA was more prevalent in women, particularly in those of childbearing age[23]. In addition, the prevalence rate of anemia rises more rapidly from middle age in men than in women, has a higher prevalence rate in men aged ≥75 years than in women of the same age, and is highest in men aged ≥85 years[24].

We found that the overall cancer risk in IDA patients was higher than that in the general population, with an SIR of 2.15. Although ID is a major cause of anemia, it also impairs the molecular and metabolic functions of cells. By causing mitochondrial dysfunction[25], cells with ID undergo apoptosis inhibition[26], genomic instability and aging[25], and ID-induced reduction in nitric oxide synthase activity[27], resulting in DNA damage, oncogene activation, DNA repair enzyme inhibition[28], and macrophage antitumor activity downregulation[27]. ID also causes lymphocyte DNA damage by generating excess reactive oxygen species through elevated oxidant levels and decreased antioxidant enzyme activities[29], leading to human cell carcinogenesis[30]. These mechanisms might contribute differently to specific stages of cancer development and to certain cancer types. Moreover, several studies have shown that IDA alters immune activities including both cellular and humoral immunity[3134], thus creating a microenvironment permissive for carcinogenesis. Because a hallmark of cancer cells is the ability to evade immune destruction[35], IDA may subtly change the microenvironment of the human body, which may become more vulnerable to cancer cells.

In the present study, the incidence of cancer increased in the first year after IDA diagnosis and showed an SIR of 5.84. Detection bias may be a possible explanation for this finding[36]. Compared with the general population, patients with IDA, particularly men or nonmenstruating women, are more likely to undergo diagnostic tests or have more outpatient follow-up visits, thus leading to an earlier diagnosis of cancer. In addition, an increased SIR might indicate that anemia is a manifestation of occult cancer[37]. However, the SIRs in the present study remained significantly elevated despite the exclusion of data from the first year (SIR: 1.43) and first 5 years (SIR: 1.30) of cancer diagnosis; therefore, it is reasonable to conclude that the increased cancer risk in patients with IDA was not due only to the aforementioned reasons.

In our study, excluding patients diagnosed with IDA and cancer within the first 5 years revealed increased risks of cancers of the pancreas (SIR: 2.31), kidney (SIR: 2.23), liver (SIR: 1.94), and bladder (SIR: 1.74), which remained significantly high. Based on our research, no previous studies have shown a relationship between IDA and the increased risk of these cancers. The result might be explained by the aforementioned mechanisms, but future studies are required to establish a clearer understanding of the relationship between IDA and the increased risk of cancer.

An increased colorectal and stomach cancer risk could be associated with chronic diseases such as ulcerative colitis or gastritis[38]; therefore, we conducted a supplemental survey after excluding the prominent inflammatory diseases listed in the Statistical Analyses of Materials and Methods. The SIR remained elevated at 1.14 after the data from the first year were excluded, thus demonstrating that cancer risk is increased in IDA patients without chronic inflammatory diseases.

Our study has several limitations. First, several cancer-related demographic variables, such as family history of cancer[39], environmental exposure[40], diet[41], cigarette smoking[42], and alcohol use[43] were unavailable. Second, the diagnostic accuracy and severity of IDA could not be determined. Whether the severity of IDA is related to carcinogenesis should be further evaluated. Third, patients with IDA generally receive treatment with iron supplements; however, we did not consider the treatment of IDA while establishing the relationship between IDA and an increased cancer risk. Fourth, our choice of inflammatory diseases being excluded may be questionable because we could not exclude all inflammatory diseases; the relationship between an increased cancer risk and several of the excluded diseases requires further establishment. Finally, the follow-up period of our study might be too short to detect the carcinogenesis of certain types of cancer.

In conclusion, this population-based retrospective cohort study presents an increased cancer risk in patients with IDA. Specifically, the risks of pancreatic, kidney, liver, and bladder cancers significantly increased after we excluded patients diagnosed with IDA and cancer within the first 5 years. The increased cancer risk in patients with IDA may be caused by altered immune activities because of IDA. Additional large, population-based prospective studies are required to investigate the relationship between IDA and cancer risk.

