Scientific Reports· 2026Q1
Fenofibrate, but not fenofibric acid, reduces fenestrations and impairs endocytic function in liver sinusoidal endothelial cells
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- Q1SCImago
- 2026year
Short summary
Fenofibrate, but not its active metabolite fenofibric acid, reduces the number and size of fenestrations in liver sinusoidal endothelial cells (LSECs) and impairs their endocytic function, suggesting a novel mechanism for drug-induced liver injury.
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Key points
- Fenofibrate, but not fenofibric acid, significantly reduced fenestration number and porosity in LSECs.
- Fenofibrate decreased LSEC Young's modulus and altered tubulin and actin cytoskeletal organization.
- No cytotoxicity was observed for fenofibrate or fenofibric acid at tested concentrations.
- LSECs are identified as a drug-responsive cell type for fenofibrate, potentially contributing to DILI.
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Abstract
Abstract Fenofibrate is widely prescribed for hyperlipidaemia and has been associated with rare but severe cases of drug-induced liver injury (DILI), yet its effects on liver sinusoidal endothelial cells (LSECs) remain to be investigated. LSECs maintain a highly permeable specialised sinusoidal barrier characterised by transcellular pores (fenestrations), regulating the bidirectional transfer of circulating compounds to and from the hepatocytes. As drug-induced alterations in fenestration architecture could influence xenobiotic access to hepatocytes, these changes may modulate pathways associated with DILI. Understanding the effects of fenofibrate on LSEC ultrastructure may therefore provide insights into previously underexplored endothelial contributions to hepatic drug responses. Both fenofibrate and its active metabolite, fenofibric acid, were evaluated for their effects on LSEC ultrastructure, mechanical properties, and functional markers. Atomic force microscopy (AFM) and scanning electron microscopy were used to quantify fenestration architecture. AFM was additionally used to measure cellular mechanical properties, which were interpreted in the context of fluorescence-based quantification of cytoskeletal organisation. Gene expression, viability, and cytotoxicity were assessed using PCR-based and biochemical assays. Fenofibrate reduced fenestration number and porosity at both tested concentration (10, and 25 µM). It also decreased the apparent Young’s modulus of LSECs, accompanied by changes in tubulin and actin architecture, without detectable cytotoxicity. In contrast, treatment with fenofibric acid did not result in significant structural or mechanical effects on LSECs, even at higher concentrations. Together, these data identify LSECs as a drug-responsive hepatic cell type for fenofibrate, suggesting that LSECs could represent an underrecognised contributor to the complex, multifactorial processes underlying DILI. This work provides a framework for evaluating endothelial contributions to fenofibrate-associated liver effects in more complex models.
The authors' abstract, as published at the source. Scientific Reports, 2026 · DOI ↗
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PharmacologyPharmacology, Toxicology and Pharmaceutics