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Duchenne muscular dystrophy hiPSC–derived myoblast drug screen identifies compounds that ameliorate disease in mdx mice
Congshan Sun, In Young Choi, Yazmin I. Rovira Gonzalez, Peter Andersen, C. Conover Talbot Jr., Shama R. Iyer, Richard M. Lovering, Kathryn R. Wagner, Gabsang Lee
Congshan Sun, In Young Choi, Yazmin I. Rovira Gonzalez, Peter Andersen, C. Conover Talbot Jr., Shama R. Iyer, Richard M. Lovering, Kathryn R. Wagner, Gabsang Lee
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Research Article Muscle biology Stem cells

Duchenne muscular dystrophy hiPSC–derived myoblast drug screen identifies compounds that ameliorate disease in mdx mice

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Abstract

Duchenne muscular dystrophy (DMD) is the most common muscular dystrophy. In the present study, when human induced pluripotent stem cells (hiPSCs) were differentiated into myoblasts, the myoblasts derived from DMD patient hiPSCs (DMD hiPSC–derived myoblasts) exhibited an identifiable DMD-relevant phenotype: myogenic fusion deficiency. Based on this model, we developed a DMD hiPSC–derived myoblast screening platform employing a high-content imaging (BD Pathway 855) approach to generate parameters describing morphological as well as myogenic marker protein expression. Following treatment of the cells with 1524 compounds from the Johns Hopkins Clinical Compound Library, compounds that enhanced myogenic fusion of DMD hiPSC–derived myoblasts were identified. The final hits were ginsenoside Rd and fenofibrate. Transcriptional profiling revealed that ginsenoside Rd is functionally related to FLT3 signaling, while fenofibrate is linked to TGF-β signaling. Preclinical tests in mdx mice showed that treatment with these 2 hit compounds can significantly ameliorate some of the skeletal muscle phenotypes caused by dystrophin deficiency, supporting their therapeutic potential. Further study revealed that fenofibrate could inhibit mitochondrion-induced apoptosis in DMD hiPSC–derived cardiomyocytes. We have developed a platform based on DMD hiPSC–derived myoblasts for drug screening and identified 2 promising small molecules with in vivo efficacy.

Authors

Congshan Sun, In Young Choi, Yazmin I. Rovira Gonzalez, Peter Andersen, C. Conover Talbot Jr., Shama R. Iyer, Richard M. Lovering, Kathryn R. Wagner, Gabsang Lee

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Figure 5

Ginsenoside Rd and fenofibrate treatment ameliorate the disease phenotype of mdx5cv mice.

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Ginsenoside Rd and fenofibrate treatment ameliorate the disease phenotyp...
(A) Scheme showing compound treatment of mdx mice. (B) Body weight of mdx mice measured weekly from 3 to 10 weeks of age. Sham control was mdx mice treated with standard diet; n = 7 for all 3 groups. (C and D) Staining and quantification of Masson’s trichrome–labeled fibrotic area (blue) in diaphragm muscle of mice; n (sham) = 14, n (ginsenoside Rd ) = 8, n (fenofibrate) = 8; *P ≤ 0.05; scale bar: 200 μm. (E) Frequency distribution of muscle fiber CSA of TAs; n = 5 for all 3 groups. (F) Measurement of forelimb grip strength normalized to body weight of mdx mice treated with ginsenoside Rd or fenofibrate; n (sham) = 16, n (ginsenoside Rd) = 8, n (fenofibrate) = 9; *P ≤ 0.05. (G) Maximum distance mdx mice ran on treadmill; n (sham) = 16, n (ginsenoside Rd) = 8; n (fenofibrate) = 9; **P ≤ 0.01. (H) Fatigue index (%) represents the reduction in maximal tetanic tension measured after 5 minutes of repeated tetanic stimulation at 1 Hz in TA muscle of mdx mice; n = 5 for all 3 groups; *P ≤ 0.05, **P ≤ 0.01. (I) Susceptibility to injury (percent loss of maximal isometric force after lengthening contractions) of quadriceps muscle (Quad) n = 5 for all 3 groups; *P ≤ 0.05, **P ≤ 0.01. Data are presented as mean ± SEM; each point represents 1 mouse; 1-way ANOVA with Dunnett’s multiple-comparisons test with sham control.

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