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Mota, M.

Publications and source records attributed to Mota, M..

2 recordsLinked to original sources

Systematic Engineering of Loss-of-Function Alleles in the Zebrafish Mitochondrial Proteome

Pathogenic variants in the 13 protein-coding genes of the mitochondrial genome underlie clinically and biochemically heterogeneous disorders. Most mtDNA-encoded genes lack defined loss-of-function (LOF) models in vivo. To address this gap, we have generated Z-Terminator, a systematic in vivo atlas of loss-of-function alleles covering all the mtDNA-encoded OXPHOS subunits in zebrafish (Danio rerio). We used mitochondrial TALE base editors to introduce premature termination codon (PTC) alleles via C-to-T transitions across Complexes I, III, IV, and V. Larvae harboring PTC alleles displayed bioenergetic defects and elevated lactate. While mtDNA mutations are associated with sensorineural hearing loss, the cellular basis has remained unclear. We show that engineered mtDNA LOF alleles directly impair hair cell function in proportion to heteroplasmy in a living vertebrate. We investigated the germline transmission and tissue-specific heteroplasmy of these LOF alleles and observed that a subset of variants was transmitted to the F1 generation and displayed distinct mutant loads across organs. These findings establish Z-Terminator as a vertebrate platform for interrogating the role of mtDNA protein-coding genes in cellular dysfunction and for elucidating the pathophysiology of mitochondrial disorders.

genetics↗

Non-Destructive Larval Genotyping of Danio rerio for Mitochondrial DNA Genetics

The rapid advancement of nuclear and mitochondrial genomic editing tools has created an urgent need for efficient, non-lethal larval genotyping methods in zebrafish (Danio rerio) research. This study optimizes and validates a non-destructive proteinase K digestion method for mitochondrial and nuclear DNA genotyping while characterizing its impact on larval survival and gene expression. Using optimized protocol parameters, we demonstrate successful amplification of different mitochondrial and nuclear genetic loci with consistently high sensitivity. Molecular validation through PCR, restriction fragment length polymorphism analysis, and Sanger sequencing confirmed the specificity and reliability of the extracted DNA. The method successfully detected C-to-T base edits in the mt-tl1 gene introduced using the FusX TALE Base editor system, demonstrating its applicability to gene editing studies. Both 48-well and optimized 96-well formats were used, enabling this approach to be deployed at scale. This optimized method enables researchers to correlate genotypes with phenotypes in longitudinal studies while maintaining specimen viability particularly valuable for investigating early-onset mitochondrial diseases and utilizes standard laboratory equipment and reagents, facilitating widespread adoption in zebrafish research while adhering to ethical principles in reducing animal mortality.

genetics↗