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1.
J Vis Exp ; (192)2023 Feb 10.
Article in English | MEDLINE | ID: mdl-36847373

ABSTRACT

Mutations in the mitochondrial genome (mtDNA) have been associated with maternally inherited genetic diseases. However, interest in mtDNA polymorphisms has increased in recent years due to the recently developed ability to produce models by mtDNA mutagenesis and a new appreciation of the association between mitochondrial genetic aberrations and common age-related diseases such as cancer, diabetes, and dementia. Pyrosequencing is a sequencing-by-synthesis technique that is widely employed across the mitochondrial field for routine genotyping experiments. Its relative affordability when compared to massive parallel sequencing methods and ease of implementation make it an invaluable technique in the field of mitochondrial genetics, allowing for the rapid quantification of heteroplasmy with increased flexibility. Despite the practicality of this method, its implementation as a means of mtDNA genotyping requires the observation of certain guidelines, specifically to avoid certain biases of biological or technical origin. This protocol outlines the necessary steps and precautions in designing and implementing pyrosequencing assays for use in the context of heteroplasmy measurement.


Subject(s)
Genome, Mitochondrial , Polymorphism, Single Nucleotide , Genotype , Sequence Analysis, DNA/methods , DNA, Mitochondrial/genetics , High-Throughput Nucleotide Sequencing/methods
2.
Methods Mol Biol ; 2615: 329-344, 2023.
Article in English | MEDLINE | ID: mdl-36807802

ABSTRACT

Mouse models of mitochondrial DNA mutations hold promise in the development and optimization of mitochondrial gene therapy technology and for gathering pre-clinical data prior to human trials. Their suitability for this purpose stems from the high similarity of human and murine mitochondrial genomes and the increasing availability of rationally designed AAV vectors capable of selectively transducing murine tissues. Our laboratory routinely optimizes mitochondrially targeted zinc finger nucleases (mtZFNs), the compactness of which makes them highly suitable for downstream AAV-based in vivo mitochondrial gene therapy. This chapter discusses the necessary precautions for the robust and precise genotyping of the murine mitochondrial genome as well as the optimization of mtZFNs intended for subsequent use in vivo.


Subject(s)
DNA, Mitochondrial , Mitochondrial Diseases , Humans , Animals , Mice , DNA, Mitochondrial/genetics , Zinc Finger Nucleases/genetics , Heteroplasmy , Mitochondria/genetics , Mutation , Mitochondrial Diseases/genetics
3.
Nat Biomed Eng ; 7(5): 692-703, 2023 05.
Article in English | MEDLINE | ID: mdl-36470976

ABSTRACT

The development of curative treatments for mitochondrial diseases, which are often caused by mutations in mitochondrial DNA (mtDNA) that impair energy metabolism and other aspects of cellular homoeostasis, is hindered by an incomplete understanding of the underlying biology and a scarcity of cellular and animal models. Here we report the design and application of a library of double-stranded-DNA deaminase-derived cytosine base editors optimized for the precise ablation of every mtDNA protein-coding gene in the mouse mitochondrial genome. We used the library, which we named MitoKO, to produce near-homoplasmic knockout cells in vitro and to generate a mouse knockout with high heteroplasmy levels and no off-target edits. MitoKO should facilitate systematic and comprehensive investigations of mtDNA-related pathways and their impact on organismal homoeostasis, and aid the generation of clinically meaningful in vivo models of mtDNA dysfunction.


Subject(s)
Gene Editing , Genome, Mitochondrial , Mice , Animals , Genome, Mitochondrial/genetics , DNA, Mitochondrial/genetics , Mutation , Gene Library
4.
Nat Commun ; 13(1): 750, 2022 02 08.
Article in English | MEDLINE | ID: mdl-35136065

ABSTRACT

Mitochondria host key metabolic processes vital for cellular energy provision and are central to cell fate decisions. They are subjected to unique genetic control by both nuclear DNA and their own multi-copy genome - mitochondrial DNA (mtDNA). Mutations in mtDNA often lead to clinically heterogeneous, maternally inherited diseases that display different organ-specific presentation at any stage of life. For a long time, genetic manipulation of mammalian mtDNA has posed a major challenge, impeding our ability to understand the basic mitochondrial biology and mechanisms underpinning mitochondrial disease. However, an important new tool for mtDNA mutagenesis has emerged recently, namely double-stranded DNA deaminase (DddA)-derived cytosine base editor (DdCBE). Here, we test this emerging tool for in vivo use, by delivering DdCBEs into mouse heart using adeno-associated virus (AAV) vectors and show that it can install desired mtDNA edits in adult and neonatal mice. This work provides proof-of-concept for use of DdCBEs to mutagenize mtDNA in vivo in post-mitotic tissues and provides crucial insights into potential translation to human somatic gene correction therapies to treat primary mitochondrial disease phenotypes.


Subject(s)
DNA, Mitochondrial/genetics , Gene Editing/methods , Genes, Mitochondrial/genetics , Genetic Therapy/methods , Mitochondrial Diseases/therapy , Animals , Dependovirus/genetics , Female , Genetic Vectors/administration & dosage , Genetic Vectors/genetics , Humans , Male , Mice , Mitochondria/genetics , Mitochondrial Diseases/genetics , Models, Animal , Mutagenesis , Mutation , Proof of Concept Study
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