Linking Oxidative Stress to Placental Dysfunction: The Key Role of Mitochondria in Trophoblast Function
Abstract
1. Introduction
2. Materials and Methods
3. Results
3.1. Mitochondrial Dysfunction and Redox Imbalance in PE
3.2. Hypoxia-Driven Metabolic and Cholesterol Dysregulation in Trophoblasts
3.3. Redox-Sensitive Genes Regulating Trophoblast Survival and Dysfunction
3.4. OS, Inflammation, and Autophagy–Inflammasome Crosstalk
3.5. Metabolic, Environmental, and Maternal Stressors Inducing Placental OS
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| ABCA1 | ATP-binding cassette subfamily A member 1 |
| ABCG1 | ATP-binding cassette subfamily G member 1 |
| AUF1 | AU-rich element RNA-binding protein 1 |
| ATP | Adenosine triphosphate |
| AMA | Advanced maternal age |
| AOPPs | Advanced oxidation protein products |
| AGTR4 | Angiotensin II receptor type 4 |
| ANKRD37 | Ankyrin repeat domain containing 37 |
| ATG5 | Autophagy related 5 |
| ATG7 | Autophagy related 7 |
| Bcl-2 | B-cell lymphoma 2 |
| Bax | BCL2 associated X, apoptosis regulator |
| BNIP3 | BCL2 interacting protein 3 |
| BNIP3L | BCL2 interacting protein 3-like |
| BECN1 | Beclin1 |
| CXCR3 | C-X-C motif chemokine receptor 3 |
| CXCL11 | Chemokine (C-X-C motif) ligand 11 |
| CGB | Chorionic gonadotropin subunit beta |
| COLEC12 | Collectin subfamily member 12 |
| cAMP | Cyclic adenosine monophosphate |
| p21 | Cyclin-dependent kinase inhibitor 1A |
| CYP11A1 | Cytochrome P450 family 11 subfamily A member 1 |
| CYP19A1 | Cytochrome P450 family 19 subfamily A member 1 |
| COX | Cytochrome c oxidase |
| COXII | Cytochrome c oxidase subunit II |
| CTB | Cytotrophoblast |
| DNMT1 | DNA methyltransferase 1 |
| DNMT3A | DNA methyltransferase 3 alpha |
| DSCs | Decidual stromal cells |
| DCTPP1 | Deoxycytidine triphosphate pyrophosphatase 1 |
| DNM1L | Dynamin 1-like |
| DRP1 | Dynamin-related protein 1 |
| ETC | Electron transport chain |
| ER | Endoplasmic reticulum |
| EGFR | Epidermal growth factor receptor |
| ERRα | Estrogen-related receptor alpha |
| EVs | Extracellular vesicles |
| EVT | Extravillous trophoblast |
| FABP5 | Fatty acid binding protein 5 |
| FLT-1 | Fms related receptor tyrosine kinase 1 |
| FOXO | Forkhead box O |
| GDM | Gestational diabetes mellitus |
| GLUT1 | Glucose transporter 1 |
| GLUT4 | Glucose transporter 4 |
| GRP78 | Glucose-regulated protein 78 |
| GRP94 | Glucose-regulated protein 94 |
| GCLC | Glutamate-cysteine ligase catalytic subunit |
| GSH | Glutathione |
| GSH-Px | Glutathione peroxidase |
| HSPB8 | Heat shock protein family B (small) member 8 |
| HO-1 | Heme oxygenase 1 |
| HMOX-1 | Heme oxygenase 1 (gene) |
| HKII | Hexokinase II |
| hAECs | Human amniotic epithelial cells |
| hCG | Human chorionic gonadotropin |
| HIP | Hyperglycemia in pregnancy |
| HIF-1α | Hypoxia-inducible factor 1 alpha |
| HIF-2α | Hypoxia-inducible factor 2 alpha |
| iPSCs | Induced pluripotent stem cells |
| IRE1α | Inositol-requiring enzyme 1 alpha |
| IRβ | Insulin receptor beta |
