Differences in Mentzer Index Values in Children with Helicobacter Pylori and Non-Helicobacter Pylori Infections
DOI:
https://doi.org/10.37287/ijghr.v8i5.2319Keywords:
anemia, helicobacter pylori, iron deficiency, mentzer indexAbstract
Helicobacter pylori infection is a common cause of chronic gastritis in children and has been associated with several haematological abnormalities, particularly iron deficiency anaemia. The Mentzer Index is a simple haematological parameter that may reflect disturbances in iron metabolism; however, its relationship with H. pylori infection in children remains unclear. To compare Mentzer Index values between children with and without Helicobacter pylori infection and to evaluate associated haematological characteristics. A cross-sectional analytical study was conducted involving 44 children aged 2–18 years who underwent diagnostic testing for H. pylori. Demographic data and haematological parameters, including haemoglobin, erythrocyte count, mean corpuscular volume, mean corpuscular haemoglobin, mean corpuscular haemoglobin concentration, red cell distribution width, platelet count, white blood cell count, erythrocyte sedimentation rate, and Mentzer Index, were collected from medical records. Statistical analyses were performed using chi-square and comparative tests, with statistical significance defined as p < 0.05. No significant differences were observed between the two groups regarding age, sex, nutritional status, haemoglobin concentration, erythrocyte indices, platelet count, white blood cell count, or Mentzer Index (all p > 0.05). Most participants in both groups had a Mentzer Index ≥13, suggesting a haematological pattern compatible with iron deficiency anaemia. However, children with H. pylori infection demonstrated significantly higher ESR values compared with non-infected children (37.23 ± 6.20 vs. 27.32 ± 13.92 mm/hour; p = 0.005), indicating increased inflammatory activity. Helicobacter pylori infection in children was associated with elevated erythrocyte sedimentation rate but not with significant differences in Mentzer Index or other routine haematological parameters.
References
Aguilera Matos, I., Diaz Oliva, S. E., Escobedo, A. A., Villa Jiménez, O. M., & Velazco Villaurrutia, Y. D. C. (2020). Helicobacter pylori infection in children. BMJ Paediatrics Open, 4(1), e000679. https://doi.org/10.1136/bmjpo-2020-000679
Arqam, S. M., Mahmood, M., Khowaja, L., Haq, N. U., Ullah, F., Kumar, A., Rehman, M. T., Sohail, R. A., Khan, M. H., & Khan, A. (2025). Utilization of Hematological Markers to Distinguish Bile Reflux Gastritis From Helicobacter pylori-Associated Gastritis in Pediatric Patients. Cureus, 17(11).
Borka Balas, R., Meliț, L. E., & Mărginean, C. O. (2022). Worldwide prevalence and risk factors of Helicobacter pylori infection in children. Children, 9(9), 1359.
Che, T. H., Nguyen, T. C., Vu, V. N. T., Nguyen, H. T., Hoang, D. T. P., Ngo, X. M., Truong, D. Q., Bontems, P., Robert, A., & Van Nguyen, P. N. (2023). Factors associated with Helicobacter pylori infection among school-aged children from a high prevalence area in Vietnam. International journal of public health, 68, 1605908.
Fathalizade, K., Sabzehali, F., Doulberis, M., Smith, S. M., Schulz, C., Zali, M. R., & Yadegar, A. (2026). Elucidating the Pathogenic Role of Helicobacter pylori Infection in Hematologic Disorders: Mechanistic Insights and Future Perspectives. Helicobacter, 31(3), e70136.
Kato, S., Gold, B. D., & Kato, A. (2022). Helicobacter pylori-Associated Iron Deficiency Anemia in Childhood and Adolescence-Pathogenesis and Clinical Management Strategy. Journal of Clinical Medicine, 11(24). https://doi.org/10.3390/jcm11247351
Kristyanto, R., Widowati, T., & Damayanti, W. (2022). Prevalensi Infeksi Helicobacter pylori pada Anak dengan Gejala Gastrointestinal di Rumah Sakit Umum Pusat Dr. Sardjito Yogyakarta. Sari Pediatri, 24, 106. https://doi.org/10.14238/sp24.2.2022.106-11
Liu, M., Gao, H., Miao, J., Zhang, Z., Zheng, L., Li, F., Zhou, S., Zhang, Z., Li, S., & Liu, H. (2024). Helicobacter pylori infection in humans and phytotherapy, probiotics, and emerging therapeutic interventions: a review. Frontiers in microbiology, 14, 1330029.
