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Endometriosis from Initiation to Innovation: Immune Microenvironments, Clonal Lesion Biology, and the Emerging Therapeutic Pipeline.

Endometriosis is a chronic, estrogen-dependent inflammatory disease that, despite its benign histology, displays several cancer-relevant features, including clonal expansion, somatic alteration-associated lesion evolution, tissue invasion, apoptosis resistance, immune evasion, angiogenesis, …

Published: Sept. 19, 2026, midnight
Diagnostic and mechanistic roles of miR-5584-5p in endometriosis via the FZD2-mediated Wnt/β-catenin EMT axis.

The early detection of endometriosis (EM), a significant cause of dysmenorrhea, is essential for effective clinical management. This study sought to determine the functional role of miR-5584-5p in EM and …

Published: Aug. 21, 2026, midnight
ASPM promotes the progression of ovarian endometriosis by modulating the cell cycle and activating the Wnt/β-catenin signaling pathway.

Endometriosis (EMs) is a common gynecological disorder associated with impaired fertility and reduced quality of life. This study investigated abnormal spindle-like microcephaly-associated protein (ASPM), identified as a hub gene in …

Published: May 20, 2026, midnight
Targeting the Wnt signaling network in endometriosis: mechanistic insights and translational opportunities.

Endometriosis is a chronic gynecological disorder defined by the growth of endometrial-like tissue outside the uterus, driven by estrogen-dependent inflammation and progressive fibrosis. According to available data, remodeling and persistent …

Published: May 8, 2026, midnight
Endometrioid Versus Seromucinous Borderline Ovarian Tumors: Divergent Molecular Signatures and a Shared Role as Precursors to Endometrioid Carcinoma.

Endometrioid borderline tumors (EBTs) and seromucinous borderline tumors (SMBTs) are rare ovarian neoplasms with distinct histologic features. However, the molecular profiles of EBTs and SMBTs remain incompletely characterized. We performed …

Published: April 2, 2026, midnight
CRISPR-mediated MLH1 disruption suppresses endometrial cancer growth via genomic instability induction and Wnt/β-catenin pathway inhibition | Xing | Folia Histochemica et Cytobiologica - Via Medica Journals

CRISPR-mediated MLH1 disruption suppresses endometrial cancer growth via genomic instability induction and Wnt/β-catenin pathway inhibition | Xing | Folia Histochemica et Cytobiologica Via Medica Journals

Published: March 27, 2026, 12:27 p.m.
Molecular mechanısms of ovarian fibrosis.

Ovarian fibrosis is increasingly recognized as a pivotal factor contributing to ovarian aging, dysfunction and female infertility. It results from chronic or repetitive ovarian injury, such as that caused by …

Published: Nov. 26, 2025, midnight
Evaluating the Effect of Exosome-Encapsulated miR-4289 on Menstrual Blood-Derived Mesenchymal Stem Cells from Endometriosis Patients.

Endometriosis is a benign yet chronic gynecological disorder characterized by dysregulation of processes such as inflammation, angiogenesis, migration, apoptosis, and proliferation. Menstrual blood-derived endometrial stem cells play a crucial role …

Published: Nov. 11, 2025, midnight
ROBO3 Drives Endometriosis Progression via Dual Wnt/β-Catenin Activation and M2 Macrophage Polarization.

Endometriosis, a prevalent gynecological disorder marked by ectopic growth of endometrial-like tissue, demonstrates malignant tumor-like properties including aggressive adhesion and invasiveness. Emerging evidence implicates roundabout guidance receptor 3 (ROBO3) in …

Published: Oct. 15, 2025, midnight
CCN5 negatively regulates TGF-β-induced endometriosis associated fibrosis through Wnt/β-catenin signaling via Smad3-dependent mechanism - Journal of Translational Medicine

CCN5 negatively regulates TGF-β-induced endometriosis associated fibrosis through Wnt/β-catenin signaling via Smad3-dependent mechanism Journal of Translational Medicine

Published: July 10, 2025, 7:44 a.m.
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