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Updated: May 6, 2026

Injections of Lipopolysaccharide into Mice to Mimic Entrance of Microbial-derived Products After Intestinal Barrier Breach
Published on: May 2, 2018
Lipopolysaccharide-induced DNA damage response activates DNA-PKcs to drive actin cytoskeleton disruption and cardiac
Ying Tan1,2, Yue Ouyang1,2, Lushan Xiao3
1Department of Critical Care Medicine, Nanfang Hospital, Southern Medical University, Guangzhou 510515, China.
Abstract:
Rationale: Sepsis-induced cardiomyopathy is characterized by microvascular injury, which is linked to lipopolysaccharide (LPS)-induced DNA damage response (DDR). This study investigates the role of DNA-PKcs, a key enzyme in the DDR pathway, in driving actin disruption and microvascular dysfunction following LPS exposure. Methods: We analyzed diverse transcriptomic datasets from septic human and murine models using bioinformatics tools to assess DDR pathway activation, correlations, and prognosis. In vivo, LPS-challenged mice were treated with inhibitors of DNA-PKcs or mitochondrial fission, and we evaluated cardiac function, microvascular integrity, mitochondrial status, and actin polymerization. Results: Bioinformatic analyses consistently revealed significant activation of the DDR pathway and upregulation of key genes across diverse septic models. Notably, elevated DDR pathway activity was significantly correlated with poor 28-day survival in human sepsis patients. Single-cell analysis localized this DDR gene upregulation predominantly to cardiac endothelial cells (ECs), fibroblasts, and macrophages during sepsis. Within septic capillary ECs, DDR pathway activity scores strongly correlated spatially and functionally with heightened mitochondrial fission and cytoskeletal remodeling pathway activities. In vivo experiments confirmed that LPS induced severe systolic and diastolic dysfunction, microvascular damage, and mitochondrial fragmentation, as well as significant actin depolymerization. Inhibition of DNA-PKcs with NU7441 markedly attenuated all these LPS-induced pathologies, improving cardiac function, preserving microvascular structure, preventing mitochondrial fragmentation, and normalizing related gene expression and actin cytoskeleton stability. Additionally, inhibiting mitochondrial fission with Mdivi-1 significantly ameliorated LPS-induced cardiac dysfunction and microvascular injury. Conclusions: Our findings suggest that LPS triggers a DNA-PKcs-dependent DDR that promotes mitochondrial fragmentation and actin disruption, particularly in cardiac ECs, contributing to sepsis-induced cardiomyopathy. Targeting DNA-PKcs or mitochondrial fission may hold therapeutic potential for the treatment of sepsis-induced cardiomyopathy.
Insights
Lipopolysaccharide (LPS) triggers DNA damage response (DDR) via DNA-PKcs, causing actin disruption and microvascular injury in sepsis-induced cardiomyopathy. Inhibiting DNA-PKcs or mitochondrial fission shows therapeutic potential.
Area of Science:
- Molecular Biology
- Cardiovascular Research
- Cellular Biology
Background:
- Sepsis-induced cardiomyopathy involves microvascular injury and DNA damage response (DDR) triggered by lipopolysaccharide (LPS).
- DNA-dependent protein kinase catalytic subunit (DNA-PKcs) is a key enzyme in the DDR pathway, implicated in cellular damage.
- Understanding the role of DNA-PKcs in LPS-induced cardiac dysfunction is crucial for developing targeted therapies.
Purpose of the Study:
- To investigate the role of DNA-PKcs in LPS-induced actin disruption and microvascular dysfunction in sepsis-induced cardiomyopathy.
- To explore the correlation between DDR activation and patient survival in sepsis.
- To evaluate the therapeutic potential of targeting DNA-PKcs or mitochondrial fission.
Main Methods:
- Bioinformatic analysis of transcriptomic datasets from human and murine sepsis models to assess DDR pathway activation.
- In vivo studies using LPS-challenged mice treated with DNA-PKcs or mitochondrial fission inhibitors.
- Evaluation of cardiac function, microvascular integrity, mitochondrial status, and actin polymerization in treated mice.
Main Results:
- DDR pathway activation and key gene upregulation were observed across diverse septic models, correlating with poor survival in human sepsis patients.
- LPS induced cardiac dysfunction, microvascular damage, mitochondrial fragmentation, and actin depolymerization, particularly in cardiac endothelial cells.
- Inhibition of DNA-PKcs or mitochondrial fission significantly attenuated LPS-induced pathologies, improving cardiac function and preserving microvascular integrity.
Conclusions:
- LPS triggers a DNA-PKcs-dependent DDR that promotes mitochondrial fragmentation and actin disruption, contributing to sepsis-induced cardiomyopathy.
- Targeting DNA-PKcs or mitochondrial fission pathways presents a promising therapeutic strategy for sepsis-induced cardiomyopathy.
- Cardiac endothelial cells are a key cell type affected by DDR in sepsis-induced cardiomyopathy.
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