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Updated: Jun 10, 2026

Analysis of Protein Folding, Transport, and Degradation in Living Cells by Radioactive Pulse Chase
Published on: February 12, 2019
Thermal unfolding studies show the disease causing F508del mutation in CFTR thermodynamically destabilizes
Irina Protasevich1, Zhengrong Yang, Chi Wang
1Center for Biophysical Sciences and Engineering, University of Alabama at Birmingham, Birmingham, Alabama 35294-4400, USA.
Insights
The F508del mutation in cystic fibrosis transmembrane conductance regulator (CFTR) causes protein misfolding. This study reveals F508del destabilizes CFTR
Area of Science:
- Biochemistry
- Molecular Biology
- Biophysics
Background:
- Cystic fibrosis (CF) is caused by mutations in the CFTR gene, with F508del being the most common.
- The F508del mutation leads to CFTR misfolding and degradation, impairing its function.
- Previous studies indicated that F508del-CFTR is temperature-sensitive, but its effect on isolated hNBD1 folding was unclear.
Purpose of the Study:
- To investigate the in vitro thermal unfolding of human NBD1 (hNBD1) with and without the F508del mutation.
- To elucidate the defective folding mechanism and thermal instability of F508del-CFTR.
Main Methods:
- Differential scanning calorimetry (DSC) to analyze thermal unfolding.
- Circular dichroism (CD) spectroscopy to assess protein structure.
- Nonlinear least squares fitting to derive a thermal unfolding mechanism.
Main Results:
- The F508del mutation lowers the hNBD1 unfolding transition temperature (Tm) by 6-7°C.
- Unfolding occurs via a kinetically controlled, irreversible transition involving a partially folded, aggregation-prone intermediate state (AT).
- F508del thermodynamically destabilizes the native state and accelerates the formation of the AT state.
Conclusions:
- The F508del mutation destabilizes the native state of hNBD1, contributing to CFTR misfolding.
- The irreversible formation of an aggregation-prone intermediate is a key aspect of F508del-CFTR's thermal instability.
- Understanding this mechanism provides insights into CFTR folding defects and potential therapeutic strategies.
Abstract:
Misfolding and degradation of CFTR is the cause of disease in patients with the most prevalent CFTR mutation, an in-frame deletion of phenylalanine (F508del), located in the first nucleotide-binding domain of human CFTR (hNBD1). Studies of (F508del)CFTR cellular folding suggest that both intra- and inter-domain folding is impaired. (F508del)CFTR is a temperature-sensitive mutant, that is, lowering growth temperature, improves both export, and plasma membrane residence times. Yet, paradoxically, F508del does not alter the fold of isolated hNBD1 nor did it seem to perturb its unfolding transition in previous isothermal chemical denaturation studies. We therefore studied the in vitro thermal unfolding of matched hNBD1 constructs ±F508del to shed light on the defective folding mechanism and the basis for the thermal instability of (F508del)CFTR. Using primarily differential scanning calorimetry (DSC) and circular dichroism, we show for all hNBD1 pairs studied, that F508del lowers the unfolding transition temperature (T(m)) by 6-7°C and that unfolding occurs via a kinetically-controlled, irreversible transition in isolated monomers. A thermal unfolding mechanism is derived from nonlinear least squares fitting of comprehensive DSC data sets. All data are consistent with a simple three-state thermal unfolding mechanism for hNBD1 ± F508del: N(±MgATP) <==> I(T)(±MgATP) → A(T) → (A(T))(n). The equilibrium unfolding to intermediate, I(T), is followed by the rate-determining, irreversible formation of a partially folded, aggregation-prone, monomeric state, A(T), for which aggregation to (A(T))(n) and further unfolding occur with no detectable heat change. Fitted parameters indicate that F508del thermodynamically destabilizes the native state, N, and accelerates the formation of A(T).
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