| IRS-1 | Insulin receptor substrate 1 |
| IL-1β | Interleukin 1 beta |
| I/R | Ischemia–reperfusion |
| Keap1 | Kelch-like ECH-associated protein 1 |
| KLF9 | Krüppel-like factor 9 |
| LAT1 | L-type amino acid transporter 1 |
| LDLR | Low-density lipoprotein receptor |
| MDA | Malondialdehyde |
| MMP-2 | Matrix metalloproteinase 2 |
| MMP-9 | Matrix metalloproteinase 9 |
| MGST1 | Microsomal glutathione S-transferase 1 |
| mtDNA | Mitochondrial DNA |
| FtMt | Mitochondrial ferritin |
| mtROS | Mitochondrial reactive oxygen species |
| MEHP | Mono-(2-ethylhexyl) phthalate |
| MPO | Myeloperoxidase |
| NAC | N-acetylcysteine |
| NOX4 | NADPH oxidase 4 |
| NLRP1 | NLR family pyrin domain containing 1 |
| NLRP3 | NLR family pyrin domain containing 3 |
| NRF2 | Nuclear factor erythroid 2-related factor 2 |
| NR4A2 | Nuclear receptor subfamily 4 group A member 2 |
| OS | Oxidative stress |
| PRDX1 | Peroxiredoxin 1 |
| PRDX6 | Peroxiredoxin 6 |
| PTEN | Phosphatase and tensin homolog |
| PGM5 | Phosphoglucomutase 5 |
| PlGF | Placental growth factor |
| PE | Preeclampsia |
| PGE2 | Prostaglandin E2 |
| COX-2 | Prostaglandin-endoperoxide synthase 2 |
| AKT | Protein kinase B |
| ROS | Reactive oxygen species |
| RND3 | Rho family GTPase 3 |
| p70S6K | Ribosomal protein S6 kinase beta-1 |
| SR-BI | Scavenger receptor class B type I |
| SA-β-gal | Senescence-associated beta-galactosidase |
| SAHF | Senescence-associated heterochromatin foci |
| SPINT1 | Serine peptidase inhibitor, Kunitz type 1 |
| SIRT3 | Sirtuin 3 |
| SLC1A5 | Solute carrier family 1 member 5 |
| SOD | Superoxide dismutase |
| TRX | Thioredoxin |
| TIMP-1 | Tissue inhibitor of metalloproteinases 1 |
| TIMP-2 | Tissue inhibitor of metalloproteinases 2 |
| TNF | Tumor necrosis factor |
| UCP2 | Uncoupling protein 2 |
| uPA | Urokinase-type plasminogen activator |
| VEGF-A | Vascular endothelial growth factor A |
| VHL | Von Hippel–Lindau tumor suppressor |
| YAP | Yes-associated protein |
| p38MAPK | p38 mitogen-activated protein kinase |
| MnSOD2 | Manganese superoxide dismutase 2 |
References
- Burton, G.J.; Jauniaux, E. The human placenta: New perspectives on its formation and function during early pregnancy. Proc. Biol. Sci. 2023, 290, 20230191. [Google Scholar] [CrossRef] [PubMed]
- Du, X.; Li, Q.; Cao, Q.; Wang, S.; Liu, H.; Li, Q. Integrated Analysis of miRNA-mRNA Interaction Network in Porcine Granulosa Cells Undergoing Oxidative Stress. Oxid. Med. Cell. Longev. 2019, 2019, 1041583. [Google Scholar] [CrossRef]
- Cacciottola, L.; Donnez, J.; Dolmans, M.M. Oxidative stress, mitochondria, and infertility: Is the relationship fully established? Fertil. Steril. 2021, 116, 306–308. [Google Scholar] [CrossRef]
- Sultana, Z.; Qiao, Y.; Maiti, K.; Smith, R. Involvement of oxidative stress in placental dysfunction, the pathophysiology of fetal death and pregnancy disorders. Reproduction 2023, 166, R25–R38. [Google Scholar] [CrossRef]
