Related Experiment Video
Updated: Aug 31, 2026

Disruption of the Mouse Blood-Brain Barrier by Small Extracellular Vesicles from Hypoxic Human Placentas
Published on: January 26, 2024
Placental Extracellular Vesicles in Preeclampsia: Molecular Cargo, Pathophysiological Roles, and Emerging Diagnostic
Marhaen Hardjo1, Alfi Sophian2
1Department of Biochemistry, Faculty of Medicine, Hasanuddin University, Makassar, South Sulawesi, Indonesia.
Abstract:
Preeclampsia (PE) affects 2%-8% of pregnancies globally and remains a leading cause of maternal and perinatal mortality. A central clinical gap is the absence of analytically and clinically validated non-invasive biomarkers capable of predicting PE before symptom onset. Current clinical tools, including angiogenic markers (sFlt-1/PlGF ratio) and first-trimester risk algorithms, have limitations that underscore the need for complementary approaches. Placental extracellular vesicles (EVs)-small particles released predominantly by syncytiotrophoblast cells-are implicated across PE pathophysiology. Circulating total small EV (sEV) concentrations, typically 30-150 nm and isolated by differential centrifugation or size-exclusion chromatography, are measurably elevated in maternal circulation from the first trimester in women who develop PE; this operational, size- and isolation-based definition does not by itself establish placental origin, which requires placental-attribution markers (e.g., PLAP, syncytins) discussed in Section 2. Their molecular cargo, encompassing microRNAs (miR-210, miR-15a-5p, miR-520a-5p, miR-146a-5p, miR-93-5p), anti-angiogenic proteins (sFlt-1, sEng), and hypoxia markers (HIF-1α), reflects placental pathophysiology. Recent evidence has expanded the known pathophysiological reach of placental EVs: beyond endothelial dysfunction and angiogenic imbalance, they are now implicated in blood-brain barrier disruption via claudin-5 (CLDN5) downregulation, supporting a plausible mechanistic link to neurological complications of PE. Proteomic profiling of EV fractions identifies molecularly distinct PE subtypes, enabling investigational subtype discrimination beyond current clinical criteria. Recent in vivo proof-of-concept evidence in a rat model demonstrates that amniotic fluid-derived EV-associated miR-146a-5p ameliorates PE phenotypes, opening a preclinical therapeutic avenue. This narrative review synthesises evidence from a structured PubMed/MEDLINE and Scopus search covering 2017-March 2025 on placental EV biogenesis, cargo heterogeneity, immune modulation, organ-specific pathological consequences, and translational potential as first-trimester liquid biopsy candidates. Methodological standardization challenges and future research priorities are discussed.
More Related Videos
04:56Determination of the Procoagulant Activity of Extracellular Vesicle (EV) Using EV-Activated Clotting Time (EV-ACT)
Published on: August 4, 2023
09:04Comprehensive Evaluation of the Effectiveness and Safety of Placenta-Targeted Drug Delivery Using Three Complementary Methods
Published on: September 10, 2018
Related Concept Videos
Overview of Exosomes
Stahl et al. discovered exosomes in 1983, but the exosomes were initially considered waste products released from the...
Physiological Barriers
The blood endothelial barrier is the most porous of these. It allows all small ionized, un-ionized, and lipophilic molecules to pass through the endothelial lining into the interstitial space...