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Svrzikapa, N.

Publications and source records attributed to Svrzikapa, N..

3 recordsLinked to original sources

Targeted BDNF upregulation via upstream open reading frame disruption

To understand the relative contributions of 5' UTR elements to translation, we performed a comprehensive analysis of upstream open reading frames (uORFs) across a representative 5' UTR. We selected the neurotrophin BDNF (Brain derived neurotrophic factor) as an exemplar as upregulation of this protein is a potential therapeutic approach for a plethora of neurodevelopmental, neurodegenerative, and neuropsychiatric disorder indications. Predicted uORFs were identified in 14 out of 17 BDNF RefSeq transcript isoforms, and experimentally confirmed to be exerting translation repression effects for five of these transcripts. These findings suggest that uORF elements play an important role in shaping the protein output from this locus. We explored several approaches to disrupt BDNF uORF function. Deletion of a 5' UTR exon in BDNF v11 (containing eight predicted uORFs), in order to simulate an exon skipping outcome, resulted in pronounced upregulation in a reporter construct system. This effect was found to be partially uORF-dependent, but was also dependent on the disruption of an RNA secondary structure element. However, this transcript variant was found to not be expressed in human brain. Conversely, direct disruption of a single uORF start codon in the widely expressed BDNF v4 transcript variant using an adenine base editing approach resulted in a [~]1.8-fold upregulation of endogenous BDNF protein expression in cell culture. This study describes novel BDNF regulatory mechanisms, and potential uORF-targeted modalities for therapeutic gene activation.

molecular biology↗

uORF-targeting steric block antisense oligonucleotides do not reproducibly activate RNASEH1 expression

Upstream open reading frames (uORFs) are cis-regulatory motifs that are predicted to occur in the 5' untranslated region (UTR) of the majority of human protein-coding transcripts. uORFs are typically associated with repression of the downstream primary open reading frame (pORF) at either the level of translation, or by promoting mRNA turnover via the nonsense-mediated decay pathway. Interference with uORF activity provides a potential mechanism for targeted upregulation of the expression of specific transcripts. It was recently reported that steric block antisense oligonucleotides (ASOs) can bind to and mask uORF start codons in order to inhibit translation initiation, and thereby disrupt uORF-mediated gene regulation. Given the relative maturity of the oligonucleotide field, such a uORF blocking mechanism might have widespread therapeutic utility. Here, we re-synthesised three of the most potent ASOs targeting the RNASEH1 uORF described in the study by Liang et al. and investigated their potential for RNASEH1 protein upregulation. No upregulation (of endogenous or reporter protein expression) was observed with any of the oligonucleotides tested at doses ranging from 25 nM to 300 nM. Conversely, we observed downregulation of expression in some instances, consistent with well-established mechanisms of blocking ribosome procession. Experiments were performed using multiple transfection protocol setups, with care taken to replicate the conditions of the original study. Transfection efficiency was confirmed using a MALAT1-targeting gapmer ASO as a positive control. We conclude that previously-described RNASEH1 uORF-targeting steric block ASOs are incapable of upregulating pORF protein expression in our hands.

biochemistry↗

Non-uniform dystrophin re-expression after CRISPR-mediated exon excision in the dystrophin/utrophin double-knockout mouse model of DMD

Duchenne muscular dystrophy (DMD) is the most prevalent inherited myopathy affecting children, caused by genetic loss of the gene encoding the dystrophin protein. There are currently four FDA-approved drugs for DMD that aim to restore expression of dystrophin by exon skipping using splice switching oligonucleotides. While these therapies require lifelong repeat administration, recent advancements in gene editing technologies have raised the possibility of achieving permanent exon skipping, and thereby curing the disease with a single treatment. Here we have investigated the use of the Staphylococcus aureus CRISPR/Cas9 system and a double-cut strategy, delivered using a pair of AAV9 vectors, for dystrophin restoration in the severely-affected dystrophin/utrophin double knock-out (dKO) mouse. Single guide RNAs were designed to induce double-strand DNA breaks on either side of Dmd exon 23, such that the intervening exon 23 sequence is excised when the flanking intronic regions are joined via the non-homologous end joining repair pathway. Exon 23 deletion was confirmed at the DNA level by PCR and Sanger sequencing, and at the RNA level by RT-qPCR. Restoration of dystrophin protein expression was demonstrated by western blot and immunofluorescence staining in mice treated via either intraperitoneal or intravenous routes of delivery. Dystrophin restoration was most effective in the diaphragm, where a maximum of 5.7% of wild-type dystrophin expression was observed. CRISPR treatment was insufficient to extend lifespan in the dKO mouse, and dystrophin was expressed in a within-fiber patchy manner in skeletal muscle tissues. Further analysis revealed a plethora of non-productive DNA repair events, including AAV genome integration at the CRISPR cut sites. This study highlights potential challenges for the successful development of CRISPR therapies in the context of DMD.

molecular biology↗