- Joo, E.H.; Kim, Y.R.; Kim, N.; Jung, J.E.; Han, S.H.; Cho, H.Y. Effect of Endogenic and Exogenic Oxidative Stress Triggers on Adverse Pregnancy Outcomes: Preeclampsia, Fetal Growth Restriction, Gestational Diabetes Mellitus and Preterm Birth. Int. J. Mol. Sci. 2021, 22, 10122. [Google Scholar] [CrossRef]
- Guerby, P.; Tasta, O.; Swiader, A.; Pont, F.; Bujold, E.; Parant, O.; Vayssiere, C.; Salvayre, R.; Negre-Salvayre, A. Role of oxidative stress in the dysfunction of the placental endothelial nitric oxide synthase in preeclampsia. Redox Biol. 2021, 40, 101861. [Google Scholar] [CrossRef]
- Vornic, I.; Buciu, V.; Furau, C.G.; Gaje, P.N.; Ceausu, R.A.; Dumitru, C.S.; Barb, A.C.; Novacescu, D.; Cumpanas, A.A.; Latcu, S.C.; et al. Oxidative Stress and Placental Pathogenesis: A Contemporary Overview of Potential Biomarkers and Emerging Therapeutics. Int. J. Mol. Sci. 2024, 25, 12195. [Google Scholar] [CrossRef]
- Vangrieken, P.; Al-Nasiry, S.; Bast, A.; Leermakers, P.A.; Tulen, C.B.M.; Schiffers, P.M.H.; van Schooten, F.J.; Remels, A.H.V. Placental Mitochondrial Abnormalities in Preeclampsia. Reprod. Sci. 2021, 28, 2186–2199. [Google Scholar] [CrossRef]
- Fuenzalida, B.; Kallol, S.; Zaugg, J.; Mueller, M.; Mistry, H.D.; Gutierrez, J.; Leiva, A.; Albrecht, C. Primary Human Trophoblasts Mimic the Preeclampsia Phenotype after Acute Hypoxia-Reoxygenation Insult. Cells 2022, 11, 1898. [Google Scholar] [CrossRef] [PubMed]
- Yu, J.H.; Jung, Y.J.; Kim, M.S.; Cho, S.R.; Kim, Y.H. Differential Expression of NME4 in Trophoblast Stem-Like Cells and Peripheral Blood Mononuclear Cells of Normal Pregnancy and Preeclampsia. J. Korean Med. Sci. 2023, 38, e128. [Google Scholar] [CrossRef] [PubMed]
- Alfaki Ahmed, S.A.; Adam, M.; HM, M.O.; Fahad Alqahtani, N.H.; Mahdi Gabreldaar, A.E.; Hassan Abdalla, M.S.; Alhessen Saidahmed, R.O. Artificial Intelligence for Early Detection of Preeclampsia and Gestational Diabetes Mellitus: A Systematic Review of Diagnostic Performance. Cureus 2025, 17, e92585. [Google Scholar] [CrossRef]
- Milano-Foster, J.; Schulz, L.C. RISING STARS: Approaches to modeling placental function in preeclampsia in vitro and in vivo. J. Endocrinol. 2023, 258, e230008. [Google Scholar] [CrossRef] [PubMed]
- Fuenzalida, B.; Yanez, M.J.; Mueller, M.; Mistry, H.D.; Leiva, A.; Albrecht, C. Evidence for hypoxia-induced dysregulated cholesterol homeostasis in preeclampsia: Insights into the mechanisms from human placental cells and tissues. FASEB J. 2024, 38, e23431. [Google Scholar] [CrossRef]
- de Alwis, N.; Beard, S.; Binder, N.K.; Pritchard, N.; Kaitu’u-Lino, T.J.; Walker, S.P.; Stock, O.; Groom, K.M.; Petersen, S.; Henry, A.; et al. NR4A2 expression is not altered in placentas from cases of growth restriction or preeclampsia, but is reduced in hypoxic cytotrophoblast. Sci. Rep. 2021, 11, 20670. [Google Scholar] [CrossRef]
- Li, Z.; Wang, S.; Li, L. Advanced Oxidative Protein Products Drive Trophoblast Cells into Senescence by Inhibiting the Autophagy: The Potential Implication of Preeclampsia. Front. Cell Dev. Biol. 2022, 10, 810282. [Google Scholar] [CrossRef]