Supporting Information

S1 Table. Characteristics of patients after exclusion of inflammatory disease.

https://doi.org/10.1371/journal.pone.0119647.s001

(DOC)

S2 Table. Standardized incidence ratios (SIRs) according to sex, age at diagnosis and duration of follow-up after excluding inflammatory disease.

https://doi.org/10.1371/journal.pone.0119647.s002

(DOC)

Author Contributions

Conceived and designed the experiments: CCS. Performed the experiments: CJL. Analyzed the data: LYH YWH. Contributed reagents/materials/analysis tools: CMY TJC CJT SCC ASK. Wrote the paper: NH CCS.

References

  1. 1. Umbreit J. Iron deficiency: a concise review. Am J Hematol. 2005;78(3):225–31. Epub 2005/02/24. pmid:15726599
  2. 2. de Benoist B ME, Egli I, Cogswell M, eds. Worldwide prevalence of anemia. WHO Global Database on Anaemia Geneva, Switzerland: WHO press, 2008:1–40. 1993–2005.
  3. 3. Knight K, Wade S, Balducci L. Prevalence and outcomes of anemia in cancer: a systematic review of the literature. Am J Med. 2004;116 Suppl 7A:11s–26s. Epub 2004/03/31. pmid:15050883
  4. 4. Kabat GC, Rohan TE. Does excess iron play a role in breast carcinogenesis? An unresolved hypothesis. Cancer Causes Control. 2007;18(10):1047–53. Epub 2007/09/08. pmid:17823849
  5. 5. Beguin Y, Aapro M, Ludwig H, Mizzen L, Osterborg A. Epidemiological and nonclinical studies investigating effects of iron in carcinogenesis—a critical review. Crit Rev Oncol Hematol. 2014;89(1):1–15. Epub 2013/11/28. pmid:24275533
  6. 6. Zhang ZF, Kurtz RC, Yu GP, Sun M, Gargon N, Karpeh M Jr., et al. Adenocarcinomas of the esophagus and gastric cardia: the role of diet. Nutr Cancer. 1997;27(3):298–309. Epub 1997/01/01. pmid:9101561
  7. 7. Zhang ZF, Kurtz RC, Sun M, Karpeh M Jr., Yu GP, Gargon N, et al. Adenocarcinomas of the esophagus and gastric cardia: medical conditions, tobacco, alcohol, and socioeconomic factors. Cancer Epidemiol Biomarkers Prev. 1996;5(10):761–8. Epub 1996/10/01. pmid:8896886
  8. 8. Akiba S, Neriishi K, Blot WJ, Kabuto M, Stevens RG, Kato H, et al. Serum ferritin and stomach cancer risk among a Japanese population. Cancer. 1991;67(6):1707–12. Epub 1991/03/15. pmid:2001562
  9. 9. Nomura A, Chyou PH, Stemmermann GN. Association of serum ferritin levels with the risk of stomach cancer. Cancer Epidemiol Biomarkers Prev. 1992;1(7):547–50. Epub 1992/11/01. pmid:1302566
  10. 10. Harrison LE, Zhang ZF, Karpeh MS, Sun M, Kurtz RC. The role of dietary factors in the intestinal and diffuse histologic subtypes of gastric adenocarcinoma: a case-control study in the U.S. Cancer. 1997;80(6):1021–8. Epub 1997/09/26. pmid:9305701
  11. 11. Nelson RL. Iron and colorectal cancer risk: human studies. Nutr Rev. 2001;59(5):140–8. Epub 2001/06/09. pmid:11396694
  12. 12. Knekt P, Reunanen A, Takkunen H, Aromaa A, Heliovaara M, Hakulinen T. Body iron stores and risk of cancer. Int J Cancer. 1994;56(3):379–82. Epub 1994/02/01. pmid:8314326
  13. 13. Bird CL, Witte JS, Swendseid ME, Shikany JM, Hunt IF, Frankl HD, et al. Plasma ferritin, iron intake, and the risk of colorectal polyps. Am J Epidemiol. 1996;144(1):34–41. Epub 1996/07/01. pmid:8659483
