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Structural effects of extracellular loop mutations in CFTR helical hairpins
Yuan-Heng Chang1, Tracy A Stone1, Stephanie Chin1
1Division of Molecular Medicine, Research Institute, Hospital for Sick Children, Toronto, Ontario M5G 0A4, Canada; Department of Biochemistry, University of Toronto, Toronto, Ontario M5S 1A8, Canada.
Abstract:
Missense mutations constitute 40% of 2000 cystic fibrosis-phenotypic mutations in the cystic fibrosis transmembrane conductance regulator (CFTR) database, yet the precise mechanism as to how a point mutation can render the entire 1480-residue CFTR protein dysfunctional is not well-understood. Here we investigate the structural effects of two CF-phenotypic mutations - glutamic acid to glycine at position 217 (E217G) and glutamine to arginine at position 220 (Q220R) - in the extracellular (ECL2) loop region of human CFTR using helical hairpin constructs derived from transmembrane (TM) helices 3 and 4 of the first membrane domain. We systematically replaced the wild type (WT) residues E217 and Q220 with the subset of missense mutations that could arise through a single nucleotide change in their respective codons. Circular dichroism spectra of E217G revealed that a significant increase in helicity vs. WT arises in the membrane-mimetic environment of sodium dodecylsulfate (SDS) micelles, while this mutant showed a similar gel shift to WT on SDS-PAGE gels. In contrast, the CF-mutant Q220R showed similar helicity but an increased gel shift vs. WT. These structural variations are compared with the maturation levels of the corresponding mutant full-length CFTRs, which we found are reduced to approx. 50% for E217G and 30% for Q220R vs. WT. The overall results with CFTR hairpins illustrate the range of impacts that single mutations can evoke in intramolecular protein-protein and/or protein-lipid interactions - and the levels to which corresponding mutations in full-length CFTR may be flagged by quality control mechanisms during biosynthesis.
Insights
Missense mutations in cystic fibrosis transmembrane conductance regulator (CFTR) cause dysfunction. This study reveals how specific mutations impact CFTR structure and maturation, affecting protein interactions and quality control.
Area of Science:
- Structural biology
- Molecular genetics
- Biochemistry
Background:
- Missense mutations are common in cystic fibrosis transmembrane conductance regulator (CFTR) but their precise mechanisms of dysfunction are unclear.
- Understanding these mechanisms is crucial for developing effective cystic fibrosis therapies.
Purpose of the Study:
- To investigate the structural effects of two CF-phenotypic missense mutations (E217G and Q220R) in the CFTR extracellular loop 2 (ECL2) region.
- To correlate structural changes in CFTR hairpin constructs with the maturation levels of full-length mutant CFTR proteins.
Main Methods:
- Utilized helical hairpin constructs representing TM helices 3 and 4 of CFTR.
- Employed circular dichroism spectroscopy and SDS-PAGE to analyze protein structure and stability.
- Assessed maturation levels of full-length mutant CFTR proteins.
Main Results:
- The E217G mutation increased helicity in a membrane-mimetic environment, while Q220R showed similar helicity but altered SDS-PAGE migration.
- Maturation of full-length CFTR was reduced to approximately 50% for E217G and 30% for Q220R compared to wild type.
- Demonstrated that single mutations can significantly impact protein structure, interactions, and cellular processing.
Conclusions:
- Single missense mutations in CFTR can induce diverse structural changes with varying impacts on protein stability and interactions.
- These structural alterations correlate with reduced maturation of full-length CFTR, highlighting the role of protein quality control mechanisms.
- The findings provide insights into the molecular basis of CFTR dysfunction and potential therapeutic targets.
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