- Chen, L.; Wu, M.; Zhou, Y. HSPB8 binding to c-Myc alleviates hypoxia/reoxygenation-induced trophoblast cell dysfunction. Exp. Ther. Med. 2024, 27, 114. [Google Scholar] [CrossRef]
- Fan, C.; Zhou, H.; Pan, Y.; Lu, D. IGF2BP1 Enhances Neprilysin mRNA Stability to Promote Proliferation, Invasion, and Angiogenesis in Placental Trophoblasts. Int. J. Gen. Med. 2025, 18, 967–980. [Google Scholar] [CrossRef]
- Xu, X.; Ye, X.; Zhu, M.; Zhang, Q.; Li, X.; Yan, J. FtMt reduces oxidative stress-induced trophoblast cell dysfunction via the HIF-1alpha/VEGF signaling pathway. BMC Pregnancy Childbirth 2023, 23, 131. [Google Scholar] [CrossRef]
- Luo, Q.; Tian, Y.; Qu, G.; Huang, K.; Hu, P.; Li, L.; Luo, S. MiR-141-3p promotes hypoxia-induced autophagy in human placental trophoblast cells. Reprod. Biol. 2023, 23, 100712. [Google Scholar] [CrossRef]
- Mukherjee, I.; Dhar, R.; Singh, S.; Sharma, J.B.; Nag, T.C.; Mridha, A.R.; Jaiswal, P.; Biswas, S.; Karmakar, S. Oxidative stress-induced impairment of trophoblast function causes preeclampsia through the unfolded protein response pathway. Sci. Rep. 2021, 11, 18415. [Google Scholar] [CrossRef] [PubMed]
- Qiu, D.; Wu, J.; Li, M.; Wang, L.; Zhu, X.; Chen, Y. Impaction of factors associated with oxidative stress on the pathogenesis of gestational hypertension and preeclampsia: A Chinese patients based study. Medicine 2021, 100, e23666. [Google Scholar] [CrossRef]
- Zhou, M.; Guo, J.; Li, S.; Li, A.; Fang, Z.; Zhao, M.; Zhang, M.; Wang, X. Effect of peroxiredoxin 1 on the regulation of trophoblast function by affecting autophagy and oxidative stress in preeclampsia. J. Assist. Reprod. Genet. 2023, 40, 1573–1587. [Google Scholar] [CrossRef]
- Dai, H.; Lu, X. MGST1 alleviates the oxidative stress of trophoblast cells induced by hypoxia/reoxygenation and promotes cell proliferation, migration, and invasion by activating the PI3K/AKT/mTOR pathway. Open Med. 2022, 17, 2062–2071. [Google Scholar] [CrossRef] [PubMed]
- Yan, X.; Fang, Y.; Yuan, Y.; Ding, Y.; Yu, H.; Li, Y.; Shi, Q.; Gao, Y.; Zhou, X.; Zhang, D.; et al. Combined analysis of the effects of hypoxia and oxidative stress on DNA methylation and the transcriptome in HTR-8/SVneo trophoblast cells. J. Cell. Mol. Med. 2024, 28, e18469. [Google Scholar] [CrossRef]
- Costa, L.; Bermudez-Guzman, L.; Benouda, I.; Laissue, P.; Morel, A.; Jimenez, K.M.; Fournier, T.; Stouvenel, L.; Mehats, C.; Miralles, F.; et al. Linking genotype to trophoblast phenotype in preeclampsia and HELLP syndrome associated with STOX1 genetic variants. iScience 2024, 27, 109260. [Google Scholar] [CrossRef] [PubMed]
- Wang, S.; Ning, J.; Huai, J.; Yang, H. Hyperglycemia in Pregnancy-Associated Oxidative Stress Augments Altered Placental Glucose Transporter 1 Trafficking via AMPKalpha/p38MAPK Signaling Cascade. Int. J. Mol. Sci. 2022, 23, 8572. [Google Scholar] [CrossRef]
- Jin, B.; Hu, M.; Chen, J.; Yu, L. COLEC12 expression participates in trophoblast insulin resistance, and reverses celecoxib-mediated inhibition of COX2-PGE2 axis in gestational diabetes. Trop. J. Pharm. Res. 2023, 22, 959–965. [Google Scholar] [CrossRef]
