Single-molecule dissection of CFTR folding defects and pharmacological rescue
Kim, S. A.; Levring, J.; Chen, J.; Yoon, T.-Y.
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Cystic fibrosis is a lethal genetic disorder caused by misfolding of the CFTR protein, most commonly due to the {Delta}F508 mutation. Despite extensive study, CFTRs folding process has remained inaccessible to direct observation. Here, we apply single-molecule magnetic tweezers to resolve the complete folding trajectories of wild-type and {Delta}F508 CFTR with near-amino acid resolution. We find that CFTR follows a hierarchical, template-guided folding pathway in which N-terminal domains scaffold downstream folding. This mechanism tightly couples the free energy states of intermediates, allowing {Delta}F508-induced instability to propagate across the folding pathway. Pharmacological correctors, in synergy with ATP, reshape the entire folding energy landscape by catalyzing transitions rather than simply stabilizing end states. These long-range, allosteric effects reveal a folding-embedded regulatory network. Our work provides a quantitative framework for mapping multidomain protein folding and therapeutic rescue, offering a broadly applicable strategy for interrogating rare mutations and accelerating structure-based drug discovery. Significance StatementMisfolding of CFTR underlies cystic fibrosis, and its complex, multidomain architecture makes it an ideal model for understanding how membrane proteins fold and how small molecules can restore native structure. Using single-molecule magnetic tweezers, we reveal how local instabilities propagate through CFTRs folding pathway and show that pharmacological correctors act by catalyzing specific folding transitions in addition to stabilizing the native fold. These insights establish CFTR as a paradigm for dissecting folding mechanisms in large membrane proteins and for developing general strategies to correct misfolding across diverse human diseases.
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