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Lipinski, P.

Publications and source records attributed to Lipinski, P..

2 recordsLinked to original sources

Investigating the significance of iron levels in influencing megakaryocytic commitment in megakaryocyte-erythroid progenitors

AimThe present study investigated the significance of iron in regulating megakaryopoiesis, by a diet-based intervention in an in-vivo model. MethodsMale C57BL/6 mice, aged 4-5 weeks were fed on varying iron diets. Following sacrifice, blood samples collected in EDTA tubes were used to analyse haematological parameters, and iron content of liver and spleen was assessed by biochemical analyses. Megakaryocyte-erythroid progenitors (MEPs) were isolated from bone marrow by magnetic bead-based selection. RNA isolated from bone marrow cells and MEPs were used for gene expression analyses, and RNA Sequencing to identify differentially expressed genes (DEGs) and associated pathways. ResultsMice fed on an iron-deficient diet had reduced hepatic iron content after 5 weeks (p < 0.01), while both the hepatic and spleen iron content increased after 3 weeks in mice on an iron-rich diet (p < 0.05) and developed iron overloading. Hb and RBC counts increased (p < 0.05) in iron-rich mice and decreased in iron-deficient mice (p < 0.05), which also showed elevated platelet counts (p < 0.01). This may be explained by increased expression of Gata1, Tal1 (p < 0.01) Mds1 and Pdpk1 (p < 0.05) in bone marrow cells from iron-deficient mice. MEPs isolated from these mice showed elevated expression of genes associated with megakaryocytic differentiation, platelet functions, and genes encoding TGF-{beta}R1 and Smad 2,3 and 4. ConclusionsIron deficiency may activate TGF-{beta} signalling and downstream Smad-mediated transcriptional programs within MEPs. This may promote a shift in lineage commitment towards megakaryopoiesis through elevated expression of megakaryopoiesis related genes.

molecular biology↗

Impact of maternal iron deficiency anaemia on fetal iron status and placental iron transporters in human pregnancy

Iron deficiency anaemia is associated with maternal morbidity and poor pregnancy outcomes. Placenta expresses both haem and non-haem iron transport proteins. The aim of the study is to examine the expression of placental iron trafficking molecules and associate them with maternal and neonatal iron status. Pregnant women who received prenatal care at the department of community health and development, Christian Medical College, Vellore, India for childbirth were recruited between 2016-2018. Pregnant women who were 18-35 years old with gestational age (GA) of [&ge;]36weeks were eligible to participate in the study. In a prospective cohort of pregnant women, 22% were iron deficiency anaemia (IDA) and 42% were iron replete. Pregnant women in the different groups were mutually exclusive. Samples were collected (Maternal blood, placental tissue, and cord blood) from pregnant women with gestational age of [&ge;]38 weeks at the time of delivery. Mean gestational age at first visit and delivery was 12.8{+/-}2.72 weeks and 39{+/-}1.65 weeks, respectively. Hemoglobin (9.3{+/-}0.9g/dl) and ferritin (15.4(0.8-28.3) ng/ml) levels at delivery were significantly decreased in IDA as compared to other groups. The foetal haemoglobin and ferritin levels were in the normal range in all groups. We further analysed the expression of iron transport genes in the placenta in the iron replete controls and the IDA group. Under maternal iron insufficiency, the expression of placental iron transporters DMT1 and FPN1 were upregulated at the transcriptional level. There was no correlation of maternal and cord blood hepcidin with foetal iron status in IDA. Thus, placental iron traffickers respond to maternal iron deficiency by increasing their expression and allowing sufficient iron to pass to the foetus.

molecular biology↗