Selenium alleviates lipopolysaccharide-induced endometritis via regulating the recruitment of TLR4 into lipid rafts in mice
Yu Chen,
Chen Y
,
Zhao YF
,
Yi-Fan Zhao,
Jing Yang,
Yang J
,
Jing HY
,
Hong-Yuan Jing,
Liang W
,
Wan Liang,
Miao-Yu Chen,
Chen MY
,
Yang M
,
Mei Yang,
Wang Y
,
Ying Wang,
Meng-Yao Guo,
Guo MY
other
OA: closed
public-domain-us
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AI-generated summary
by claude@2026-06, 2026-06-08
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Selenium alleviates LPS-induced endometritis in mice by activating the LxRα-ABCA1 pathway, depleting cholesterol, and preventing TLR4 recruitment to lipid rafts.
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AI-generated deep summary
by claude@2026-06, 2026-06-11
· read from full text
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The paper investigated whether selenium (Se) can mitigate lipopolysaccharide (LPS)-induced endometritis in mice, using in vivo uterine histopathology, myeloperoxidase (MPO) activity, and inflammatory cytokine measurements, alongside mechanistic studies in mouse endometrial epithelial cells. Se significantly reversed LPS-induced uterine damage and reduced inflammatory markers, alongside attenuating TLR4 and downstream signaling effects linked to lipid raft formation and cholesterol levels. Mechanistically, Se inhibited TLR4-mediated NF-κB and IRF3 signaling, promoted cholesterol efflux by activating the LxRα-ABCA1 pathway, and this disrupted LxRα silencing context indicated dependence on LxRα. A key caveat is that the work models “endometritis induced by LPS” in mice rather than studying the specific human disease processes of chronic endometrial disorders. This paper is centrally about endometriosis — it uses an LPS-induced “endometriosis” endometritis mouse model and centers on selenium’s effects in that context.
Abstract
Selenium (Se) is an essential trace element for living organisms and plays diverse biological roles. Endometritis is a common reproductive disorder in dairy cows, causing huge economic losses. In this study, we explored the effects of Se on lipopolysaccharide (LPS)-induced endometritis in mice and expounded its underlying mechanism of action. We validated the anti-inflammatory effects of Se in vivo by establishing a mouse model of endometriosis induced by LPS. Se significantly reversed the LPS-induced uterine histopathological changes, MPO activity and inflammatory cytokine levels in vivo. Simultaneously, TLR4 and its downstream signaling pathways, lipid rafts and cholesterol levels in the tissues were also attenuated by Se under LPS stimulation. In addition, the molecular mechanism of the Se anti-inflammatory effect was clarified in mouse endometrial epithelial cells. Se inhibited TLR4-mediated NF-κB and IRF3 signal transduction pathways to reduce the production of inflammatory factors. We found that Se promoted the consumption of cholesterol to suppress the lipid rafts coming into being and inhibited the TLR4 positioning to the lipid raft to prevent the inflammatory response caused by LPS. Meanwhile, Se activated the LxRα-ABCA1 pathway to cause the outflow of cholesterol in cells. The anti-inflammatory effect of Se was disrupted by silencing LxRα. In conclusion, Se exerted anti-inflammatory effects most likely by the LxRα-ABCA1 pathway activation, which inhibited lipid rafts by depleting cholesterol and ultimately impeded the migration of TLR4 to lipid rafts.
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Selenium alleviates lipopolysaccharide-induced endometritis via regulating the recruitment of TLR4 into lipid rafts in mice
Abstract
Selenium (Se) is an essential trace element for living organisms and plays diverse biological roles. Endometritis is a common reproductive disorder in dairy cows, causing huge economic losses. In this study, we explored the effects of Se on lipopolysaccharide (LPS)-induced endometritis in mice and expounded its underlying mechanism of action. We validated the anti-inflammatory effects of Se in vivo by establishing a mouse model of endometriosis induced by LPS. Se significantly reversed the LPS-induced uterine histopathological changes, MPO activity and inflammatory cytokine levels in vivo. Simultaneously, TLR4 and its downstream signaling pathways, lipid rafts and cholesterol levels in the tissues were also attenuated by Se under LPS stimulation. In addition, the molecular mechanism of the Se anti-inflammatory effect was clarified in mouse endometrial epithelial cells. Se inhibited TLR4-mediated NF-κB and IRF3 signal transduction pathways to reduce the production of inflammatory factors. We found that Se promoted the consumption of cholesterol to suppress the lipid rafts coming into being and inhibited the TLR4 positioning to the lipid raft to prevent the inflammatory response caused by LPS. Meanwhile, Se activated the LxRα-ABCA1 pathway to cause the outflow of cholesterol in cells. The anti-inflammatory effect of Se was disrupted by silencing LxRα. In conclusion, Se exerted anti-inflammatory effects most likely by the LxRα-ABCA1 pathway activation, which inhibited lipid rafts by depleting cholesterol and ultimately impeded the migration of TLR4 to lipid rafts.
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Condition tags
mesh:D004716endometriosis
MeSH descriptors
Cholesterol
Endometritis
Membrane Microdomains
Selenium
Toll-Like Receptor 4
Animals
ATP Binding Cassette Transporter 1
ATP Binding Cassette Transporter 1
Cholesterol
Endometritis
Endometritis
Female
Lipopolysaccharides
Liver X Receptors
Liver X Receptors
Membrane Microdomains
Mice
Mice, Inbred C57BL
Selenium
Signal Transduction
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- europepmc
- last seen: 2026-07-26T06:08:39.051465+00:00
- pubmed
- last seen: 2026-05-13T22:22:22.912744+00:00
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- last seen: 2026-05-14T19:30:52.867331+00:00
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