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dldhcri3 zebrafish exhibit altered mitochondrial ultrastructure, morphology, and dysfunction partially rescued by probucol or thiamine
Manuela Lavorato, Donna Iadarola, Cristina Remes, Prabhjot Kaur, Chynna Broxton, Neal D. Mathew, Rui Xiao, Christoph Seiler, Eiko Nakamaru-Ogiso, Vernon E. Anderson, Marni J. Falk
Manuela Lavorato, Donna Iadarola, Cristina Remes, Prabhjot Kaur, Chynna Broxton, Neal D. Mathew, Rui Xiao, Christoph Seiler, Eiko Nakamaru-Ogiso, Vernon E. Anderson, Marni J. Falk
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Research Article Genetics Metabolism

dldhcri3 zebrafish exhibit altered mitochondrial ultrastructure, morphology, and dysfunction partially rescued by probucol or thiamine

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Abstract

Dihydrolipoamide dehydrogenase (DLD) deficiency is a recessive mitochondrial disease caused by variants in DLD, the E3 subunit of mitochondrial α-keto (or 2-oxo) acid dehydrogenase complexes. DLD disease symptoms are multisystemic, variably manifesting as Leigh syndrome, neurodevelopmental disability, seizures, cardiomyopathy, liver disease, fatigue, and lactic acidemia. While most DLD disease symptoms are attributed to dysfunction of the pyruvate dehydrogenase complex, the effects of other α-keto acid dehydrogenase deficiencies remain unclear. Current therapies for DLD deficiency are ineffective, with no vertebrate animal model available for preclinical study. We created a viable Danio rerio (zebrafish) KO model of DLD deficiency, dldhcri3. Detailed phenotypic characterization revealed shortened larval survival, uninflated swim bladder, hepatomegaly and fatty liver, and reduced swim activity. These animals displayed increased pyruvate and lactate levels, with severe disruption of branched-chain amino acid catabolism manifest as increased valine, leucine, isoleucine, α-ketoisovalerate, and α-ketoglutarate levels. Evaluation of mitochondrial ultrastructure revealed gross enlargement, severe cristae disruption, and reduction in matrix electron density in liver, intestines, and muscle. Therapeutic modeling of candidate therapies demonstrated that probucol or thiamine improved larval swim activity. Overall, this vertebrate model demonstrated characteristic phenotypic and metabolic alterations of DLD disease, offering a robust platform to screen and characterize candidate therapies.

Authors

Manuela Lavorato, Donna Iadarola, Cristina Remes, Prabhjot Kaur, Chynna Broxton, Neal D. Mathew, Rui Xiao, Christoph Seiler, Eiko Nakamaru-Ogiso, Vernon E. Anderson, Marni J. Falk

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Figure 7

Intestinal mitochondria in 7 dpf dldh–/– larvae showed depletion of mitochondria with matrix chamber swelling and elongation.

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Intestinal mitochondria in 7 dpf dldh–/– larvae showed depletion of mito...
(A and B) Mitochondria ultrastructure (light blue) was nicely rounded in WT intestinal cells with well-organized rough reticulum (A), while intestinal cells of 7 dpf dldh–/– zebrafish larvae showed mitochondria (light blue) swelling, damage, and elongation (B). (C–E) Mitochondria ultrastructural morphological features quantified in intestinal cells of WT and dldh–/– larvae mutant larvae. Mitochondria, n = 504 (WT) and 190 (dldh–/–) in 16 cells (WT) and 13 cells (dldh–/–) from 3 WT and 3 dldh–/– larvae. (F–H) Average mitochondrial area, total mitochondrial area, and mitochondria number relative to cross-sectional area . Analysis confirmed increased mitochondrial area and decreased number of mitochondria in dldh–/– larvae relative to WT. All characteristics determined with ImageJ; statistical analyses by Student’s t test, and each point represents data from 1 cell. ****P < 0.0001; **P < 0.01. Data are shown as mean ± SD.

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