  14. 14. Kato I, Dnistrian AM, Schwartz M, Toniolo P, Koenig K, Shore RE, et al. Iron intake, body iron stores and colorectal cancer risk in women: a nested case-control study. Int J Cancer. 1999;80(5):693–8. Epub 1999/02/27. pmid:10048969
  15. 15. Ioannou GN, Rockey DC, Bryson CL, Weiss NS. Iron deficiency and gastrointestinal malignancy: a population-based cohort study. Am J Med. 2002;113(4):276–80. Epub 2002/10/04. pmid:12361812
  16. 16. Cross AJ, Gunter MJ, Wood RJ, Pietinen P, Taylor PR, Virtamo J, et al. Iron and colorectal cancer risk in the alpha-tocopherol, beta-carotene cancer prevention study. Int J Cancer. 2006;118(12):3147–52. Epub 2006/01/21. pmid:16425287
  17. 17. Herrinton LJ, Friedman GD, Baer D, Selby JV. Transferrin saturation and risk of cancer. Am J Epidemiol. 1995;142(7):692–8. Epub 1995/10/01. pmid:7572938
  18. 18. Vitale JJ, Broitman SA, Vavrousek-Jakuba E, Rodday PW, Gottlieb LS. The effects of iron deficiency and the quality and quantity of fat on chemically induced cancer. Adv Exp Med Biol. 1977;91:229–42. Epub 1977/01/01. pmid:605850
  19. 19. Prime SS, MacDonald DG, Rennie JS. The effect of iron deficiency on experimental oral carcinogenesis in the rat. Br J Cancer. 1983;47(3):413–8. Epub 1983/03/01. pmid:6403024
  20. 20. Jagadeesan V, Rao NJ, Sesikeran B. Effect of iron deficiency on DMH-induced gastrointestinal tract tumors and occurrence of hepatocyte abnormalities in Fischer rats. Nutr Cancer. 1994;22(3):285–91. Epub 1994/01/01. pmid:7877898
  21. 21. Torti SV, Torti FM. Iron and cancer: more ore to be mined. Nat Rev Cancer. 2013;13(5):342–55. Epub 2013/04/19. pmid:23594855
  22. 22. Wang YP, Liu CJ, Hu YW, Chen TJ, Lin YT, Fung CP. Risk of cancer among patients with herpes zoster infection: a population-based study. CMAJ. 2012;184(15):E804–9. Epub 2012/09/19. pmid:22988158
  23. 23. Looker AC, Dallman PR, Carroll MD, Gunter EW, Johnson CL. Prevalence of iron deficiency in the United States. JAMA. 1997;277(12):973–6. Epub 1997/03/26. pmid:9091669
  24. 24. Guralnik JM, Eisenstaedt RS, Ferrucci L, Klein HG, Woodman RC. Prevalence of anemia in persons 65 years and older in the United States: evidence for a high rate of unexplained anemia. Blood. 2004;104(8):2263–8. Epub 2004/07/09. pmid:15238427
  25. 25. Atamna H, Liu J, Ames BN. Heme deficiency selectively interrupts assembly of mitochondrial complex IV in human fibroblasts: revelance to aging. J Biol Chem. 2001;276(51):48410–6. Epub 2001/10/13. pmid:11598132
  26. 26. Payne CM, Holubec H, Bernstein C, Bernstein H, Dvorak K, Green SB, et al. Crypt-restricted loss and decreased protein expression of cytochrome C oxidase subunit I as potential hypothesis-driven biomarkers of colon cancer risk. Cancer Epidemiol Biomarkers Prev. 2005;14(9):2066–75. Epub 2005/09/21. pmid:16172211
  27. 27. Harhaji L, Vuckovic O, Miljkovic D, Stosic-Grujicic S, Trajkovic V. Iron down-regulates macrophage anti-tumour activity by blocking nitric oxide production. Clin Exp Immunol. 2004;137(1):109–16. Epub 2004/06/16. pmid:15196250
