Lactylation Converts ABHD6 into a Mitochondrial Regulator That Drives Lenvatinib Resistance in Hepatocellular
Yuening Sun1,2, Chengju Luo1,2, Hui Yang1,3
1Department of Pharmacy, Affiliated Hospital of Nantong University, Pharmacy School of Nantong University, Nantong, China.
Abstract:
Hepatocellular carcinoma (HCC) frequently develops resistance to lenvatinib, a first-line tyrosine kinase inhibitor. Resistance arises from heterogeneous mechanisms involving metabolic reprogramming and mitochondrial adaptation, implicating regulators of these processes as potential therapeutic targets. In this study, we identified α/β hydrolase domain containing 6 (ABHD6) as a critical driver of lenvatinib resistance by perturbing mitochondrial dynamics. Ligand binding at the S148 catalytic site allosterically controlled a molecular switch between canonical enzymatic and noncanonical scaffolding functions of ABHD6, and the proresistance function was independent of catalysis but required an unoccupied catalytic site. In resistant HCC, the Warburg effect elevated lactate, leading to K245 lactylation of ABHD6. This modification triggered the mitochondrial translocation of ABHD6, in which it functioned as a scaffold that competitively bound the fission regulator mitochondrial fission 1 (FIS1) and displaced dynamin-related protein 1 (DRP1). Disruption of the fission machinery stabilized hyperfused mitochondria, thereby conferring lenvatinib resistance by suppressing drug-induced apoptosis and ROS generation. Both inhibiting lactate production and enforcing occupancy of the S148 site with substrates or a specific inhibitor blocked formation of the ABHD6-FIS1 complex, reactivated mitochondrial fission, and restored lenvatinib sensitivity. This study identified a lactate-driven functional switch in ABHD6 and established that targeting this allosteric mechanism is an effective therapeutic strategy to overcome lenvatinib resistance.
Significance:
Lactylated ABHD6 moonlights as a regulator of mitochondrial dynamics by sequestering FIS1 to drive lenvatinib resistance in hepatocellular carcinoma, which can be overcome by targeting ABHD6 to disrupt the non-canonical scaffolding function.
Insights
Hepatocellular carcinoma (HCC) resistance to lenvatinib can be overcome by targeting alpha/beta hydrolase domain containing 6 (ABHD6). Lactate modification of ABHD6 disrupts mitochondrial fission, promoting drug resistance.
Area of Science:
- Oncology
- Biochemistry
- Cell Biology
Background:
- Hepatocellular carcinoma (HCC) often develops resistance to lenvatinib, a standard treatment.
- Mechanisms of resistance involve metabolic changes and mitochondrial adaptations, suggesting therapeutic targets.
Purpose of the Study:
- To identify regulators of mitochondrial dynamics involved in lenvatinib resistance.
- To elucidate the role of alpha/beta hydrolase domain containing 6 (ABHD6) in conferring lenvatinib resistance in HCC.
Main Methods:
- Investigated the function of ABHD6 in lenvatinib-resistant HCC cells.
- Analyzed the allosteric regulation of ABHD6 by ligand binding and lactylation.
- Examined the interaction of ABHD6 with mitochondrial fission regulators FIS1 and DRP1.
- Assessed the impact of inhibiting lactate production and ABHD6 catalytic site occupancy on mitochondrial dynamics and drug sensitivity.
Main Results:
- ABHD6 acts as a scaffold protein, independent of its enzymatic activity, to drive lenvatinib resistance.
- Lactylation of ABHD6 at K245, induced by the Warburg effect, promotes its translocation to mitochondria.
- Mitochondrial ABHD6 disrupts fission by binding FIS1 and displacing DRP1, leading to hyperfused mitochondria.
- Inhibition of lactate production or ABHD6 S148 site occupancy restores mitochondrial fission and lenvatinib sensitivity.
Conclusions:
- A lactate-driven allosteric switch in ABHD6 regulates mitochondrial dynamics and confers lenvatinib resistance.
- Targeting the ABHD6-FIS1 interaction or its allosteric regulation presents a therapeutic strategy to overcome lenvatinib resistance in HCC.
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