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Pharmacological PIK3C2B inhibition rescues XLMTM phenotype in mouse models and identifies molecular markers of disease
Andrew Shearer, Melissa L. Brooks, Maxine M. Chen, Thiwanka Samarakoon, John Hsieh, Gramoz Kondakci, Emanuele Perola, Jason Brubaker, Kristina Fetalvero, Stefanie Schalm, Joana Caetano-Lopes
Andrew Shearer, Melissa L. Brooks, Maxine M. Chen, Thiwanka Samarakoon, John Hsieh, Gramoz Kondakci, Emanuele Perola, Jason Brubaker, Kristina Fetalvero, Stefanie Schalm, Joana Caetano-Lopes
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Research Article Development Genetics Muscle biology

Pharmacological PIK3C2B inhibition rescues XLMTM phenotype in mouse models and identifies molecular markers of disease

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Abstract

X-linked myotubular myopathy (XLMTM) is a rare genetic disorder that typically presents at birth with progressive muscle weakness and respiratory difficulties and is caused by myotubularin 1 (MTM1) gene mutations. Here, we examine the role of phosphatidylinositol-4-phosphate 3-kinase catalytic subunit type 2-β (PIK3C2B), a lipid kinase that interacts with MTM1, in XLMTM in various models. We examined the effect of BLU3797, a highly potent, selective, orally bioavailable PIK3C2B inhibitor, on survival, muscle development, myofiber phenotypes, and gene expression in MTM1–/y mice. PIK3C2B-deficient XLMTM animals demonstrated increased survival, restored muscle function, fewer myofibers with centralized nuclei, and normalization of disease-associated molecular markers. BLU3797 alleviated the XLMTM phenotype in a dose-dependent and reversible manner. Loss of functional PIK3C2B in XLMTM mice promoted a more differentiated, adult-like myofiber profile, which was strongly associated with normalization of disease surrogates and a reduction in markers of early muscle development and regeneration. BLU3797 treatment appears to modulate the expression of miRNAs associated with satellite cell activation and myofiber fusion. These findings indicate that PIK3C2B inhibition with BLU3797 effectively reverses the XLMTM disease phenotype by enhancing muscle function and promoting development toward a more mature state.

Authors

Andrew Shearer, Melissa L. Brooks, Maxine M. Chen, Thiwanka Samarakoon, John Hsieh, Gramoz Kondakci, Emanuele Perola, Jason Brubaker, Kristina Fetalvero, Stefanie Schalm, Joana Caetano-Lopes

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Figure 4

In a mouse model of XLMTM (MTM1–/y), the presence of the PIK3C2B kinase-dead mutation leads to the restoration of muscle function and histology.

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In a mouse model of XLMTM (MTM1–/y), the presence of the PIK3C2B kinase-...
(A) Comparison of male MTM1–/y, WT, and PIK3C2B kinase-dead (PIK3C2BD1212A/D1212A) MTM1–/y weight gain. (B) Analysis of muscle strength by wire hanging latency. (C) Comparison of mobility and muscle coordination by kinematic gait analysis. (D) Representative images of H&E-stained gastrocnemius muscle (experiment conducted 3 times). Arrow indicates myofiber with central nucleus. Scale bars: 100 μm and 200 μm. (E) Summary of histological analysis comparing percentage of myofibers with centralized nuclei. (F) Summary of histological analysis examining myofiber diameter. (G) Summary of histological analysis of nuclear density within a tissue section. (H) Histogram profile of the cross-sectional area of myofibers. (I) Plasma myostatin level comparison. (J) Muscle PtdIns3P level comparison. (K) Western blot staining of SQSTM1/P62 from muscle lysates. Data shown as mean ± SEM. In box-and-whisker plots, median (line), mean (symbol), 25th–75th quartile range (box), and minimum and maximum (whiskers) are shown. Number of animals per group ranged from 5 (PIK3C2B+/+MTM1–/y) to 10 (WT and PIK3C2B–/–MTM1–/y). *P < 0.05; **P < 0.01; ***P < 0.001; ****P < 0.0001. Comparisons of wire hanging latency, percentage of myofibers with central nuclei, myofiber diameter, plasma myostatin, and myofiber nuclei density were done with Kruskal-Wallis test with Dunn’s correction for multiple comparisons. Comparisons of kinematic gait analyses were done with 1-way ANOVA with Tukey’s correction for multiple comparisons. Comparisons of myofiber diameter and muscle PtdIns3P expression were done with 1-way ANOVA with Holm-Šídák’s correction for multiple comparisons. PtdIns3P, phosphatidylinositol 3-phosphate.

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