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Dichloroacetate and thiamine improve survival and mitochondrial stress in a C. elegans model of dihydrolipoamide dehydrogenase deficiency
Chynna N. Broxton, Prabhjot Kaur, Manuela Lavorato, Smruthi Ganesh, Rui Xiao, Neal D. Mathew, Eiko Nakamaru-Ogiso, Vernon E. Anderson, Marni J. Falk
Chynna N. Broxton, Prabhjot Kaur, Manuela Lavorato, Smruthi Ganesh, Rui Xiao, Neal D. Mathew, Eiko Nakamaru-Ogiso, Vernon E. Anderson, Marni J. Falk
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Research Article Genetics Metabolism

Dichloroacetate and thiamine improve survival and mitochondrial stress in a C. elegans model of dihydrolipoamide dehydrogenase deficiency

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Abstract

Dihydrolipoamide dehydrogenase (DLD) deficiency is a recessive mitochondrial disorder caused by depletion of DLD from α-ketoacid dehydrogenase complexes. Caenorhabditis elegans animal models of DLD deficiency generated by graded feeding of dld-1(RNAi) revealed that full or partial reduction of DLD-1 expression recapitulated increased pyruvate levels typical of pyruvate dehydrogenase complex deficiency and significantly altered animal survival and health, with reductions in brood size, adult length, and neuromuscular function. DLD-1 deficiency dramatically increased mitochondrial unfolded protein stress response induction and adaptive mitochondrial proliferation. While ATP levels were reduced, respiratory chain enzyme activities and in vivo mitochondrial membrane potential were not significantly altered. DLD-1 depletion directly correlated with the induction of mitochondrial stress and impairment of worm growth and neuromuscular function. The safety and efficacy of dichloroacetate, thiamine, riboflavin, 5-aminoimidazole-4-carboxamide-1-β-d-ribofuranoside (AICAR), l-carnitine, and lipoic acid supplemental therapies empirically used for human DLD disease were objectively evaluated by life span and mitochondrial stress response studies. Only dichloroacetate and thiamine showed individual and synergistic therapeutic benefits. Collectively, these C. elegans dld-1(RNAi) animal model studies demonstrate the translational relevance of preclinical modeling of disease mechanisms and therapeutic candidates. Results suggest that clinical trials are warranted to evaluate the safety and efficacy of dichloroacetate and thiamine in human DLD disease.

Authors

Chynna N. Broxton, Prabhjot Kaur, Manuela Lavorato, Smruthi Ganesh, Rui Xiao, Neal D. Mathew, Eiko Nakamaru-Ogiso, Vernon E. Anderson, Marni J. Falk

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Figure 5

DLD-1–deficient worms displayed significantly reduced levels of ATP, increased levels of pyruvate and mitochondria, and normal RC function.

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DLD-1–deficient worms displayed significantly reduced levels of ATP, inc...
For all mitochondrial experiments, worms were grown on diluted 1:20 dld-1(RNAi) (squares) and full-dose dld-1(RNAi) (triangles), where synchronized populations of approximately 1,000 worms were homogenized and assayed for different biochemical properties relative to wild-type (N2) worms (circles). Error bars display mean ± SD. (A) ATP. ATP amount was significantly decreased by dld-1(RNAi) in both the 1:20 partial and the full knockdown worms. The results were analyzed by 2-sided 1-way ANOVA, followed by Tukey’s multiple comparisons (*P < 0.05, **P < 0.01). (B) RC enzyme activities. RC enzyme activities of complexes I (CI, filled shapes), II (CII, unfilled shapes), and IV (CIV, half-filled shapes) were not significantly different in 1:20 or full-dose dld-1(RNAi) worms relative to wild-type (N2) control worms. (C) Pyruvate and lactate. Pyruvate (filled shapes) was significantly increased by the full-dose dld-1(RNAi) (*P < 0.05), while the lactate (unfilled shapes) level showed a decreasing trend resulting in a significant increase in the pyruvate/lactate ratio (half-filled shapes) (**P < 0.01). The results were analyzed by 2-sided 1-way ANOVA, followed by Tukey’s multiple comparisons. The arrows indicate the appropriate y axis for each data set. (D) Mitochondrial membrane potential. Integrated RC function at the level of in vivo mitochondrial membrane potential determined by the mitochondrial retention of TMRE normalized to COX4:GFP, as a proxy for mitochondrial content, was not significantly different in either 1:20 diluted or full dose dld‑1(RNAi) worms relative to wild-type (N2) controls. (E) Mitochondrial content. Significantly increased mitochondrial content was detected in the full dld-1(RNAi) knockdown worms by BioSorter analysis of myo-3p:GFP(mit) fluorescence. Scatterplot conveys means ± SEM, **P < 0.01 determined by 1-way ANOVA.

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