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Quantitating Iron Transport Across the Mouse Placenta In Vivo Using Nonradioactive Iron Isotopes
Published on: May 10, 2022
Disordered Maternal and Fetal Iron Metabolism Occurs in Preterm Births in Human
Wei Liu1,2, Yue Wu1,2, Na Zhang3,4
1State Key Laboratory of Environmental Chemistry and Ecotoxicology, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China.
Insights
Maternal iron deficiency is linked to preterm birth. This study found altered iron metabolism and placental iron regulation in mothers experiencing preterm birth, suggesting a role in fetal iron supply disruption.
Area of Science:
- Obstetrics and Gynecology
- Maternal-Fetal Medicine
- Human Physiology
Background:
- Iron deficiency during pregnancy is associated with adverse outcomes.
- Mechanisms of iron deficiency-linked preterm birth are primarily studied in animals.
- Human relevance of these mechanisms requires further investigation.
Purpose of the Study:
- To characterize maternal and fetal iron metabolism in pregnant women with preterm birth.
- To investigate iron homeostasis in the placenta of mothers with preterm birth.
Main Methods:
- Collected serum and placental samples from 42 pregnant women.
- Assessed iron metabolism indicators: serum iron, hepcidin, placental iron, ferroportin (FPN), transferrin receptor 1 (TfR1), and ferritin.
- Utilized ELISA, Western blots, and qRT-PCR for analysis.
Main Results:
- Mothers with preterm birth showed reduced maternal serum iron and diminished maternal hepcidin.
- Placental iron stores were lower in the preterm group.
- Increased placental ferroportin (FPN) and reduced transferrin receptor 1 (TfR1) concentrations were observed, indicated by a higher placental iron delivery index (PIDI).
Conclusions:
- Dysregulated iron homeostasis in both mother and fetus is implicated in preterm birth.
- Disordered placental iron regulation may compromise fetal iron supply.
- Findings suggest a role for altered iron metabolism in the etiology of preterm birth.
Background:
Increasing evidence reveals that iron deficiency during pregnancy causes adverse pregnancy outcomes. Thus far, the mechanisms underlying iron deficiency-associated preterm birth are mostly limited to animal studies. Whether the suggested mechanisms exist in human requires further investigation. The goal of this study was to characterize the iron metabolism in both the maternal side and fetal side in pregnant women with preterm birth.
Methods:
Serum and placenta samples were collected from 42 pregnant women divided into four groups according to the gestational week. Indicators of iron metabolism, including serum iron, serum hepcidin, placental tissue iron, ferroportin (FPN), transferrin receptor 1 (TfR1), and ferritin, were surveyed using enzyme-linked immunosorbent assays (Elisa), Western blots, and real-time quantitative polymerase chain reactions (qRT-PCR).
Results:
Significant reduction of maternal serum iron was observed in women with preterm birth relative to those with full-term birth, indicative of worsen iron deficiency in those mothers with preterm birth. Meanwhile, the maternal hepcidin levels were notably diminished in women with preterm birth, whereas the fetal hepcidin levels were comparable between the two groups. Moreover, the placental iron stores were remarkably reduced in the preterm group, associated with reduced concentration of TfR1 and increased FPN concentration relative to the normal controls. In other words, the ratio of placental FPN mass to TfR1 mass (PIDI index) was strikingly increased in the preterm group.
Conclusions:
Dysregulated iron homeostasis in both the maternal and fetal sides was implicated in preterm births, and disordered regulations in maintaining the placental iron equilibrium were also presumed to account for the compromised fetal iron supply.
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