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Endothelial GSDMD underlies LPS-induced systemic vascular injury and lethality
Enyong Su, Xiaoyue Song, Lili Wei, Junqiang Xue, Xuelin Cheng, Shiyao Xie, Hong Jiang, Ming Liu
Enyong Su, Xiaoyue Song, Lili Wei, Junqiang Xue, Xuelin Cheng, Shiyao Xie, Hong Jiang, Ming Liu
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Research Article Immunology Infectious disease

Endothelial GSDMD underlies LPS-induced systemic vascular injury and lethality

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Abstract

Endothelial injury destroys endothelial barrier integrity, triggering organ dysfunction and ultimately resulting in sepsis-related death. Considerable attention has been focused on identifying effective targets for inhibiting damage to endothelial cells to treat endotoxemia-induced septic shock. Global gasdermin D (Gsdmd) deletion reportedly prevents death caused by endotoxemia. However, the role of endothelial GSDMD in endothelial injury and lethality in lipopolysaccharide-induced (LPS-induced) endotoxemia and the underlying regulatory mechanisms are unknown. Here, we show that LPS increases endothelial GSDMD level in aortas and lung microvessels. We demonstrated that endothelial Gsdmd deficiency, but not myeloid cell Gsdmd deletion, protects against endothelial injury and death in mice with endotoxemia or sepsis. In vivo experiments suggested that hepatocyte GSDMD mediated the release of high-mobility group box 1, which subsequently binds to the receptor for advanced glycation end products in endothelial cells to cause systemic vascular injury, ultimately resulting in acute lung injury and lethality in shock driven by endotoxemia or sepsis. Additionally, inhibiting endothelial GSDMD activation via a polypeptide inhibitor alleviated endothelial damage and improved survival in a mouse model of endotoxemia or sepsis. These data suggest that endothelial GSDMD is a viable pharmaceutical target for treating endotoxemia and endotoxemia-induced sepsis.

Authors

Enyong Su, Xiaoyue Song, Lili Wei, Junqiang Xue, Xuelin Cheng, Shiyao Xie, Hong Jiang, Ming Liu

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Figure 2

The HMGB1/RAGE signaling pathway increases endothelial GSDMD levels and promotes vascular injury in endotoxemia.

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The HMGB1/RAGE signaling pathway increases endothelial GSDMD levels and ...
Five-week-old WT mice were injected with an AAV9 vector via the tail vein. After 6 weeks, these mice were intraperitoneally injected with LPS (17.5 mg/kg). (A) A Kaplan-Meier survival plot of mice on the indicated days is presented. n = 10 per group. Survival data were compared via a log-rank (Mantel-Cox) test. Five-week-old WT mice were injected with an AAV9 vector. After 6 weeks, these mice were intraperitoneally injected with LPS (17.5 mg/kg). Subsequently, 5 μg rHMGB1 protein or vehicle was administered intravenously at 2, 16, 28, and 40 hours. (B) A Kaplan-Meier survival plot of mice is presented. n = 10 per group. Survival data were compared via a log-rank (Mantel-Cox) test. Five-week-old WT mice were injected with an AAV9 vector or an endothelial conditional Rage shRNA-knockdown AAV9 vector and were intraperitoneally injected with LPS (17.5 mg/kg) or PBS after 6 weeks. Then, 5 μg rHMGB1 protein or vehicle was administered intravenously at 2 and 16 hours. (C) HE staining of the lung sections is presented. The scale bar represents 200 μm. (D) The ratio of the wet lung weight to the dry lung weight was determined. n = 6 per group. (E) Lung microvascular permeability was assessed and (F) quantitatively analyzed. n = 6 per group. (G) Aortic permeability was assessed and (H) quantitatively analyzed. n = 6 per group. (I) Coimmunofluorescence staining of CD31 (red), GSDMD (green), and DAPI (blue) in aortas. The scale bar represents 20 μm. (J) The plasma IL-1β concentration was determined. n = 6 per group. The data are expressed as the means ± SEMs. The data were analyzed by 2-way ANOVA with Bonferroni’s post hoc correction. All the data shown are representative of a minimum of 3 independent experiments. *P < 0.05, **P < 0.01, ***P < 0.001.

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