Mărginean, C. O., Meliț, L. E., & Săsăran, M. O. (2021). Gastric Microenvironment-A Partnership between Innate Immunity and Gastric Microbiota Tricks Helicobacter pylori. Journal of Clinical Medicine, 10(15). https://doi.org/10.3390/jcm10153258
Najmi, A. A., Suhaqi, M. Y., Ghazwani, S. M., Bajahzer, M. F., Hakami, O. M., Shok, A. A., Qussadi, A. M., Abutalib, Y. B., Mahmoud, R. M., & Alhamoud, A. H. (2026). Hematological Abnormalities among Pediatric Patients with Helicobacter pylori Infection: A Retrospective Study from Jazan, Saudi Arabia. Journal of Applied Hematology, 17(1), 19–24.
Nguyen, J., Kotilea, K., Bontems, P., & Miendje Deyi, V. Y. (2023). Helicobacter pylori Infections in Children. Antibiotics (Basel, Switzerland), 12(9). https://doi.org/10.3390/antibiotics12091440
Nguyen, R. N., Bui, N. Q., Nguyen, K. O. T., & Nguyen, K. O. (2024). Prevalence, Predictors, and Treatment Outcomes of Anemia in Vietnamese School-Age Children With Helicobacter pylori Infection. Cureus, 16(9).
Pu, S., Zhuang, Z., Liu, N., Luo, Q., & Zhang, D. (2025). Research progress on the relationship between Helicobacter pylori infection and iron deficiency anemia. Frontiers in microbiology, 16, 1552630.
Sağlam, N. Ö., & Civan, H. A. (2023). Impact of chronic Helicobacter pylori infection on inflammatory markers and hematological parameters. Eur Rev Med Pharmacol Sci, 27(3), 969–979.
Salahi-Niri, A., Nabavi-Rad, A., Monaghan, T. M., Rokkas, T., Doulberis, M., Sadeghi, A., Zali, M. R., Yamaoka, Y., Tacconelli, E., & Yadegar, A. (2024). Global prevalence of Helicobacter pylori antibiotic resistance among children in the world health organization regions between 2000 and 2023: a systematic review and meta-analysis. BMC Medicine, 22(1), 598. https://doi.org/10.1186/s12916-024-03816-y
Săsăran, M. O., Meliţ, L. E., Mocan, S., Ghiga, D. V., & Dobru, E. D. (2020). Pediatric gastritis and its impact on hematologic parameters. Medicine, 99(35), e21985. https://doi.org/10.1097/MD.0000000000021985
Tibasima, E. B., Kumbakulu, P. K., Chirac, L. P., Ramazani, O., Patrick, T. B., Olga, K. K., Shamavu, G. K., Prudence, M. N., & Mseza, B. (2025). Prevalence, associated factors, and clinical outcomes of Helicobacter pylori infection in pediatric populations in a war-torn urban environment in Eastern Democratic Republic of Congo: a mixed methods study. BMC pediatrics, 25(1), 257.
Walle, M., Tesfaye, A., Agidew, M. M., Semaw, M., Mekuria, S., & Getu, F. (2025). The association of Helicobacter pylori infection with the risk of anemia in children: systematic review and meta-analysis. BMC Infectious Diseases, 25(1), 23. https://doi.org/10.1186/s12879-024-10427-8
Wang, Z., Tan, W., Xiong, H., Huang, J., Wei, H., Li, M., Luo, J., An, W., He, L., Ma, J., Xiao, F., & Wei, H. (2025). Impact of Helicobacter pylori infection on iron deficiency anemia in children: a systematic review and meta-analysis with early intervention implications. Frontiers in Microbiology, 16, 1541011. https://doi.org/10.3389/fmicb.2025.1541011
Xu, C., Wu, Y., & Xu, S. (2022). Association between Helicobacter pylori infection and growth outcomes in children: a meta‐analysis. Helicobacter, 27(1), e12861.
Zhang, Y., Bi, J., Wang, M., Deng, H., & Yang, W. (2022). Correlation between helicobacter pylori infection and iron deficiency in children. Pakistan Journal of Medical Sciences, 38(5), 1188.
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