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A Slc5a6-deficient mouse model reveals metabolically driven cardiomyopathy with therapeutic potential for vitamin-based intervention
Millie O. Fullerton, Lauren C. Phillips, Rachael E. Redgrave, Luke Spray, Vincent Haufroid, George Merces, Scott T. Kerridge, Gavin D. Richardson, Nathalie Mercier, Dominique Roland, Rebecca Crossley, Andrew D.H. Morgan, Joseph P. Dewulf, John Burn, Simon D. Bamforth, Helen M. Phillips
Millie O. Fullerton, Lauren C. Phillips, Rachael E. Redgrave, Luke Spray, Vincent Haufroid, George Merces, Scott T. Kerridge, Gavin D. Richardson, Nathalie Mercier, Dominique Roland, Rebecca Crossley, Andrew D.H. Morgan, Joseph P. Dewulf, John Burn, Simon D. Bamforth, Helen M. Phillips
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Research Article Cardiology Metabolism

A Slc5a6-deficient mouse model reveals metabolically driven cardiomyopathy with therapeutic potential for vitamin-based intervention

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Abstract

The sodium-dependent multivitamin transporter, encoded by SLC5A6, mediates cellular uptake of biotin and pantothenic acid, essential cofactors for energy metabolism. We identified 2 families with SLC5A6 mutations presenting with early-onset dilated cardiomyopathy (DCM). To investigate the link between vitamin deficiency and cardiomyopathy, we generated a cardiac-specific SLC5A6-knockout (Slc5a6cKO) mouse model and evaluated the impact of vitamin supplementation. Slc5a6cKO mice developed progressive cardiac dysfunction, culminating in cardiac pathology and premature death at 26 weeks; earlier stages exhibited cardiomyocyte hypertrophy, fibrosis, impaired coenzyme A synthesis, and metabolic imbalance, indicating progression toward cardiomyopathy. Cardiac magnetic resonance imaging and ECG confirmed progressive functional decline. Proteomic analysis revealed early mitochondrial metabolic disruption and extracellular matrix protein upregulation at 8 weeks, preceding overt cardiac dysfunction. Strikingly, vitamin supplementation from preconception onwards prevented the cardiac phenotype, preserving cardiac structure, function, morphology and survival. This paralleled the clinical outcome in one patient who received early vitamin treatment, compared with another who required a heart transplant without vitamin treatment. This study establishes a direct link between SLC5A6-mediated vitamin transport, mitochondrial function, and cardiac health. It highlights how vitamin deficiency contributes to cardiomyopathy pathogenesis and supports early vitamin supplementation as a potential therapeutic strategy for metabolic cardiomyopathies.

Authors

Millie O. Fullerton, Lauren C. Phillips, Rachael E. Redgrave, Luke Spray, Vincent Haufroid, George Merces, Scott T. Kerridge, Gavin D. Richardson, Nathalie Mercier, Dominique Roland, Rebecca Crossley, Andrew D.H. Morgan, Joseph P. Dewulf, John Burn, Simon D. Bamforth, Helen M. Phillips

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Figure 4

Slc5a6cKO mice develop progressive electrical conduction abnormalities that are prevented by vitamin supplementation.

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Slc5a6cKO mice develop progressive electrical conduction abnormalities ...
(A–D) Representative average ECG traces from 20-week mice. Control (A) and vitamin-supplemented control (C) mice have a well-defined P wave, QRS complex, and J wave, whereas Slc5a6cKO mice (B) presented with a longer PR interval (dotted line) and loss of the J wave (arrow). ECG traces from vitamin-supplemented Slc5a6cKO mutants (D) were comparable to control mice. (E–L) Quantification of ECG traces from 8-week mice (E–H) and 20-week mice (I–L) on a normal diet, showed a significant decrease in heart rate, increase in PR interval, widening of the QRS complex (20-weeks only), and loss of the J wave amplitude in Slc5a6cKO mutants. No differences were observed in the vitamin-supplemented Slc5a6cKO mice compared to vitamin-supplemented control mice (8 weeks: Con n = 13, cKO n = 12, ConV n = 12, cKOV n = 10; 20 weeks: Con n = 10, cKO n = 14, ConV n = 12, cKOV n = 10). Con, control; cKO, Slc5a6cKO; ConV, vitamin-supplemented control; cKOV, vitamin-supplemented Slc5a6cKO. Data are represented as mean ± SEM. ns, nonsignificant. **P < 0.01, ***P < 0.001, ****P < 0.0001 by 1-way ANOVA with Bonferroni’s correction for multiple comparisons (E and J) or nonparametric Kruskal-Wallis test with Dunn’s correction for multiple comparisons (F–I, K, and L).

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