  28. 28. Tatemichi M, Sawa T, Gilibert I, Tazawa H, Katoh T, Ohshima H. Increased risk of intestinal type of gastric adenocarcinoma in Japanese women associated with long forms of CCTTT pentanucleotide repeat in the inducible nitric oxide synthase promoter. Cancer Lett. 2005;217(2):197–202. Epub 2004/12/25. pmid:15617837
  29. 29. Aslan M, Horoz M, Kocyigit A, Ozgonul S, Celik H, Celik M, et al. Lymphocyte DNA damage and oxidative stress in patients with iron deficiency anemia. Mutat Res. 2006;601(1–2):144–9. Epub 2006/08/22. pmid:16942782
  30. 30. Ziech D, Franco R, Pappa A, Panayiotidis MI. Reactive oxygen species (ROS)—induced genetic and epigenetic alterations in human carcinogenesis. Mutat Res. 2011;711(1–2):167–73. Epub 2011/03/23. pmid:21513719
  31. 31. Attia MA, Essa SA, Nosair NA, Amin AM, El-Agamy OA. Effect of iron deficiency anemia and its treatment on cell mediated immunity. Indian J Hematol Blood Transfus. 2009;25(2):70–7. Epub 2009/06/01. pmid:23100979
  32. 32. Tang YM, Chen XZ, Li GR, Zhou RH, Ning H, Yan H. [Effects of iron deficiency anemia on immunity and infectious disease in pregnant women]. Wei sheng yan jiu = Journal of hygiene research. 2006;35(1):79–81. Epub 2006/04/08. pmid:16598942
  33. 33. Das I, Saha K, Mukhopadhyay D, Roy S, Raychaudhuri G, Chatterjee M, et al. Impact of iron deficiency anemia on cell-mediated and humoral immunity in children: A case control study. J Nat Sci Biol Med. 2014;5(1):158–63. Epub 2014/03/29. pmid:24678217
  34. 34. Ekiz C, Agaoglu L, Karakas Z, Gurel N, Yalcin I. The effect of iron deficiency anemia on the function of the immune system. Hematol J. 2005;5(7):579–83. Epub 2005/02/05. pmid:15692603
  35. 35. Hanahan D, Weinberg RA. Hallmarks of cancer: the next generation. Cell. 2011;144(5):646–74. Epub 2011/03/08. pmid:21376230
  36. 36. Haut ER, Pronovost PJ. Surveillance bias in outcomes reporting. JAMA. 2011;305(23):2462–3. Epub 2011/06/16. pmid:21673300
  37. 37. Nakama H, Zhang B, Fattah AS, Zhang X. Colorectal cancer in iron deficiency anemia with a positive result on immunochemical fecal occult blood. Int J Colorectal Dis. 2000;15(5–6):271–4. Epub 2001/01/11. pmid:11151440
  38. 38. Ullman TA, Itzkowitz SH. Intestinal inflammation and cancer. Gastroenterology. 2011;140(6):1807–16. Epub 2011/05/03. pmid:21530747
  39. 39. Stratton JF, Pharoah P, Smith SK, Easton D, Ponder BA. A systematic review and meta-analysis of family history and risk of ovarian cancer. Br J Obstet Gynaecol. 1998;105(5):493–9. Epub 1998/06/24. pmid:9637117
  40. 40. Boffetta P, Nyberg F. Contribution of environmental factors to cancer risk. Br Med Bull. 2003;68:71–94. Epub 2004/02/06. pmid:14757710
  41. 41. Shirai T, Sano M, Tamano S, Takahashi S, Hirose M, Futakuchi M, et al. The prostate: a target for carcinogenicity of 2-amino-1-methyl-6-phenylimidazo[4,5-b]pyridine (PhIP) derived from cooked foods. Cancer Res. 1997;57(2):195–8. Epub 1997/01/15. pmid:9000552
  42. 42. Baker F, Ainsworth SR, Dye JT, Crammer C, Thun MJ, Hoffmann D, et al. Health risks associated with cigar smoking. JAMA. 2000;284(6):735–40. Epub 2000/08/06. pmid:10927783
  43. 43. Baan R, Straif K, Grosse Y, Secretan B, El Ghissassi F, Bouvard V, et al. Carcinogenicity of alcoholic beverages. Lancet Oncol. 2007;8(4):292–3. Epub 2007/04/17. pmid:17431955