- Huang, T.T.; Sun, W.J.; Liu, H.Y.; Ma, H.L.; Cui, B.X. p66Shc-mediated oxidative stress is involved in gestational diabetes mellitus. World J. Diabetes 2021, 12, 1894–1907. [Google Scholar] [CrossRef]
- Vornic, I.; Nesiu, A.; Ardelean, A.M.; Todut, O.C.; Pasare, V.C.; Onel, C.; Raducan, I.D.; Furau, C.G. Antioxidant Defenses, Oxidative Stress Responses, and Apoptosis Modulation in Spontaneous Abortion: An Immunohistochemistry Analysis of First-Trimester Chorionic Villi. Life 2024, 14, 1074. [Google Scholar] [CrossRef]
- Hahka, T.; Sekar, D.; Sahoo, P.K.; Ravi, A.; Freel, C.; Krishnamoorthy, C.; Ramamurthy, S.; Rapoza, R.; Drakowski, R.; Akbar, A.; et al. RvD2 mitigates TNFa-Induced mitochondrial reactive oxygen species through NRF2 signaling in placental trophoblasts. Front. Physiol. 2025, 16, 1547940. [Google Scholar] [CrossRef]
- Meruvu, S.; Ding, Z.; Choudhury, M. Mono-(2-ethylhexyl) phthalate induces trophoblast hypoxia and mitochondrial dysfunction through HIF-1alpha-miR-210-3p axis in HTR-8/SVneo cell line. Curr. Res. Toxicol. 2024, 7, 100188. [Google Scholar] [CrossRef]
- Granitzer, S.; Widhalm, R.; Forsthuber, M.; Ellinger, I.; Desoye, G.; Hengstschlager, M.; Zeisler, H.; Salzer, H.; Gundacker, C. Amino Acid Transporter LAT1 (SLC7A5) Mediates MeHg-Induced Oxidative Stress Defense in the Human Placental Cell Line HTR-8/SVneo. Int. J. Mol. Sci. 2021, 22, 1707. [Google Scholar] [CrossRef]
- Guo, S.; Pan, Q.; Chen, B.; Huang, Y.; Li, S.; Gou, C.; Gao, Y. Placental trophoblast aging in advanced maternal age is related to increased oxidative damage and decreased YAP. Front. Cell Dev. Biol. 2025, 13, 1479960. [Google Scholar] [CrossRef]
- Vangrieken, P.; Al-Nasiry, S.; Bast, A.; Leermakers, P.A.; Tulen, C.B.M.; Janssen, G.M.J.; Kaminski, I.; Geomini, I.; Lemmens, T.; Schiffers, P.M.H.; et al. Hypoxia-induced mitochondrial abnormalities in cells of the placenta. PLoS ONE 2021, 16, e0245155. [Google Scholar] [CrossRef]
- Li, Q.; Chen, M. KLF9 mediates NLRP3 inflammasome and reactive oxygen species to mediate pyroptosis in trophoblasts. Hum. Exp. Toxicol. 2025, 44, 9603271251324702. [Google Scholar] [CrossRef]
- Li, M.; Sun, T.; Wu, X.; An, P.; Wu, X.; Dang, H. Autophagy in the HTR-8/SVneo Cell Oxidative Stress Model Is Associated with the NLRP1 Inflammasome. Oxid. Med. Cell. Longev. 2021, 2021, 2353504. [Google Scholar] [CrossRef]
- Lu, Y.; Wu, X.; He, L.; Pan, P.; Zhao, A.; Kan, T.; Chu, Y.; Dong, J.; Xu, S.; Tan, X.; et al. DCTPP1 regulates oxidative stress homeostasis via AUF1 in human villous trophoblasts. Cell Death Discov. 2025, 11, 400. [Google Scholar] [CrossRef] [PubMed]
- Pinto-Ribeiro, L.; Silva, C.; Andrade, N.; Martel, F. alpha-tocopherol prevents oxidative stress-induced proliferative dysfunction in first-trimester human placental (HTR-8/SVneo) cells. Reprod. Biol. 2022, 22, 100602. [Google Scholar] [CrossRef] [PubMed]
