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Quijano, E.

Publications and source records attributed to Quijano, E..

2 recordsLinked to original sources

Systemic in utero gene editing as a treatment for cystic fibrosis

In utero gene editing has the potential to modify disease causing genes in multiple developing tissues before birth, possibly allowing for normal organ development, disease improvement, and conceivably, cure. In cystic fibrosis (CF), a disease that arises from mutations in the cystic fibrosis transmembrane conductance regulator (CFTR) gene, there are signs of multiorgan disease affecting the function of the respiratory, gastrointestinal, and reproductive systems already present at birth. Thus, treating CF patients early is crucial for preventing or delaying irreversible organ damage. Here we demonstrate proof-of-concept of multiorgan mutation correction in CF using peptide nucleic acids (PNAs) encapsulated in polymeric nanoparticles and delivered systemically in utero. In utero editing was associated with sustained postnatal CFTR activity, at a level similar to that of wild-type mice, in both respiratory and gastrointestinal tissue, without detection of off-target mutations in partially homologous loci. This work suggests that systemic in utero gene editing represents a viable strategy for treating monogenic diseases before birth that impact multiple tissue types.

bioengineering↗

DNA Recognition and Induced Genome Modification by a Hydroxymethyl-γ Tail-Clamp Peptide Nucleic Acid

Peptide nucleic acids (PNA) can target and stimulate recombination reactions in genomic DNA. We have reported that gamma ({gamma})-PNA oligomers possessing the diethylene glycol {gamma}-substituent show improved efficacy over unmodified PNAs in stimulating recombination-induced gene modification. However, this structural modification poses a challenge because of the inherent racemization risk in O-alkylation of the precursory serine side chain. To circumvent this risk and improve {gamma}PNA accessibility, we explore the utility of {gamma}PNA oligomers possessing the hydroxymethyl-{gamma} moiety for gene editing applications. We demonstrate that a {gamma}PNA oligomer possessing the hydroxymethyl modification, despite weaker preorganization, retains the ability to form a hybrid with the double-stranded DNA target of comparable stability and with higher affinity to that of the diethylene glycol-{gamma}PNA. When formulated into poly(lactic-co-glycolic acid) nanoparticles, the hydroxymethyl-{gamma}PNA stimulates higher frequencies ([≥] 1.5-fold) of gene modification than the diethylene glycol {gamma}PNA in mouse bone marrow cells.

genetics↗