BRD3308 suppresses macrophage oxidative stress and pyroptosis via upregulating acetylation of H3K27 in sepsis-induced acute lung injury

Author:

Liu Bohao1,Li Ning2,Liu Yi2,Zhang Yan1,Qu Limei3,Cai Hongfei1,Li Yang14,Wu Xiaojing5,Geng Qing2ORCID

Affiliation:

1. Department of Thoracic Surgery, The First Hospital of Jilin University , 71 Xinmin Street, Chaoyang District, Changchun, Jilin, 130021, China

2. Department of Thoracic Surgery, Renmin Hospital of Wuhan University , 238 Jiefang Road, Wuchang District, Wuhan, Hubei, 430060, China

3. Department of Pathology, The First Hospital of Jilin University , 71 Xinmin Street, Chaoyang District, Changchun, Jilin, 130021, China

4. Organ Transplantation Center, The First Hospital of Jilin University , 71 Xinmin Street, Chaoyang District, Changchun, Jilin, 130021, China

5. Department of Anesthesiology, Renmin Hospital of Wuhan University , 238 Jiefang Road, Wuchang District, Wuhan, Hubei, 430060, China

Abstract

Abstract Background Sepsis-induced acute lung injury (ALI) leads to severe hypoxemia and respiratory failure, contributing to poor prognosis in septic patients. Endotoxin dissemination triggers oxidative stress and the release of inflammatory cytokines in macrophages, initiating diffuse alveolar damage. The role of epigenetic histone modifications in organ injury is increasingly recognized. The present study aimed to investigate the use of a histone modification inhibitor to alleviate sepsis-induced ALI, revealing a new strategy for improving sepsis patient survival. Methods In vivo models of ALI were established through the intraperitoneal injection of lipopolysaccharide and cecal ligation and puncture surgery. Furthermore, the disease process was simulated in vitro by stimulating Tamm-Horsfall protein-1 (THP-1) cells with lipopolysaccharide. Hematoxylin and eosin staining, blood gas analysis and pulmonary function tests were utilized to assess the extent of lung tissue damage. Western blot analysis, real-time polymerase chain reaction, enzyme-linked immunosorbent assay and immunofluorescence were used to measure the levels and distribution of the indicated indicators within cells and tissues. Reactive oxygen species and autophagic flux alterations were detected using specific probes. Results BRD3308, which is a inhibitor of histone deacetylase 3, improved lung tissue damage, inflammatory infiltration and edema in ALI by inhibiting Nod-like receptor protein3-mediated pyroptosis in macrophages. By upregulating autophagy, BRD3308 improved the disruption of redox balance in macrophages and reduced the accumulation of reactive oxygen species. Mechanistically, BRD3308 inhibited histone deacetylase 3 activity by binding to it and altering its conformation. Following histone deacetylase 3 inhibition, acetylation of H3K27 was significantly increased. Moreover, the increase in H3K27Ac led to the upregulation of autophagy-related gene 5, a key component of autophagosomes, thereby activating autophagy. Conclusions BRD3308 inhibits oxidative stress and pyroptosis in macrophages by modulating histone acetylation, thereby preventing sepsis-induced ALI. The present study provides a potential strategy and theoretical basis for the clinical treatment of sepsis-induced ALI.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Science Fund for Creative Research Groups of the Natural Science Foundation of Hubei Province

Doctor of excellence program of The First Hospital of Jilin University

Publisher

Oxford University Press (OUP)

Reference57 articles.

1. Signaling pathways and intervention therapies in sepsis;Zhang;Signal Transduct Target Ther,2021

2. Neutrophils disturb pulmonary microcirculation in sepsis-induced acute lung injury;Park;Eur Respir J,2019

3. Mesenchymal stromal (stem) cell therapy modulates miR-193b-5p expression to attenuate sepsis-induced acute lung injury;Dos Santos;Eur Respir J,2022

4. Sustained induction of IP-10 by MRP8/14 via the IFNβ-IRF7 axis in macrophages exaggerates lung injury in endotoxemic mice. Burns;Wang;Trauma,2023

5. Recognition of lipopolysaccharide pattern by TLR4 complexes;Park;Exp Mol Med,2013

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