- Wang, X.; Li, M.; Zhang, X.; Li, Y.; He, G.; Dinnyes, A.; Sun, Q.; Xu, W. CYP11A1 Upregulation Leads to Trophoblast Oxidative Stress and Fetal Neurodevelopmental Toxicity That can be Rescued by Vitamin D. Front. Mol. Biosci. 2020, 7, 608447. [Google Scholar] [CrossRef]
- Li, D.; Duan, H.; Jiang, Z.; Zhou, C.; Cao, C.; Ni, M.; He, L.; Zhu, X.; Jin, L.; Liu, W.; et al. Oxidative stress-induced decreased expression of FABP5 leads to mitochondrial damage and survival disorder of decidual stromal cells in women with recurrent spontaneous abortion. Free. Radic. Biol. Med. 2025, 237, 270–284. [Google Scholar] [CrossRef] [PubMed]
- Sierla, J.R.; Pagerols Raluy, L.; Trochimiuk, M.; Trah, J.; Petrosyan, M.; Velasquez, L.N.; Schumacher, U.; Singer, D.; Heiter, J. Disparity Between Functional and Structural Recovery of Placental Mitochondria After Exposure to Hypoxia. Int. J. Mol. Sci. 2025, 26, 2956. [Google Scholar] [CrossRef]
- Wang, X.; Yu, S.; Jian, Y.; Pan, H.; Guo, J.; Wu, J.; Guo, W. Hydrogen sulfide against preeclampsia exposure-induced oxidative mitochondrial damage in HTR-8/SVneo cells. Front. Cardiovasc. Med. 2022, 9, 1023982. [Google Scholar] [CrossRef]
- Khan, T.; Waseem, R.; Zehra, Z.; Aiman, A.; Bhardwaj, P.; Ansari, J.; Hassan, M.I.; Islam, A. Mitochondrial Dysfunction: Pathophysiology and Mitochondria-Targeted Drug Delivery Approaches. Pharmaceutics 2022, 14, 2657. [Google Scholar] [CrossRef]
- Liu, H.; Wang, S.; Wang, J.; Guo, X.; Song, Y.; Fu, K.; Gao, Z.; Liu, D.; He, W.; Yang, L.L. Energy metabolism in health and diseases. Signal Transduct. Target. Ther. 2025, 10, 69. [Google Scholar] [CrossRef]
- Feng, H.; Wang, L.; Zhang, G.; Zhang, Z.; Guo, W. Oxidative stress activated by Keap-1/Nrf2 signaling pathway in pathogenesis of preeclampsia. Int. J. Clin. Exp. Pathol. 2020, 13, 382. [Google Scholar]
- Zhou, X.; Zhao, X.; Zhou, W.; Qi, H.; Zhang, H.; Han, T.L.; Baker, P. Impaired placental mitophagy and oxidative stress are associated with dysregulated BNIP3 in preeclampsia. Sci. Rep. 2021, 11, 20469. [Google Scholar] [CrossRef]
- McCracken, S.A.; Seeho, S.K.M.; Carrodus, T.; Park, J.H.; Woodland, N.; Gallery, E.D.M.; Morris, J.M.; Ashton, A.W. Dysregulation of Oxygen Sensing/Response Pathways in Pregnancies Complicated by Idiopathic Intrauterine Growth Restriction and Early-Onset Preeclampsia. Int. J. Mol. Sci. 2022, 23, 2772. [Google Scholar] [CrossRef] [PubMed]
- Gu, Y.; Cooper, D.; Lewis, D.F.; Zoorob, D.; Wang, Y. Oxidative stress contributes to hypermethylation of Histone H3 lysine 9 in placental trophoblasts from preeclamptic pregnancies. Front. Endocrinol. 2024, 15, 1371220. [Google Scholar] [CrossRef] [PubMed]
- Wu, Q.; Ying, X.; Yu, W.; Li, H.; Wei, W.; Lin, X.; Zhang, X. Identification of ferroptosis-related genes in syncytiotrophoblast-derived extracellular vesicles of preeclampsia. Medicine 2022, 101, e31583. [Google Scholar] [CrossRef]
- Voros, C.; Stavros, S.; Sapantzoglou, I.; Mavrogianni, D.; Daskalaki, M.A.; Theodora, M.; Antsaklis, P.; Drakakis, P.; Loutradis, D.; Daskalakis, G. The Role of Placental Mitochondrial Dysfunction in Adverse Perinatal Outcomes: A Systematic Review. J. Clin. Med. 2025, 14, 3838. [Google Scholar] [CrossRef]
