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Biology subjects

Allaire, N. E.

Publications and source records attributed to Allaire, N. E..

2 recordsLinked to original sources

Upregulation of a nonsense mediated decay (NMD) insensitive CFTR mRNA isoform has therapeutic potential for the treatment of 3 Prime CFTR PTC variants

BackgroundNonsense or Premature Termination Codon (PTC) mutations of the CFTR gene are pathogenic and found in [~]10% of North American people with cystic fibrosis. PTC mutations induce Nonsense-Mediated mRNA Decay (NMD), leading to a substantial ([~]80-90%) reduction in full-length mRNA. This reduction is a key contributor to PTC mutation-related pathology. Various approaches to evade NMD and preserve the impacted mRNA transcript have been explored but have not progressed to clinical development, leaving NMD a significant hurdle for PTC readthrough therapy. MethodsAntisense oligonucleotides (ASOs) were tiled across intron 22 splice donor (SD) and acceptor (SA) sites of the CFTR gene. Immortalized airway cells were treated with SD and SA ASOs, and those yielding the greatest increase in a CFTR NMD-insensitive mRNA isoform (e22 trunc mRNA) were tested in combinations. Top SD/SA ASO pairs were assessed for their impact on e22 trunc mRNA via ddPCR, e22 trunc protein via western blot, and CFTR-mediated chloride (Cl-) transport via transepithelial electrophysiological measurements in immortalized and primary human bronchial epithelial (hBE) cell cultures. ResultsWe demonstrate that e22 trunc mRNA generates a truncated CFTR protein whose Cl- transport function can be enhanced with elexacaftor/tezacaftor/ivacaftor (ETI) treatment. ASO and ETI treatment in combination restore [~]20% and 25% of wild-type CFTR Cl- transport function in immortalized epithelial and primary hBE cells homozygous for CFTR W1282X, respectively. ConclusionsThis study lays the groundwork for advancing ASO-mediated upregulation of e22 trunc mRNA and protein as a therapeutic approach for cystic fibrosis caused by 3-terminal CFTR PTC mutations.

genomics↗

In Vitro Modulator Responsiveness of 655 CFTR Variants Found in People With CF

BackgroundIn 2017, the US Food and Drug Administration initiated expansion of drug labels for the treatment of cystic fibrosis (CF) to include CF transmembrane conductance regulator (CFTR) gene variants based on in vitro functional studies. This study aims to identify CFTR variants that result in increased chloride (Cl-) transport function by the CFTR protein after treatment with the CFTR-modulator combination elexacaftor/tezacaftor/ivacaftor (ELX/TEZ/IVA). These data may benefit people with CF (pwCF) who are not currently eligible for modulator therapies. MethodsPlasmid DNA encoding 655 CFTR variants and wild-type (WT) CFTR were transfected into Fisher Rat Thyroid cells that do not natively express CFTR. After 24 hours of incubation with control or TEZ and ELX, and acute addition of IVA, CFTR function was assessed using the transepithelial current clamp conductance assay. Each variants baseline activity, responsiveness to IVA alone, and responsiveness to the TEZ/ELX/IVA combination were measured in three different laboratories. Western blots were conducted to evaluate CFTR protein maturation and complement the functional data. Results and Conclusions253 variants not currently approved for CFTR modulator therapy showed low baseline activity (<10% of normal CFTR Cl- transport activity). For 152 of these variants, treatment with ELX/TEZ/IVA improved the Cl- transport activity by [&ge;]10% of normal CFTR function, which is suggestive of clinical benefit. ELX/TEZ/IVA increased CFTR function by [&ge;]10 percentage points for an additional 140 unapproved variants with [&ge;]10% but <50% of normal CFTR function at baseline. These findings significantly expand the number of rare CFTR variants for which ELX/TEZ/IVA treatment should result in clinical benefit.

pharmacology and toxicology↗