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Decroix, K.

Publications and source records attributed to Decroix, K..

2 recordsLinked to original sources

Pharmacological inhibition of deubiquitinase UCH-L1 by LDN57444 sensitises hepatocellular carcinoma to sorafenib by reverting drug-induced adaptive responses

Background and aimsTherapeutic outcomes for advanced hepatocellular carcinoma remain inadequate, despite recent advances using immunotherapy. Long-term effectiveness of systemic therapies, including second-line multi-tyrosine kinase inhibitor sorafenib, is limited by resistance mechanisms and adverse effects. Upregulated deubiquitinase UCH-L1 is frequently correlated with poor prognosis in cancers. Here, we investigated the therapeutic potential of combining pharmacological UCH-L1-inhibition with sorafenib in HCC. MethodsUCH-L1 expression was analysed in TCGA-LIHC data and patient-derived HCC tissues. Sorafenib and LDN57444 effects were evaluated in vitro in cytotoxicity and invasion assays. Gene and protein expression were examined by RT-qPCR, Western blotting and immunohistochemistry. In vivo efficacy of drug synergy was assessed in an orthotopic xenograft mouse HCC model. ResultsIn silico data-analysis revealed significantly higher UCH-L1 levels in patient HCC tumours versus non-tumour, associated with reduced overall survival. Low-dose sorafenib upregulated UCH-L1 in HCC cell line Hep3B. Paradoxically, this also promoted invasiveness and sustained MEK1/2-ERK1/2-pathway activation. Combining low-dose sorafenib with LDN57444 produced strong synergistic cytotoxicity in vitro, reverted MAPK-activation and suppressed invasion. Consistently, at low sorafenib dose co-treatment with LDN57444 completely inhibited tumour growth of Hep3B xenografts and enhanced sorafenib efficacy. ConclusionLDN57444 sensitises HCC cells to low-dose sorafenib by reverting drug-induced pro-oncogenic signalling and thereby strongly synergises with sorafenib to enhance anti-tumour efficacy in a HCC mouse model. This presents UCH-L1 as a player in treatment-induced adaptive response and supports further exploring UCH-L1-targeting in combination with sorafenib as therapeutic avenue for advanced HCC. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=144 SRC="FIGDIR/small/725527v1_ufig1.gif" ALT="Figure 1"> View larger version (37K): org.highwire.dtl.DTLVardef@176dc91org.highwire.dtl.DTLVardef@8acae8org.highwire.dtl.DTLVardef@f71bborg.highwire.dtl.DTLVardef@1f3c5aa_HPS_FORMAT_FIGEXP M_FIG C_FIG Lay summaryThis study explores a new treatment approach for hepatocellular carcinoma (HCC) by combining two drugs: LDN57444, which blocks the enzyme UCH-L1, and sorafenib, a FDA-approved multi-tyrosine kinase inhibitor. We evaluated the effect of this drug combination in vitro using a HCC cell line and in an mouse HCC-model. The drug combination displayed strong, synergy in lowering HCC cell viability, and greatly reduced invasiveness and in vivo tumour growth. LDN57444 sensitised HCC cells to low doses of sorafenib by preventing UCH-L1-mediated activation of pro-oncogenic signalling. These findings highlight the potential of this new drug combination for treating advanced HCC thereby potentially reducing side-effects and countering drug resistance. Impact and implicationsOur preclinical research introduces a novel combination strategy against advanced HCC that holds potential to improve existing therapies, particularly the second-line multi-tyrosine kinase inhibitor sorafenib. The proposed combination of sorafenib with an inhibitor of the deubiquitinase UCH-L1 not only enhances sorafenib efficacy but present promise to also counter resistance mechanisms. Moreover, because effective responses are achieved at lower drug doses, this may in addition reduce therapy-associated adverse effects further increasing potential impact. While sorafenib is FDA-approved, the UCH-L1 inhibitor LDN57444 needs further (clinical) development to bring our promising findings to full translational potential for HCC patients and physicians.

cancer biology↗

PPARalpha-ERRalpha crosstalk mitigates metabolic dysfunction-associated steatotic liver disease progression

Background and aimsMetabolic dysfunction-associated steatotic liver disease (MASLD) is now the most common liver disease worldwide. This study investigates how targeting two key nuclear receptors involved in hepatic energy metabolism, peroxisome proliferator-activated receptor alpha (PPAR) and estrogen-related receptor alpha (ERR), impacts MASLD. MethodsThe PPAR agonist pemafibrate and/or ERR inverse agonist C29 were administered in a short- and long-term Western diet plus fructose model, and a diabetic-background streptozotocin-Western diet model (STZ-WD). Liver morphology, histological samples, serum metabolites, RNA and protein levels were analysed and scanning electron microscopy was performed. In addition, we performed cell-based assays and immunohistochemistry and immunofluorescence stainings with light and super-resolution confocal microscopy of healthy, MASLD and MASH human livers. ResultsThe ligand combinations efficacy was underscored by reduced liver steatosis in all the mouse models. Both long-term models showed improvements in body weight and liver morphology, alongside reductions in inflammation and fibrosis. Additionally, tumor formation was prevented in the STZ-WD mice model. Cell-based assays demonstrated that ERR inhibits PPARs activity, likely explaining why ERR blockage improves inflammatory and lipid metabolism gene profiles and enhances lipid-lowering effects. Complementary RNA sequencing and shotgun proteomics, combined with enrichment analysis, jointly identified downregulated serum amyloid A1/A2 as an essential component underlying the combination treatments effectiveness. MASLD/MASH patient livers showed reduced PPAR and increased ERR levels supporting disrupted NR crosstalk in the hepatocyte nucleus. ConclusionOur study comprehensively supports that dual nuclear receptor targeting by simultaneously increasing PPAR and diminishing ERR activity may represent a viable novel strategy against MASLD. Lay summaryOur study using three distinct MASLD mouse models shows that a simultaneous targeting of PPAR and ERR reduces liver fat, fibrosis, inflammation, and tumor formation. The combination treatment modifies lipid metabolism pathways, and uniquely lowers levels of serum amyloid A1/A2 in the liver. Impact and implicationsOur research introduces a novel therapeutic strategy against MASLD by simultaneously increasing PPAR activity while diminishing ERR activity. With PPAR agonists already tested in phase III clinical trials, ERR ligands/modulators need further (clinical) development to make our findings applicable to both MASLD patients and physicians.

pharmacology and toxicology↗