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Updated: Oct 4, 2025

Noninvasive Monitoring of Lesion Size in a Heterologous Mouse Model of Endometriosis
Published on: February 26, 2019
Nonhormonal therapy for endometriosis based on energy metabolism regulation
Hiroshi Kobayashi1,2, Hiroshi Shigetomi1,3, Shogo Imanaka1,2
1Department of Obstetrics and Gynecology, Nara Medical University, Kashihara, Japan.
Abstract:
Ovarian function suppression is the current pharmacotherapy of endometriosis with limited benefit and adverse effects. New therapeutic strategies other than hormonal therapy are developed based on the molecular mechanisms involved in the hypoxic and oxidative stress environments and metabolism unique to endometriosis. A literature search was performed between January 2000 and March 2021 in the PubMed database using a combination of specific terms. Endometriosis-associated metabolic changes have been organized into four hallmarks: (1) glucose uptake, (2) aerobic glycolysis, (3) lactate production and accumulation, and (4) metabolic conversion from mitochondrial oxidative phosphorylation (OXPHOS) to aerobic glycolysis. Endometriotic cells favor glycolytic metabolism over mitochondrial OXPHOS to produce essential energy for cell survival. Hypoxia, a common feature of the endometriosis environment, is a key player in this metabolic conversion, which may lead to glucose transporter overexpression, pyruvate dehydrogenase kinase 1 (PDK1) and lactate dehydrogenase kinase A (LDHA) activation, and pyruvate dehydrogenase complex inactivation. Evading mitochondrial OXPHOS mitigates excessive generation of reactive oxygen species (ROS) that may trigger cell death. Therefore, the coinactivation of LDHA and PDK1 can induce the accumulation of mitochondrial ROS by converting energy metabolism to mitochondrial OXPHOS, causing endometriotic cell death. Metabolic pattern reconstruction in endometriotic lesions is a critical factor in cell survival and disease progression. One therapeutic strategy that may avoid hormone manipulation is focused on mitigating metabolic changes that have been detected in cells/tissues from women with endometriosis.
Lay Summary:
The most commonly used medical therapies for endometriosis have contraceptives and other side effects associated with hormone suppression and are therefore unsuitable for women desiring pregnancy. One therapeutic strategy that may avoid hormone manipulation is focused on changing metabolic profiles that have been detected in cells/tissues from women with endometriosis. Endometriotic cells favor glycolytic metabolism over mitochondrial oxidative phosphorylation (OXPHOS) to produce essential energy for cell growth. Furthermore, the metabolic conversion from mitochondrial OXPHOS to aerobic glycolysis suppresses cell death through the reduced generation of reactive oxygen species (ROS). This unique metabolic feature of endometriosis is important for cell survival and disease progression. Thus, changing the specific metabolic switch may increase mitochondrial ROS production, causing severe oxidative stress and cell death. This review describes new treatments by changing the metabolic profiles of endometriosis.
Insights
New endometriosis treatments focus on metabolic changes, not hormones. Targeting cellular metabolism can induce oxidative stress and cell death in endometriotic cells, offering a novel therapeutic approach.
Area of Science:
- Reproductive medicine and molecular biology
- Cellular metabolism and disease pathology
- Biochemistry of oxidative stress
Background:
- Current hormonal therapies for endometriosis offer limited benefits and adverse effects.
- Endometriosis is characterized by unique metabolic environments, including hypoxia and oxidative stress.
- Existing treatments are often unsuitable for women desiring pregnancy due to hormonal side effects.
Purpose of the Study:
- To explore novel, non-hormonal therapeutic strategies for endometriosis based on its unique metabolic profile.
- To elucidate the role of cellular metabolism in endometriosis survival and progression.
- To identify metabolic targets for inducing cell death in endometriotic tissues.
Main Methods:
- Literature search of PubMed database (January 2000–March 2021) using specific terms related to endometriosis metabolism.
- Analysis of metabolic hallmarks in endometriosis: glucose uptake, aerobic glycolysis, lactate production, and metabolic shifts.
- Investigation of the interplay between hypoxia, oxidative stress, and cellular energy metabolism in endometriotic cells.
Main Results:
- Endometriotic cells preferentially utilize aerobic glycolysis over mitochondrial oxidative phosphorylation (OXPHOS) for energy production.
- Hypoxia promotes metabolic conversion to glycolysis, involving PDK1 and LDHA activation, and pyruvate dehydrogenase complex inactivation.
- Shifting metabolism back to OXPHOS can increase reactive oxygen species (ROS) production, leading to endometriotic cell death.
Conclusions:
- Targeting the metabolic reprogramming in endometriosis presents a promising non-hormonal therapeutic avenue.
- Modulating the metabolic switch from glycolysis to OXPHOS can induce ROS accumulation and endometriotic cell death.
- Reconstructing the metabolic pattern of endometriotic lesions is crucial for controlling disease progression and offers new treatment strategies.
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