bioRxiv Science⌕ Search

Biology subjects

Joynt, A. T.

Publications and source records attributed to Joynt, A. T..

2 recordsLinked to original sources

Base editing and nanoparticle transfection of airway cell types essential for treatment of cystic fibrosis

Cystic Fibrosis (CF) is a life-limiting genetic disorder caused by deleterious variants in the CFTR gene that results in altered mucous impairing the airway epithelia. Durable correction of these variants in airway cells remain a therapeutic challenge for [~]10% of individuals unresponsive to CFTR modulators. A common disease-causing CFTR splice site variant was corrected in primary CF airway cells using base editor RNAs. Single-cell RNA sequencing revealed a remarkable increase in detectable CFTR transcript in most CF airway epithelial cell types with notable enrichment of CFTR-expressing ionocytes and secretory goblet cells. Progenitor basal cell subtypes were edited but they decreased as a fraction of total cells and CFTR expressing cells compared to unedited cells. CRISPR base editors delivered by polymeric nanoparticles (PNPs) facilitated functional rescue of CFTR to clinically meaningful levels in immortalized and primary airway cells. PNPs delivered reporter encoding RNA to progenitor airway cells in fully differentiated airway cultures. Vitronectin was a major component of the PNP corona that formed in vivo, but pre-incubation with vitronectin did not enhance delivery. Together, these findings validate a scalable, non-viral platform with significant translational promise for treating CF and other respiratory diseases involving respiratory epithelial cell dysfunction.

genetics↗

Addressing the dNTP bottleneck restricting prime editing activity

Prime editing efficiency is modest in cells that are quiescent or slowly proliferating where intracellular dNTP levels are tightly regulated. MMLV-reverse transcriptase - the prime editor polymerase subunit - requires high intracellular dNTPs levels for efficient polymerization. We report that prime editing efficiency in primary cells and in vivo is increased by mutations that enhance the enzymatic properties of MMLV-reverse transcriptase and can be further complemented by targeting SAMHD1 for degradation.

biochemistry↗