- Toledano, J.M.; Puche-Juarez, M.; Galvez-Navas, J.M.; Moreno-Fernandez, J.; Diaz-Castro, J.; Ochoa, J.J. Pregnancy Disorders: A Potential Role for Mitochondrial Altered Homeostasis. Antioxidants 2024, 13, 979. [Google Scholar] [CrossRef]
- Jahan, F.; Vasam, G.; Green, A.E.; Bainbridge, S.A.; Menzies, K.J. Placental Mitochondrial Function and Dysfunction in Preeclampsia. Int. J. Mol. Sci. 2023, 24, 4177. [Google Scholar] [CrossRef] [PubMed]
- Knofler, M.; Haider, S.; Saleh, L.; Pollheimer, J.; Gamage, T.; James, J. Human placenta and trophoblast development: Key molecular mechanisms and model systems. Cell. Mol. Life Sci. 2019, 76, 3479–3496. [Google Scholar] [CrossRef] [PubMed]
- Barron, A.; Tuulari, J.J.; Karlsson, L.; Karlsson, H.; O’Keeffe, G.W.; McCarthy, C.M. Simulated ischaemia/reperfusion impairs trophoblast function through divergent oxidative stress- and MMP-9-dependent mechanisms. Biosci. Rep. 2024, 44, BSR20240763. [Google Scholar] [CrossRef]

| Stress Context | Mitochondrial Alteration | Key Trophoblast Outcome | Key Limitation/Gap |
|---|---|---|---|
| PE | Impaired OXPHOS, increased ROS | Reduced invasion, apoptosis | Causality unresolved |
| Hypoxia/H-R | Mitochondrial fission, OS | Altered differentiation | Model-dependent effects |
| GDM | Metabolic reprogramming | Insulin resistance | Human validation limited |
| Toxicants | mtDNA damage | Senescence/apoptosis | Exposure heterogeneity |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Vasilaki, I.; Potiris, A.; Moustakli, E.; Mavrogianni, D.; Daponte, N.; Karampitsakos, T.; Kozonis, A.; Louis, K.; Messini, C.; Grigoriadis, T.; et al. Linking Oxidative Stress to Placental Dysfunction: The Key Role of Mitochondria in Trophoblast Function. Med. Sci. 2026, 14, 53. https://doi.org/10.3390/medsci14010053
Vasilaki I, Potiris A, Moustakli E, Mavrogianni D, Daponte N, Karampitsakos T, Kozonis A, Louis K, Messini C, Grigoriadis T, et al. Linking Oxidative Stress to Placental Dysfunction: The Key Role of Mitochondria in Trophoblast Function. Medical Sciences. 2026; 14(1):53. https://doi.org/10.3390/medsci14010053
Chicago/Turabian StyleVasilaki, Ioanna, Anastasios Potiris, Efthalia Moustakli, Despoina Mavrogianni, Nikoletta Daponte, Theodoros Karampitsakos, Alexios Kozonis, Konstantinos Louis, Christina Messini, Themos Grigoriadis, and et al. 2026. "Linking Oxidative Stress to Placental Dysfunction: The Key Role of Mitochondria in Trophoblast Function" Medical Sciences 14, no. 1: 53. https://doi.org/10.3390/medsci14010053
APA StyleVasilaki, I., Potiris, A., Moustakli, E., Mavrogianni, D., Daponte, N., Karampitsakos, T., Kozonis, A., Louis, K., Messini, C., Grigoriadis, T., Domali, E., & Stavros, S. (2026). Linking Oxidative Stress to Placental Dysfunction: The Key Role of Mitochondria in Trophoblast Function. Medical Sciences, 14(1), 53. https://doi.org/10.3390/medsci14010053

