Target intelligence / Profile preview

Cystic fibrosis transmembrane conductance regulator (F508del mutation) (CFTR (F508del))

Target
CFTR (F508del)
Molecular classification
Ion channel, ABC transporter, Transporter
01

Overview

The F508del-mutated Cystic Fibrosis Transmembrane Conductance Regulator (CFTR) is the most prevalent genetic variant responsible for cystic fibrosis, affecting approximately 70-90% of patients [1, 3, 6]. This mutation involves the deletion of a single phenylalanine residue at position 508, which leads to a multi-faceted defect in protein biogenesis and function [1, 4]. Primarily, it causes a Class II processing defect where the protein misfolds in the endoplasmic reticulum and is targeted for proteasomal degradation, preventing its translocation to the apical membrane of epithelial cells [2, 5, 10]. Even when small amounts of the mutant protein reach the cell surface, they exhibit defective channel gating (Class III) and reduced stability (Class VI) [5, 14]. As a cAMP-regulated anion channel, its absence or dysfunction disrupts the transport of chloride and bicarbonate ions, leading to the accumulation of thick, viscous mucus in the respiratory and gastrointestinal tracts [3, 9, 10]. Pharmacological management utilizes CFTR modulators, including "correctors" like elexacaftor and tezacaftor that assist in protein folding and trafficking, and "potentiators" like ivacaftor that increase the channel's open probability [10, 13, 14].

Other names
F508del CFTRDeltaF508 CFTRΔF508 CFTRPhe508del CFTRCFTR-ΔF508
02

Mechanism of action

CFTR correctors facilitate the proper folding and trafficking of the misfolded F508del protein to the cell surface, while CFTR potentiators increase the gating frequency and open probability of the channel once it is localized at the plasma membrane [10, 11, 14].

03

Biological functions

Chloride transmembrane transportBicarbonate transmembrane transportFluid secretion regulationIon homeostasisRegulation of epithelial sodium channel (ENaC) activity
04

Disease associations

Cystic fibrosis
05

Safety considerations

Elevated liver enzymes (ALT/AST)Cataracts (particularly in pediatric patients)Drug-drug interactions (primarily via CYP3A4)Respiratory adverse effects (e.g., chest tightness, dyspnea associated with lumacaftor)
06

Interacting drugs

Ivacaftor

5 more in the full profile.

07

Biomarkers

Sweat chloride concentrationForced expiratory volume in 1 second (FEV1)Nasal potential difference (NPD)Intestinal current measurement (ICM)

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