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EGFR N-Glycosylation Catalyzed by NDST2 Promotes Lenvatinib Resistance in Hepatocellular Carcinoma
Huiying Gu1,2,3, Fan Li4, Yuyan Chen2
1Department of Infectious Disease, Children's Hospital of Chongqing Medical University, National Clinical Research Center for Child Health and Disorders, Ministry of Education Key Laboratory of Child Development and Disorders, Chongqing Key Laboratory of Child Rare Diseases in Infection and Immunity, Chongqing, China.
Abstract:
The clinical efficacy of lenvatinib, a multitarget tyrosine kinase inhibitor used as a first-line treatment for advanced hepatocellular carcinoma (HCC), is frequently compromised by the development of drug resistance. Elucidating the molecular mechanisms underlying this resistance is essential to improving therapeutic outcomes. Using patient-derived organoids (PDO) and orthotopic HCC xenograft models, we uncovered a role for epidermal growth factor receptor (EGFR) in lenvatinib resistance. Most PDOs recapitulated the limited clinical response to lenvatinib and displayed significant resistance. Notably, resistant organoids exhibited enhanced N-glycosylation of EGFR, which correlated with increased EGFR protein expression. Functional studies demonstrated that inhibiting either global N-glycosylation or EGFR signaling restored lenvatinib sensitivity in cellular and in vivo models. Integrated proteomic and N-glycoproteomic analyses identified bifunctional heparan sulfate N-deacetylase/N-sulfotransferase 2 (NDST2) as the key enzyme mediating site-specific N-glycosylation of EGFR at four conserved asparagine residues (N175, N196, N413, and N623). NDST2-catalyzed glycosylation enhanced EGFR stability by suppressing ubiquitin-proteasomal degradation and promoted its membrane localization, thereby activating multiple prosurvival pathways, including MAPK, PI3K/AKT, and JAK/STAT. Clinically, NDST2 was upregulated in lenvatinib-resistant HCC specimens and positively correlated with EGFR expression. Importantly, targeting NDST2 via genetic ablation or inhibition using a CaCO3 nanoparticle-based small interfering RNA delivery system effectively reversed lenvatinib resistance in HCC tumor models. These findings establish NDST2-driven EGFR N-glycosylation as a critical mechanism of lenvatinib resistance in HCC and highlight NDST2 as a promising therapeutic target for restoring drug sensitivity.
Significance:
NDST2 catalyzes glycosylation that stabilizes EGFR and enhances downstream oncogenic signaling in hepatocellular carcinoma to confer resistance to lenvatinib, which can be overcome by targeting the NDST2-EGFR axis.
Insights
Drug resistance to lenvatinib in advanced liver cancer (HCC) can be overcome by targeting NDST2. This enzyme drives resistance by altering epidermal growth factor receptor (EGFR) glycosylation, making NDST2 a potential therapeutic target.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Lenvatinib is a first-line treatment for advanced hepatocellular carcinoma (HCC).
- Drug resistance frequently limits lenvatinib's clinical efficacy in HCC.
- Understanding resistance mechanisms is crucial for improving patient outcomes.
Purpose of the Study:
- To elucidate the molecular mechanisms of lenvatinib resistance in HCC.
- To identify novel therapeutic targets for overcoming lenvatinib resistance.
Main Methods:
- Utilized patient-derived organoids (PDOs) and orthotopic HCC xenograft models.
- Performed integrated proteomic and N-glycoproteomic analyses.
- Investigated the role of epidermal growth factor receptor (EGFR) and N-glycosylation.
Main Results:
- Enhanced N-glycosylation of EGFR was identified as a key mechanism in lenvatinib resistance.
- NDST2 was identified as the enzyme responsible for site-specific EGFR N-glycosylation.
- NDST2 upregulation correlated with lenvatinib resistance and EGFR expression in HCC.
- Targeting NDST2 reversed lenvatinib resistance in preclinical HCC models.
Conclusions:
- NDST2-driven EGFR N-glycosylation is a critical mechanism of lenvatinib resistance in HCC.
- NDST2 represents a promising therapeutic target for restoring lenvatinib sensitivity in HCC.
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