4.6 Article

The CFTR P67L variant reveals a key role for N-terminal lasso helices in channel folding, maturation, and pharmacologic rescue

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JOURNAL OF BIOLOGICAL CHEMISTRY
卷 296, 期 -, 页码 -

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ELSEVIER
DOI: 10.1016/j.jbc.2021.100598

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资金

  1. Cystic Fibrosis Foundation Therapeutics [SORSCH13XX0, BRAAKM14XX0, SENDERO9XX0]
  2. National Institutes of Health [P30 DK072482, R01HL136414, RO1HL139876]
  3. National Center for Advancing Translational Sciences of National Institutes of Health [UL1TR000454]
  4. Netherlands Organization for Health Research and Development (ZonMw TOP) [40-00812-98-14103]
  5. Netherlands Cystic Fibrosis Foundation (HIT-CF grant)

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Patients with cystic fibrosis carrying the P67L variant in CFTR often exhibit typical CF symptoms and show robust response to CFTR correctors. Biochemical measurements and molecular dynamics analysis suggest that the P67L mutation shares key pathogenic features with F508del and may impair the integrity of CFTR structure, providing a potential target for pharmacological repair.
Patients with cystic fibrosis (CF) harboring the P67L variant in the cystic fibrosis transmembrane conductance regulator (CFTR) often exhibit a typical CF phenotype, including severe respiratory compromise. This rare mutation (reported in <300 patients worldwide) responds robustly to CFTR correctors, such as lumacaftor and tezacaftor, with rescue in model systems that far exceed what can be achieved for the archetypical CFTR mutant F508del. However, the specific molecular consequences of the P67L mutation are poorly characterized. In this study, we conducted biochemical measurements following low-temperature growth and/or intragenic suppression, which suggest a mechanism underlying P67L that (1) shares key pathogenic features with F508del, including off-pathway (non-native) folding intermediates, (2) is linked to folding stability of nucleotide-binding domains 1 and 2, and (3) demonstrates pharmacologic rescue that requires domains in the carboxyl half of the protein. We also investigated the lasso helices 1 and 2, which occur immediately upstream of P67. Based on limited proteolysis, pulse chase, and molecular dynamics analysis of full-length CFTR and a series of deletion constructs, we argue that P67L and other maturational processing (class 2) defects impair the integrity of the lasso motif and confer misfolding of downstream domains. Thus, amino-terminal missense variants elicit a conformational change throughout CFTR that abrogates maturation while providing a robust substrate for pharmacologic repair.

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