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Published on: February 20, 2021
CE9A215 (inotodiol), a lanostane-type oxysterol, mitigates LPS-induced sepsis through multifaceted mechanisms
Thi Minh Nguyet Nguyen1, Hyunah Park2, Thi Thuong Do2
1CARBOEXPERT Inc, Daejeon, 34134, Republic of Korea; Vinmec-VinUni Institute of Immunology, Vinmec Healthcare System, Hanoi, 100000, Viet Nam.
Abstract:
Dysregulated host response against infection triggers sepsis that leads to multiple organ dysfunction due to uncontrolled inflammatory responses. Despite marked progress in understanding of sepsis, numerous clinical trials for treatment of sepsis have proven daunting and a new therapeutic approach is highly needed. CE9A215 (inotodiol), a fungal secondary metabolite, has been researched for its pharmacological activities and has shown potent anti-allergic effects. In this study, we evaluated the anti-inflammatory activities of CE9A215 upon lipopolysaccharide (LPS) stimulation in vivo and in vitro for the first time. CE9A215 decreased the production of interleukin (IL)-6, tumor necrosis factor alpha (TNF-α), and IL-1β in a concentration-dependent manner in LPS-stimulated RAW264.7 cells. Intriguingly, in human mast cell line LUVA, CE9A215 significantly lowered IL-4 and IL-10, and this effect could be beneficial for the clearance of bacterial infection. In addition, administration of CE9A215 improved the survival rate of LPS-stimulated mice and inhibited the pro-inflammatory cytokines, IL-6, TNF-α, and IL-1β in blood. Moreover, CE9A215 enhanced the expression levels of plasma phospholipid transfer protein (PLTP), apolipoprotein E (ApoE), and ATP-binding cassette transporter (ABCA1) in LPS-stimulated RAW246.7 cells. Liver PLTP level increased significantly in the CE9A215-administered group compared with the control group, which implies that CE9A215 promotes LPS clearance and neutralization by reverse transport of LPS by increasing the expressions of PLTP, ApoE, and ABCA1. Our results highlight CE9A215's potential as a novel therapeutic option for the treatment of sepsis.
Insights
CE9A215, a fungal compound, demonstrates significant anti-inflammatory effects against sepsis by reducing pro-inflammatory cytokines. This novel therapeutic agent also enhances the body's ability to clear bacterial infection, improving survival rates in preclinical models.
Area of Science:
- Immunology
- Pharmacology
- Microbiology
Background:
- Sepsis, a life-threatening condition, arises from a dysregulated host response to infection, leading to organ dysfunction.
- Current sepsis treatments face challenges, necessitating novel therapeutic strategies to manage uncontrolled inflammatory responses.
Purpose of the Study:
- To investigate the anti-inflammatory and sepsis-modulating potential of CE9A215 (inotodiol), a fungal metabolite.
- To evaluate the effects of CE9A215 on inflammatory cytokine production and survival in sepsis models.
Main Methods:
- In vitro studies using lipopolysaccharide (LPS)-stimulated RAW264.7 cells and human mast cell line LUVA to assess cytokine production.
- In vivo studies involving LPS-stimulated mice to evaluate survival rates and inflammatory markers.
- Analysis of gene and protein expression related to LPS clearance, including phospholipid transfer protein (PLTP), apolipoprotein E (ApoE), and ATP-binding cassette transporter (ABCA1).
Main Results:
- CE9A215 significantly reduced pro-inflammatory cytokines (IL-6, TNF-α, IL-1β) in LPS-stimulated cells and in vivo.
- CE9A215 lowered IL-4 and IL-10 in human mast cells, potentially aiding bacterial infection clearance.
- Administration of CE9A215 improved survival rates in LPS-induced sepsis mice and increased PLTP, ApoE, and ABCA1 expression, suggesting enhanced LPS clearance.
Conclusions:
- CE9A215 exhibits potent anti-inflammatory properties and improves survival in a preclinical sepsis model.
- The compound's ability to modulate inflammatory responses and enhance LPS clearance highlights its potential as a novel therapeutic agent for sepsis.
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