Applications of Exosomes in Female Medicine: A Systematic Review of Molecular Biology, Diagnostic and Therapeutic Perspectives

Применение экзосом в женской медицине: систематический обзор молекулярно-биологических, диагностических и терапевтических аспектов
Jie-Hong Chen, Kuo-Hu Chen, Heidi Mariadas
2026-01-03

ESCRT-dependent pathwayexosomal miRNA biomarkersexosomesextracellular vesiclesreproductive medicine
Exosomes are nanoscale extracellular vesicles that mediate intercellular communication by transporting microRNAs, proteins, and lipids. Generated through Endosomal Sorting Complex Required for Transport (ESCRT)-dependent mechanisms or ESCRT-independent pathways, exosomes are released when multivesicular bodies fuse with the plasma membrane. The ESCRT-dependent pathway involves sequential protein complexes (ESCRT-0, I, II, III) that recognize and sort ubiquitinated cargo, induce membrane budding, and facilitate vesicle scission. In contrast, the ESCRT-independent pathway relies on membrane lipids such as ceramide and proteins like tetraspanins (CD9, CD63, CD81) to promote vesicle formation without ESCRT machinery. Furthermore, post-translational modifications, including ubiquitination, sumoylation, and phosphorylation, further serve as molecular switches, modulating the affinity of ESCRT complexes or cargo proteins for membrane domains and affecting ILV formation rates. In reproductive medicine, exosomes regulate oocyte maturation, embryo-endometrial crosstalk, placental development, and maternal-fetal communication. Altered exosomal signaling contributes to obstetric complications, including preeclampsia, gestational diabetes mellitus, and preterm birth, whereas distinct exosomal miRNA signatures serve as potential diagnostic biomarkers. In gynecology, dysregulated exosomes are implicated in endometriosis, polycystic ovary syndrome, premature ovarian insufficiency, and gynecological malignancies. In contrast, mesenchymal stem cell-derived exosomes show therapeutic promise in restoring ovarian function and enhancing fertility outcomes. The distinctive molecular profiles of circulating exosomes enable minimally invasive diagnosis, while their biocompatibility and ability to cross biological barriers position them as vehicles for targeted drug delivery. Characterization of accessible data provides non-invasive opportunities for disease monitoring. However, clinical translation faces challenges, including standardization of isolation protocols, establishment of reference ranges for biomarkers, and optimization of therapeutic dosing. This review summarizes exosome biogenesis, characterization methods, physiological functions, and clinical applications in obstetrics and gynecology, with an emphasis on their diagnostic and therapeutic potential. Future directions include large-scale biomarker validation studies, engineering approaches to enhance exosome targeting, and integration with precision medicine platforms to advance personalized reproductive healthcare.
1
Altered exosomal signaling is associated with preeclampsia, gestational diabetes, preterm birth, endometriosis, polycystic ovary syndrome, premature ovarian insufficiency, and gynecological cancers.
2
Distinct circulating exosomal microRNA and molecular profiles have potential as minimally invasive biomarkers for diagnosis and disease monitoring.
3
Exosomes are formed through ESCRT-dependent or lipid- and tetraspanin-mediated ESCRT-independent pathways, with post-translational modifications regulating intraluminal vesicle formation.
4
Exosomes regulate key reproductive processes, including oocyte maturation, embryo–endometrial communication, placental development, and maternal–fetal signaling.
5
Mesenchymal stem cell-derived exosomes show therapeutic promise for restoring ovarian function and improving fertility, while exosomes may enable targeted drug delivery across biological barriers.

Exosomes in female reproductive and gynecological medicine

Their molecular biology, diagnostic biomarker potential, and therapeutic applications in reproductive and gynecological conditions

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2026-01-03
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Jie-Hong Chen
Kuo-Hu Chen
Heidi Mariadas
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