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Altered membrane rigidity via enhanced endogenous cholesterol synthesis drives cancer cell resistance to destruxins
Daniela Heilos1,2, Clemens Röhrl3, Christine Pirker1
1Institute of Cancer Research, Department of Internal Medicine I, Medical University of Vienna, Comprehensive Cancer Center of the Medical University of Vienna, Vienna, Austria.
Abstract:
Destruxins, secondary metabolites of entomopathogenic fungi, exert a wide variety of interesting characteristics ranging from antiviral to anticancer effects. Although their mode of action was evaluated previously, the molecular mechanisms of resistance development are unknown. Hence, we have established destruxin-resistant sublines of HCT116 colon carcinoma cells by selection with the most prevalent derivatives, destruxin (dtx)A, dtxB and dtxE. Various cell biological and molecular techniques were applied to elucidate the regulatory mechanisms underlying these acquired and highly stable destruxin resistance phenotypes. Interestingly, well-known chemoresistance-mediating ABC efflux transporters were not the major players. Instead, in dtxA- and dtxB-resistant cells a hyper-activated mevalonate pathway was uncovered resulting in increased de-novo cholesterol synthesis rates and elevated levels of lanosterol, cholesterol as well as several oxysterol metabolites. Accordingly, inhibition of the mevalonate pathway at two different steps, using either statins or zoledronic acid, significantly reduced acquired but also intrinsic destruxin resistance. Vice versa, cholesterol supplementation protected destruxin-sensitive cells against their cytotoxic activity. Additionally, an increased cell membrane adhesiveness of dtxA-resistant as compared to parental cells was detected by atomic force microscopy. This was paralleled by a dramatically reduced ionophoric capacity of dtxA in resistant cells when cultured in absence but not in presence of statins. Summarizing, our results suggest a reduced ionophoric activity of destruxins due to cholesterol-mediated plasma membrane re-organization as molecular mechanism underlying acquired destruxin resistance in human colon cancer cells. Whether this mechanism might be valid also in other cell types and organisms exposed to destruxins e.g. as bio-insecticides needs to be evaluated.
Insights
Researchers uncovered how colon cancer cells become resistant to destruxins, natural compounds from fungi. Resistance involves increased cholesterol synthesis and altered cell membranes, not typical drug efflux pumps. This finding offers new insights into cancer cell defense mechanisms.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Biology
Background:
- Destruxins are fungal metabolites with diverse bioactivities, including anticancer potential.
- The molecular mechanisms underlying resistance to destruxins remain largely unknown.
- Understanding destruxin resistance is crucial for their therapeutic and bio-insecticidal applications.
Purpose of the Study:
- To elucidate the molecular mechanisms of acquired resistance to destruxins in human colon carcinoma cells.
- To investigate the role of cellular pathways and membrane properties in destruxin resistance.
- To identify potential targets for overcoming destruxin resistance.
Main Methods:
- Establishment of destruxin-resistant HCT116 colon carcinoma cell sublines.
- Cell biological and molecular techniques to analyze resistance mechanisms.
- Assessment of mevalonate pathway activity, cholesterol synthesis, and cell membrane properties (adhesiveness, ionophoric capacity).
Main Results:
- Destruxin resistance was acquired and stable, independent of ABC efflux transporters.
- Resistant cells exhibited a hyper-activated mevalonate pathway, leading to increased cholesterol synthesis.
- Inhibition of the mevalonate pathway or cholesterol supplementation modulated destruxin sensitivity.
- Increased cell membrane adhesiveness and reduced destruxin ionophoric capacity were observed in resistant cells.
Conclusions:
- Cholesterol-mediated plasma membrane re-organization reduces destruxin ionophoric activity, underlying acquired resistance.
- The mevalonate pathway and cholesterol metabolism are key regulators of destruxin resistance in colon cancer cells.
- These findings suggest novel strategies for enhancing destruxin efficacy and overcoming resistance.
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