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The 4-vessel Sampling Approach to Integrative Studies of Human Placental Physiology In Vivo
Published on: August 2, 2017
Feto-placental endothelial dysfunction in Gestational Diabetes Mellitus under dietary or insulin therapy
Jing-Jing Wang1, Xi Wang1, Qian Li1
1Department of Clinical pharmacy, First Affiliated hospital of Kunming Medical University, Yunnan, China.
Insights
Gestational diabetes mellitus (GDM) causes endothelial dysfunction in fetuses, even with controlled glucose levels. This dysfunction is linked to energy metabolism changes and the AKT/AMPK/mTOR pathway, impacting fetal development.
Area of Science:
- Obstetrics and Gynecology
- Maternal-Fetal Medicine
- Endothelial Biology
Background:
- Gestational diabetes mellitus (GDM) is a significant pregnancy complication.
- Maternal hyperglycemia can lead to adverse fetal outcomes.
- Placental endothelial function is crucial for fetal development and nutrient exchange.
Purpose of the Study:
- To investigate fetal endothelial dysfunction in GDM pregnancies.
- To compare endothelial cell changes under dietary intervention (GDM-D) versus insulin therapy (GDM-I).
- To explore the role of energy metabolism and signaling pathways in GDM-related endothelial dysfunction.
Main Methods:
- Primary human umbilical vein endothelial cells (HUVECs) were isolated from normal, GDM-D, and GDM-I pregnancies.
- Proteomic analysis using LC-MS/MS identified differentially expressed proteins.
- Assays measured glucose uptake, ATP levels, apoptosis, and key signaling pathway proteins (e.g., AKT, AMPK).
Main Results:
- 142 differentially expressed proteins were identified in GDM HUVECs compared to controls.
- Bioinformatics analysis implicated pathways like PI3K/AKT.
- GDM-I showed significantly reduced glucose uptake, GLUT1/3 levels, ATP, and altered AKT/AMPK phosphorylation, alongside increased apoptosis.
- GDM-D showed reduced GLUT1 and increased apoptosis.
Conclusions:
- Endothelial dysfunction is present in GDM pregnancies, irrespective of plasma glucose control.
- The degree of endothelial dysfunction may correlate with glucose tolerance.
- Energy metabolism dysfunction, potentially mediated by the AKT/AMPK/mTOR pathway, contributes to GDM-induced endothelial dysfunction.
Objective:
Gestational diabetes mellitus (GDM) is a serious complication in pregnancy. Despite controlling the plasma glucose levels with dietary intervention (GDM-D) or insulin therapy (GDM-I), children born of diabetic mothers suffer more long-term complications from childhood to early adulthood. Placental circulation and nutrient exchange play a vital role in fetal development. Additionally, placental endothelial function is an indicator of vascular health, and plays an important role in maintaining placental circulation for nutrient exchange. This study was conducted to assess changes in fetal endothelial dysfunction in GDM under different interventions during pregnancy.
Methods:
The primary human umbilical vein endothelial cells (HUVECs) were obtained from normal pregnant women (n = 11), GDM-D (n = 14), and GDM-I (n = 12) patients. LC-MS/MS was used to identify differentially expressed proteins in primary HUVECs among the three groups, after which Bioinformatics analysis was performed. Glucose uptake, ATP level, apoptosis, and differentially expressed proteins were assessed to investigate changes in energy metabolism.
Results:
A total of 8174 quantifiable proteins were detected, and 142 differentially expressed proteins were identified after comparing patients with GDM-D/GDM-I and healthy controls. Of the 142, 64 proteins were upregulated while 77 were downregulated. Bioinformatics analysis revealed that the differentially expressed proteins were involved in multiple biological processes and signaling pathways related to cellular processes, biological regulation, and metabolic processes. According to the results from KEGG analysis, there were changes in the PI3K/AKT signaling pathway after comparing the three groups. In addition, there was a decrease in glucose uptake in the GDM-I (P < 0.01) group. In GDM-I, there was a significant decrease in the levels of glucose transporter 1 (GLUT1) and glucose transporter 3 (GLUT3). Moreover, glucose uptake was significantly decreased in GDM-I, although in GDM-D, there was only a decrease in the levels of GLUT1. ATP levels decreased in GDM-I (P < 0.05) and apoptosis occurred in both the GDM-D and GDM-I groups. Compared to the normal controls, the levels of phosphate AKT and phosphate AMPK over total AKT and AMPK were reduced in the GDM-I group.
Conclusion:
In summary, endothelial dysfunction occurred in pregnancies with GDM even though the plasma glucose levels were controlled, and this dysfunction might be related to the degree of glucose tolerance. The energy dysfunction might be related to the regulation of the AKT/AMPK/mTOR signaling pathway.
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