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Updated: Jul 2, 2025

Author Spotlight: Modeling an Aspect of Preeclampsia in Female Mice Using Hypoxic Human Placenta-Derived Small Extracellular Vesicles
Published on: January 26, 2024
An integral role of mitochondrial function in the pathophysiology of preeclampsia
Hiroshi Kobayashi1,2, Chiharu Yoshimoto3,4, Sho Matsubara3,5
1Department of Gynecology and Reproductive Medicine, Ms.Clinic MayOne, 871-1 Shijo-cho, Kashihara, 634-0813, Japan. hirokoba@naramed-u.ac.jp.
Insights
Mitochondrial dysfunction in preeclampsia (PE) placentas involves fragmentation and damage, impacting trophoblast cell survival. Understanding these molecular changes is key to developing effective PE treatments.
Area of Science:
- Obstetrics and Gynecology
- Mitochondrial Biology
- Pathophysiology
Background:
- Preeclampsia (PE) poses significant risks to maternal and perinatal health.
- Limited understanding of PE pathogenesis hinders effective treatment development.
- Mitochondria play crucial roles in placental cell function, energy production, and homeostasis.
Purpose of the Study:
- To review current research on mitochondrial function in normal and PE placentas.
- To explore the molecular basis of mitochondrial dysfunction in PE.
- To discuss future research directions for PE treatment strategies.
Main Methods:
- Review of molecular studies on spatial and temporal changes in placental mitochondrial function.
- Analysis of mitochondrial morphology, dynamics, energy production, and mitophagy in PE.
- Identification of molecular markers associated with placental repair and compensatory mechanisms.
Main Results:
- PE placentas exhibit hypoxia-mediated mitochondrial fission, increased fragmentation, and tissue damage.
- Disruption of mitochondrial repair mechanisms can lead to trophoblast cell apoptosis.
- Contradictory findings exist regarding molecules controlling mitochondrial biogenesis, dynamics, and mitophagy in PE.
Conclusions:
- Mitochondrial morphology and function critically influence trophoblast cell fate in normal and pathological placentation.
- Understanding mitochondrial roles is essential for elucidating PE pathogenesis.
- Further research into mitochondrial function offers promising avenues for effective PE treatment strategies.
Abstract:
Preeclampsia (PE) is associated with high maternal and perinatal morbidity and mortality. The development of effective treatment strategies remains a major challenge due to the limited understanding of the pathogenesis. In this review, we summarize the current understanding of PE research, focusing on the molecular basis of mitochondrial function in normal and PE placentas, and discuss perspectives on future research directions. Mitochondria integrate numerous physiological processes such as energy production, cellular redox homeostasis, mitochondrial dynamics, and mitophagy, a selective autophagic clearance of damaged or dysfunctional mitochondria. Normal placental mitochondria have evolved innovative survival strategies to cope with uncertain environments (e.g., hypoxia and nutrient starvation). Cytotrophoblasts, extravillous trophoblast cells, and syncytiotrophoblasts all have distinct mitochondrial morphology and function. Recent advances in molecular studies on the spatial and temporal changes in normal mitochondrial function are providing valuable insight into PE pathogenesis. In PE placentas, hypoxia-mediated mitochondrial fission may induce activation of mitophagy machinery, leading to increased mitochondrial fragmentation and placental tissue damage over time. Repair mechanisms in mitochondrial function restore placental function, but disruption of compensatory mechanisms can induce apoptotic death of trophoblast cells. Additionally, molecular markers associated with repair or compensatory mechanisms that may influence the development and progression of PE are beginning to be identified. However, contradictory results have been obtained regarding some of the molecules that control mitochondrial biogenesis, dynamics, and mitophagy in PE placentas. In conclusion, understanding how the mitochondrial morphology and function influence cell fate decisions of trophoblast cells is an important issue in normal as well as pathological placentation biology. Research focusing on mitochondrial function will become increasingly important for elucidating the pathogenesis and effective treatment strategies of PE.
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