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Impaired muscle mitochondrial energetics is associated with uremic metabolite accumulation in chronic kidney disease
Trace Thome, Ravi A. Kumar, Sarah K. Burke, Ram B. Khattri, Zachary R. Salyers, Rachel C. Kelley, Madeline D. Coleman, Demetra D. Christou, Russell T. Hepple, Salvatore T. Scali, Leonardo F. Ferreira, Terence E. Ryan
Trace Thome, Ravi A. Kumar, Sarah K. Burke, Ram B. Khattri, Zachary R. Salyers, Rachel C. Kelley, Madeline D. Coleman, Demetra D. Christou, Russell T. Hepple, Salvatore T. Scali, Leonardo F. Ferreira, Terence E. Ryan
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Research Article Muscle biology Nephrology

Impaired muscle mitochondrial energetics is associated with uremic metabolite accumulation in chronic kidney disease

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Abstract

Chronic kidney disease (CKD) causes progressive skeletal myopathy involving atrophy, weakness, and fatigue. Mitochondria have been thought to contribute to skeletal myopathy; however, the molecular mechanisms underlying muscle metabolism changes in CKD are unknown. We employed a comprehensive mitochondrial phenotyping platform to elucidate the mechanisms of skeletal muscle mitochondrial impairment in mice with adenine-induced CKD. CKD mice displayed significant reductions in mitochondrial oxidative phosphorylation (OXPHOS), which was strongly correlated with glomerular filtration rate, suggesting a link between kidney function and muscle mitochondrial health. Biochemical assays uncovered that OXPHOS dysfunction was driven by reduced activity of matrix dehydrogenases. Untargeted metabolomics analyses in skeletal muscle revealed a distinct metabolite profile in CKD muscle including accumulation of uremic toxins that strongly associated with the degree of mitochondrial impairment. Additional muscle phenotyping found CKD mice experienced muscle atrophy and increased muscle protein degradation, but only male CKD mice had lower maximal contractile force. CKD mice had morphological changes indicative of destabilization in the neuromuscular junction. This study provides the first comprehensive evaluation of mitochondrial health in murine CKD muscle to our knowledge and uncovers several unknown uremic metabolites that strongly associate with the degree of mitochondrial impairment.

Authors

Trace Thome, Ravi A. Kumar, Sarah K. Burke, Ram B. Khattri, Zachary R. Salyers, Rachel C. Kelley, Madeline D. Coleman, Demetra D. Christou, Russell T. Hepple, Salvatore T. Scali, Leonardo F. Ferreira, Terence E. Ryan

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Figure 8

Adenine-induced CKD causes atrophy and increased protein degradation in muscle but does not alter muscle-specific force.

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Adenine-induced CKD causes atrophy and increased protein degradation in ...
(A–D) Quantified muscle weights for (A) TA, (B) gastrocnemius, (C) EDL, and (D) soleus muscles of control and CKD mice (n = 5–7/group/sex). (E) Protein degradation rates of soleus muscles in control and CKD mice (n = 6/group/sex). (F) Representative immunofluorescence images of the soleus muscle sections stained with laminin (myofibers), GS-lectin (capillaries), and DAPI (nuclei). (G) Histogram of soleus myofibers CSAs indicates a leftward shift in CKD mice (indicative of atrophy) (n = 6–7/group/sex). (H) Mean soleus myofibers CSA (n = 6–7/group/sex). (I) Pearson correlation between mean myofibers CSA and GFR across groups. (J) An abbreviated force frequency curve was used to assess soleus muscle force production ex vivo. Quantified peak absolute force (K) and specific force (L) (n = 5–10/group/sex). (M) Muscle power was quantified using a shortening contraction (n = 5–10/group/sex). (N) Muscle fatigue was assessed and quantified using repeated tetanic contractions (1/s) for 5 minutes (n = 5–10/sex/group). *P < 0.05, **P < 0.01, ***P < 0.001, and ****P < 0.0001 using 2-way ANOVA and Tukey’s post hoc when appropriate. Error bars show standard deviation. Scale bars: 200 μm.

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