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Published on: September 6, 2017
Preeclampsia is Associated with Sex-Specific Transcriptional and Proteomic Changes in Fetal Erythroid Cells
Zahra Masoumi1, Gregory E Maes2,3, Koen Herten4,5
1Division of Obstetrics and Gynecology, Department of Clinical Sciences Lund, Lund University, Klinikgatan 28, 22184 Lund, Sweden. zahra.masoumi@med.lu.se.
Insights
Preeclampsia (PE) alters fetal erythropoiesis, causing distinct transcriptional and proteomic changes in hematopoietic stem/progenitor cells (HSPCs) and erythroid cells, particularly in males, potentially explaining higher erythroblast counts.
Area of Science:
- Perinatology
- Hematology
- Developmental Biology
Background:
- Preeclampsia (PE) is linked to placental dysfunction, fetal hypoxia, and increased erythroblast counts in umbilical cord blood (UCB).
- Placental dysfunction may also induce fetal inflammation, nutritional deficits, and oxidative stress, impacting erythropoiesis.
Purpose of the Study:
- To compare UCB HSPC surface molecule expression, erythroid differentiation, and cellular transcriptome/proteome between fetuses from PE and normotensive pregnancies.
- To investigate sex-specific differences in these parameters.
Main Methods:
- Analysis of UCB HSPC migration/homing and in vitro erythroid differentiation.
- Transcriptomic and proteomic profiling of UCB HSPCs and in vitro differentiated erythroid cells.
- Pathway analysis of identified molecular changes.
Main Results:
- No significant differences in UCB HSPC migration/homing or in vitro erythroid colony formation were found.
- Significant differences in UCB HSPC transcriptome and proteomic profiles of differentiated erythroid cells were observed between PE and normotensive groups.
- Transcriptional changes during erythropoiesis, especially in male fetuses, were noted, with pathway analysis implicating mTORC1/AMPK signaling.
Conclusions:
- PE is associated with significant transcriptional and proteomic alterations in fetal HSPCs and erythroid cells.
- These molecular changes, particularly in males, may contribute to the elevated UCB erythroblast count observed in PE.
- Dysregulation of mTORC1/AMPK signaling pathways is implicated in PE-associated erythropoiesis changes.
Abstract:
Preeclampsia (PE) has been associated with placental dysfunction, resulting in fetal hypoxia, accelerated erythropoiesis, and increased erythroblast count in the umbilical cord blood (UCB). Although the detailed effects remain unknown, placental dysfunction can also cause inflammation, nutritional, and oxidative stress in the fetus that can affect erythropoiesis. Here, we compared the expression of surface adhesion molecules and the erythroid differentiation capacity of UCB hematopoietic stem/progenitor cells (HSPCs), UCB erythroid profiles along with the transcriptome and proteome of these cells between male and female fetuses from PE and normotensive pregnancies. While no significant differences were observed in UCB HSPC migration/homing and in vitro erythroid colony differentiation, the UCB HSPC transcriptome and the proteomic profile of the in vitro differentiated erythroid cells differed between PE vs. normotensive samples. Accordingly, despite the absence of significant differences in the UCB erythroid populations in male or female fetuses from PE or normotensive pregnancies, transcriptional changes were observed during erythropoiesis, particularly affecting male fetuses. Pathway analysis suggested deregulation in the mammalian target of rapamycin complex 1/AMP-activated protein kinase (mTORC1/AMPK) signaling pathways controlling cell cycle, differentiation, and protein synthesis. These results associate PE with transcriptional and proteomic changes in fetal HSPCs and erythroid cells that may underlie the higher erythroblast count in the UCB in PE.
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