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Updated: Aug 7, 2025

Bronchoalveolar Lavage Exosomes in Lipopolysaccharide-induced Septic Lung Injury
Published on: May 21, 2018
Macrophage-derived exosomes mediate glomerular endothelial cell dysfunction in sepsis-associated acute kidney injury
Huiling Xiang1, Zhifeng Xu1, Chun Zhang1
1Department of Nephrology, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, China.
Background:
Sepsis-associated AKI has been shown to be related to sepsis mortality. Macrophage activation and endothelial cell damage are involved in the progression of sepsis-associated AKI, but the specific mechanisms are still unclear.
Methods:
In vitro experiments, exosomes extracted from lipopolysaccharide (LPS) -stimulated macrophages were co-incubated with rat glomerular endothelial cells (RGECs) and then detected the injury markers of RGECs. Acid sphingomyelinase (ASM) inhibitor amitriptyline were used to investigate the role of ASM. In vivo experiment, exosomes produced by LPS-stimulated macrophages were injected into mice through tail vein to further explore the role of macrophage-derived exosomes. Moreover, ASM knockout mice were used to verify the mechanism.
Result:
In vitro, the secretion of macrophage exosomes increased upon the stimulation with LPS. Notably, macrophage-derived exosomes can cause glomerular endothelial cell dysfunction. In vivo, macrophage infiltration and exosome secretion in glomeruli of the LPS-induced AKI group increased. The exosomes produced by LPS-stimulated macrophages were injected into mice, which also led to the injury of renal endothelial cells. In addition, in the LPS-induced AKI mouse model, compared with wild-type mice, the secretion of exosomes in glomeruli of ASM gene knockout mice and the injury of endothelial cells were reduced.
Conclusion:
Our study shows that ASM regulates the secretion of macrophage exosomes, leading to endothelial cell injury, which may be a therapeutic target in sepsis-associated AKI.
Insights
Acid sphingomyelinase (ASM) regulates macrophage exosome secretion, causing kidney injury in sepsis. Inhibiting ASM may offer a therapeutic strategy for sepsis-associated acute kidney injury (AKI).
Area of Science:
- Renal Medicine
- Cell Biology
- Immunology
Background:
- Sepsis-associated acute kidney injury (AKI) significantly contributes to sepsis mortality.
- Macrophage activation and endothelial cell damage are implicated in sepsis-associated AKI, but underlying mechanisms remain unclear.
Purpose of the Study:
- To investigate the role of macrophage-derived exosomes in sepsis-associated AKI.
- To elucidate the specific mechanisms by which macrophages contribute to kidney injury during sepsis.
- To explore acid sphingomyelinase (ASM) as a potential therapeutic target.
Main Methods:
- In vitro: Co-incubation of rat glomerular endothelial cells (RGECs) with exosomes from lipopolysaccharide (LPS)-stimulated macrophages; use of ASM inhibitor amitriptyline.
- In vivo: Intravenous injection of macrophage-derived exosomes into mice; utilization of ASM knockout mice in an LPS-induced AKI model.
Main Results:
- LPS stimulation increased macrophage exosome secretion, causing RGEC dysfunction in vitro.
- Macrophage infiltration and exosome secretion increased in glomeruli of LPS-induced AKI mice.
- Administration of macrophage-derived exosomes induced renal endothelial cell injury in vivo.
- ASM gene knockout reduced exosome secretion and endothelial cell injury in LPS-induced AKI mice.
Conclusions:
- Acid sphingomyelinase (ASM) regulates the secretion of macrophage-derived exosomes.
- These exosomes contribute to endothelial cell injury, a key factor in sepsis-associated AKI.
- Targeting ASM presents a potential therapeutic strategy for sepsis-associated AKI.
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