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Seon-Yeop Kim

Publications and source records attributed to Seon-Yeop Kim.

2 recordsLinked to original sources

Acyloxyacyl Hydrolase-Mediated Lipopolysaccharide Inactivation Limits Macrophage Endotoxin Tolerance and Promotes Inflammation and Fibrosis in Metabolic Dysfunction-Associated Steatohepatitis.

BACKGROUND & AIMS: Metabolic dysfunction-associated steatohepatitis, a chronic liver disease, is characterized by persistent low-grade inflammation, partially driven by gut-derived lipopolysaccharide. Although repeated lipopolysaccharide exposure can induce endotoxin tolerance in innate immune cells, its role in chronic liver diseases remains unclear. Acyloxyacyl hydrolase is an endogenous enzyme that inactivates lipopolysaccharide, potentially modulating this process. We aimed to investigate how acyloxyacyl hydrolase regulates endotoxin tolerance in Kupffer cells and how this affects hepatic inflammation and fibrosis during metabolic dysfunction-associated steatohepatitis progression. METHODS: Acyloxyacyl hydrolase-deficient mice and wild-type controls were subjected to multiple dietary metabolic dysfunction-associated steatohepatitis models. Inflammatory responses, fibrosis, and transcriptomic changes in liver tissues and isolated Kupffer cells were analyzed. Endotoxin tolerance was modulated through β-glucan administration or lipopolysaccharide preconditioning. Lipopolysaccharide bioactivity was assessed using Toll-like receptor 4-reporter cell assays. RESULTS: Lipopolysaccharide-preconditioned Kupffer cells exhibited reduced proinflammatory cytokine production and transcriptional suppression of inflammatory pathways, indicating tolerance. Despite slight elevation of plasma lipopolysaccharide levels in metabolic dysfunction-associated steatohepatitis, upregulation of hepatic acyloxyacyl hydrolase positively correlated with disease severity, suggesting enhanced lipopolysaccharide inactivation but impaired establishment of tolerance. In contrast, acyloxyacyl hydrolase-deficient Kupffer cells displayed reinforced endotoxin tolerance, leading to diminished hepatic inflammation and fibrosis. Reversal of tolerance using β-glucan reactivated inflammatory and fibrogenic responses in acyloxyacyl hydrolase-deficient mice, whereas tolerance induction by low-dose lipopolysaccharide preconditioning mitigated metabolic dysfunction-associated steatohepatitis pathology, supporting the protective role of macrophage tolerance in chronic liver injury. CONCLUSIONS: Endotoxin tolerance in Kupffer cells represents a protective mechanism against chronic liver inflammation and fibrosis. Acyloxyacyl hydrolase regulates this state by limiting bioactive lipopolysaccharide, thereby modulating the establishment of endotoxin tolerance and downstream inflammatory and fibrotic responses. Enhancing macrophage tolerance by utilizing lipopolysaccharide may offer a novel therapeutic avenue to control the progression of metabolic dysfunction-associated steatohepatitis.

AOAH

Precise progerin targeting using RfxCas13d: A therapeutic avenue for Hutchinson-Gilford progeria syndrome.

Hutchinson-Gilford progeria syndrome (HGPS), an extremely rare progressive genetic disorder, is caused by a point mutation in LMNA that induces progerin production, which disrupts cellular function and triggers premature aging and mortality. Despite extensive efforts, HPGS remains incurable. We successfully implemented a strategy using RfxCas13d to selectively target progerin mRNA at specific junction regions, without unintended cleavage and reduce its expression. This technique discriminated between normal lamin A and progerin, thus providing a safe and targeted therapeutic avenue to treat HGPS. Our approach effectively restored aberrant gene expression and progerin-induced cellular phenotypes, including senescence, mitochondrial dysfunction, and DNA damage in cells with HGPS and LMNAG608G/G608G mice. Notably, LMNAG608G/G608G mice exhibited improved progeroid phenotypes, suggesting a potential therapeutic application of this approach for other diseases resulting from abnormal RNA splicing.

Progeria