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Hanaford, A. R.

Publications and source records attributed to Hanaford, A. R..

2 recordsLinked to original sources

MyD88 deficiency modestly attenuates disease in a Leigh syndrome mouse model while enrofloxacin accelerates disease

Primary genetic mitochondrial diseases (GMDs) are a clinically and genetically diverse group of diseases estimated to impact over 1 in 4,000 individuals. Leigh syndrome (LS) is the most common pediatric presentation of GMD. LS typically presents within the first years of life and is a severe progressive multi-system disorder. Symmetric progressive inflammatory brain lesions are a defining feature of the disease. Patients can also present with seizures, metabolic dysfunction, muscle weakness, and other symptoms. No effective clinical treatments currently exist. Recent data from the Ndufs4(-/-) mouse model shows that peripheral macrophages contribute to brain lesions in LS, that disease is causally driven by innate immune populations, and that depletion of innate immune cells prevents LS disease. However, the precise mechanisms underlying immune activation remain unknown. Certain mitochondrial macromolecules retain bacterial signatures and can act as potent agonists for innate immune pathways. For example, cytoplasmic mitochondrial RNA and mitochondrial DNA are detected by Toll-like receptors (TLRs) 7 and 9, respectively, at the endosome. Accordingly, these are considered strong candidates for mediating innate immune activation in LS. Here, we generated TLR signaling deficient Ndufs4(-/-)/MyD88(-/-) animals to assess whether TLR signaling plays a role in disease onset or progression in LS. Loss of MyD88 in Ndufs4(-/-) animals statistically significantly increased survival and delayed the onset of some symptoms, but the benefits were modest compared to CSF1R inhibition from prior work. We conclude that Myd88-mediated immune signaling is not a primary driver of LS. Notably, prophylactic enrofloxacin treatment, which was necessary for production of innate immune deficient MyD88(-/-) animals, modestly decreased survival and accelerated disease. The impact of enrofloxacin and similar drugs in the context of mitochondrial disease warrants further investigation.

neuroscience↗

IFNγ modestly contributes to disease progression in the Ndufs4(-/-) model of Leigh syndrome while IP10 is dispensable

Leigh syndrome (LS) is the most common pediatric presentation of genetic mitochondrial disease. LS is a multi-system disease characterized by severe neurologic and metabolic abnormalities. The defining feature of the disease is the presence of symmetric, bilateral, progressive necrotizing lesions in the brain stem, cerebellum, and basal ganglia. The pathogenic mechanisms underlying disease initiation and progression in LS have yet to be elucidated. Recent evidence demonstrates that the immune system plays a key role in LS pathogenesis. Treatment with the macrophage-depleting Csf1r inhibitor pexidartinib prevents disease in the Ndufs4(-/-) mouse model of LS, but the mechanisms leading to immune activation and governing disease progression remain to be elucidated. In recent work, the cytokines IFN{gamma} and IFN{gamma}-induced protein 10 (IP10) were found to be significantly elevated in Ndufs4(-/-) brainstem. Given their role as macrophage-activating factors, here we sought to assess the role of IFN{gamma} and IP10 in LS using by generating Ndufs4(-/-)/Ifng(-/-) and Ndufs4(-/-)/IP10(-/-) double knockout lines. We find that IP10 alone does not significantly impact the onset or progression of disease in the Ndufs4(-/-) model, while IFN{gamma} loss significantly, but modestly, improves survival. These data indicate that IFN{gamma} contributes to pathology, but that IFN{gamma} and IP10 are both dispensable for overall disease course of LS. Our findings support some role for IFN{gamma} targeting therapies in the management of mitochondrial disease, but suggest they may provide only modest benefits, at least in LS.

pathology↗