This study validates the safety and therapeutic potential of allotopic expression in vivo and provides critical mechanistic insights into its role in treating LHON and other mitochondrial diseases.
Abstract
Mutations in mitochondrial DNA (mtDNA) cause various mitochondrial diseases that are currently incurable. Allotopic expression of nuclear-recoded mitochondrial genes represents a promising therapeutic strategy, given its demonstrated capacity to restore mitochondrial function in human cell models harboring mtDNA mutations. However, the in vivo evaluation of allotopic gene therapy has been hindered by optimization challenges and the lack of appropriate animal models. Here, we overcome these limitations by utilizing an optimized AAV2-ND6 construct with codon optimization and mitochondrial targeting sequence in a mouse model bearing the homoplasmic ND6P25L mutation, which recapitulates Leber hereditary optic neuropathy (LHON). High-dose administration of the AAV2-ND6 construct resulted in robust, sustained expression within the retina and optic nerve without apparent systemic toxicity. Strikingly, We compared the therapeutic efficacy in mutant mice at different ages and pre-symptomatic intervention with AAV2-ND6 effectively attenuated disease progression, mitigated retinal cellular deficiencies and optic nerve damage, and restored visual function in ND6P25L mice. Mechanistically, allotopic ND6 expression markedly rescued the mitochondrial dysfunction, corrected dysregulated retinol metabolism and phototransduction pathways, and suppressed apoptotic processes in the mutant retina. Our study validates the safety and therapeutic potential of allotopic expression in vivo and provide critical mechanistic insights into its role in treating LHON and other mitochondrial diseases.
Mitochondrial DNA depletion syndromes (MDS) are inherited conditions caused by pathogenic variants in mitochondrial DNA maintenance genes. Most MDS are severe, fatal and incurable conditions. Mitochondrial neurogastrointestinal encephalomyopathy (MNGIE) is an MDS resulting from loss-of-function mutations in the TYMP ge...
Nissa L. Carrodus, Jenny J. Yang, Javier Ramón et al.· bioRxiv· 0 citations
It is demonstrated that physiologically regulated FXN replacement is sufficient to achieve substantial functional rescue in FA, supporting a gene therapy strategy based on a transgene expression driven by endogenous regulatory elements.
Federica Pilotto, Laure Dall'Agnol, L. Reutenauer et al.· Human Gene Therapy· 0 citations
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 a...
A. Sabharwal, Md Roushan Ali, Kyler S. Mitra et al.· bioRxiv· 0 citations
A minimally humanized mouse model of aniridia, carrying a FLAG-tagged Pax6 and the most common recurring pathogenic aniridia-patient variant, introduced for the first time in mice is generated and tested, supporting successful generation and phenotypic validation of the humanized mouse.
Seyedeh Zeinab Mirjalili Mohanna, Andrea J. Korecki, Pardis Kazemian et al.· Frontiers in Genome Editing· 0 citations
Friedreich’s ataxia (FA) is a mitochondrial disease caused by frataxin deficiency that leads to progressive neurodegeneration and cardiomyopathy. Effective disease-modifying therapies remain limited. Here we show that myeloid cell replacement promotes neurological and cardiac recovery in FA mice through intercellular m...
PURPOSE
Ndufs4 encodes a key subunit of mitochondrial complex I, and its mutation causes NADH dehydrogenase deficiency associated with Leigh syndrome and Leber hereditary optic neuropathy. In Ndufs4 knockout (KO) mice, vision loss occurs alongside an "inflammatory wave" that disrupts neuroretinal function. In this stud...