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Silva-Pinheiro, P.

Publications and source records attributed to Silva-Pinheiro, P..

2 recordsLinked to original sources

Development of the Mitochondrial Base Editor Analysis Package (MitoBEAP).

For many years, the genetic manipulation of mitochondrial DNA was largely hampered by inefficient delivery of nucleic acids to mitochondria. However, the development of mitoCBEs, such as mitochondrial cytosine base editors (DdCBEs), which catalyse C*G-to-T*A conversions, and more recently, mitoABEs, such as transcription-activator-like effector (TALE)-linked deaminases (TALEDs) enabling A*T-to-G*C conversion, has transformed this field. Generally, mitochondrial base editors exhibit high on-target efficiency and are straightforward to design and use. Nonetheless, unintended off-target effects cannot be overlooked and should be assessed consistently with each experiment, which can be challenging without specialised bioinformatic expertise. Here, we introduce Mitochondrial Base Editor Analysis Package (MitoBEAP), which, to our knowledge, is the first R package specifically designed to analyse next-generation sequencing data from base-edited mtDNA samples. The package facilitates the analysis of potential off-target effects, offers multiple visualisation options, and allows customisation of graphics and thresholds for calculations. As a proof of concept, this study demonstrates how MitoBEAP can be utilised to measure the efficiency of DdCBE treatment targeting human 12S rRNA, as well as to identify potentially harmful off-target conversions across the mtDNA.

bioinformatics↗

Mitochondrial adenine base editing of mouse somatic tissues via adeno-associated viral delivery

The development of adenine base editing in mitochondria, alongside cytidine base editing, has significantly expanded the genome engineering capabilities of the mitochondrial DNA. We tested the recent advancements in adenine base editing technology using optimised TALEs targeting genes Mt-Cytb, Mt-CoII and Mt-Atp6 in mouse cells, and observed successful A:T to G:C conversions within the target windows of each gene. We then used the best-performing Mt-Atp6 pairs for systemic AAV9 delivery to neonatal mice and quantified editing in somatic tissues after 4 weeks and 6 months. Adenine editing was low at 4 weeks and increased only modestly after 6 months, indicating that prolonged exposure alone is insufficient to overcome the limited activity of the editor architectures tested here in vivo. These findings establish the feasibility of AAV-delivered mitochondrial A-to-G editing while defining important limitations that require further optimisation.

bioengineering↗