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The 4-vessel Sampling Approach to Integrative Studies of Human Placental Physiology In Vivo
Published on: August 2, 2017
Placental mitochondrial content and function in intrauterine growth restriction and preeclampsia
C Mandò1, C De Palma, T Stampalija
1Department of Mother and Child, L. Sacco University Hospital, Department of Biomedical and Clinical Sciences School of Medicine, Università degli Studi di Milano, Milan, Italy;
Insights
Mitochondrial function is altered in fetuses with intrauterine growth restriction (IUGR). IUGR placental cells show increased respiratory chain complex activity, potentially limiting fetal growth.
Area of Science:
- Obstetrics and Gynecology
- Maternal-Fetal Medicine
- Placental Biology
Background:
- Placental insufficiency, characterized by inadequate nutrient and oxygen supply, underlies intrauterine growth restriction (IUGR) and preeclampsia (PE).
- Mitochondrial dysfunction is implicated in placental pathologies, but its specific role in IUGR and PE requires further elucidation.
Purpose of the Study:
- To investigate mitochondrial content, respiratory chain complex (RCC) expression, and activity in placental cells from pregnancies complicated by IUGR and PE.
- To compare these parameters between IUGR, PE, and uncomplicated pregnancies.
Main Methods:
- Analysis of mitochondrial DNA (mtDNA) and nuclear respiratory factor 1 (NRF1) expression in placental tissue and isolated cytotrophoblast cells.
- Quantification of RCC gene and protein expression using real-time PCR and Western blotting.
- Assessment of mitochondrial oxygen consumption via high-resolution respirometry in placental cells.
Main Results:
- IUGR cytotrophoblast cells exhibited lower mRNA levels for RCC complexes II, III, and IV, with compensatory posttranscriptional regulation at the protein level.
- While IUGR placentas showed increased mtDNA, isolated cytotrophoblast cells had lower mtDNA and NRF1 expression.
- Crucially, cytotrophoblast RCC activity was significantly elevated in IUGR placentas, indicating enhanced mitochondrial functionality.
Conclusions:
- Mitochondrial content and activity vary between placental cell lineages in IUGR.
- Elevated mitochondrial functionality in IUGR cytotrophoblast cells may represent an adaptive response that ultimately limits fetal growth.
- These findings offer novel insights into placental oxygenation and energy metabolism in IUGR fetuses.
Abstract:
Intrauterine growth restriction (IUGR) and pregnancy hypertensive disorders such as preeclampsia (PE) associated with IUGR share a common placental phenotype called "placental insufficiency", originating in early gestation when high availability of energy is required. Here, we assess mitochondrial content and the expression and activity of respiratory chain complexes (RCC) in placental cells of these pathologies. We measured mitochondrial (mt)DNA and nuclear respiratory factor 1 (NRF1) expression in placental tissue and cytotrophoblast cells, gene and protein expressions of RCC (real-time PCR and Western blotting) and their oxygen consumption, using the innovative technique of high-resolution respirometry. We analyzed eight IUGR, six PE, and eight uncomplicated human pregnancies delivered by elective cesarean section. We found lower mRNA levels of complex II, III, and IV in IUGR cytotrophoblast cells but no differences at the protein level, suggesting a posttranscriptional compensatory regulation. mtDNA was increased in IUGR placentas. Both mtDNA and NRF1 expression were instead significantly lower in their isolated cytotrophoblast cells. Finally, cytotrophoblast RCC activity was significantly increased in placentas of IUGR fetuses. No significant differences were found in PE placentas. This study provides genuine new data into the complex physiology of placental oxygenation in IUGR fetuses. The higher mitochondrial content in IUGR placental tissue is reversed in cytotrophoblast cells, which instead present higher mitochondrial functionality. This suggests different mitochondrial content and activity depending on the placental cell lineage. Increased placental oxygen consumption might represent a limiting step in fetal growth restriction, preventing adequate oxygen delivery to the fetus.
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