Decreased mRNA and protein stability of W1282X limits response to modulator therapy
M A Aksit1, A D Bowling1, T A Evans1
1McKusick-Nathans Institute of Genetic Medicine, Johns Hopkins University School of Medicine, Baltimore, MD, United States.
Background:
Cell-based studies have shown that W1282X generates a truncated protein that can be functionally augmented by modulators. However, modulator treatment of primary cells from individuals who carry two copies of W1282X generates no functional CFTR. To understand the lack of response to modulators, we investigated the effect of W1282X on CFTR RNA transcript levels.
Methods:
qRT-PCR and RNA-seq were performed on primary nasal epithelial (NE) cells of a previously studied individual who is homozygous for W1282X, her carrier parents and control individuals without nonsense variants in CFTR.
Results:
CFTR RNA bearing W1282X in NE cells shows a steady-state level of 4.2 ± 0.9% of wild-type (WT) CFTR RNA in the mother and 12.4 ± 1.3% in the father. NMDI14, an inhibitor of nonsense-mediated mRNA decay (NMD), restored W1282X mRNA to almost 50% of WT levels in the parental NE cells. RNA-seq of the NE cells homozygous for W1282X showed that CFTR transcript level was reduced to 1.7% of WT (p-value: 4.6e-3). Negligible truncated CFTR protein was generated by Flp-In 293 cells stably expressing the W1282X EMG even though CFTR transcript was well above levels observed in the parents and proband. Finally, we demonstrated that NMD inhibition improved the stability and response to correctors of W1282X-CFTR protein expressed in the Flp-In-293 cells.
Conclusion:
These results show that W1282X can cause substantial degradation of CFTR mRNA that has to be addressed before efforts aimed at augmenting CFTR protein function can be effective.
Insights
The W1282X mutation significantly degrades CFTR mRNA, preventing functional protein. Inhibiting nonsense-mediated decay (NMD) can restore CFTR RNA levels and improve protein response to treatments.
Area of Science:
- Genetics
- Molecular Biology
- Biochemistry
Background:
- The W1282X mutation in Cystic Fibrosis Transmembrane Conductance Regulator (CFTR) leads to a truncated protein.
- While modulators can augment truncated CFTR, they are ineffective in individuals homozygous for W1282X.
- The reason for this lack of response to modulators in W1282X homozygotes is unclear.
Purpose of the Study:
- To investigate the impact of the W1282X mutation on CFTR RNA transcript levels.
- To explore the potential of modulating nonsense-mediated mRNA decay (NMD) to restore CFTR function.
Main Methods:
- Quantitative reverse transcription PCR (qRT-PCR) and RNA sequencing (RNA-seq) were used.
- Primary nasal epithelial (NE) cells from a W1282X homozygous individual, carrier parents, and controls were analyzed.
- Flp-In 293 cells expressing W1282X-CFTR were used to assess protein expression and response to NMD inhibition.
Main Results:
- W1282X mutation significantly reduced CFTR RNA levels to 1.7% of wild-type (WT) in homozygous NE cells.
- Nonsense-mediated mRNA decay (NMD) inhibition (using NMDI14) restored W1282X mRNA levels to nearly 50% of WT in parental NE cells.
- NMD inhibition also improved the stability and corrector response of W1282X-CFTR protein in Flp-In 293 cells.
Conclusions:
- The W1282X mutation causes substantial degradation of CFTR mRNA.
- Addressing CFTR mRNA degradation via NMD inhibition is crucial before therapeutic strategies aiming to augment CFTR protein function can be effective.
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