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Senescence plays a role in myotonic dystrophy type 1
Mikel García-Puga, Ander Saenz-Antoñanzas, Gorka Gerenu, Alex Arrieta-Legorburu, Roberto Fernández-Torrón, Miren Zulaica, Amets Saenz, Joseba Elizazu, Gisela Nogales-Gadea, Shahinaz M. Gadalla, Marcos J. Araúzo-Bravo, Adolfo López de Munain, Ander Matheu
Mikel García-Puga, Ander Saenz-Antoñanzas, Gorka Gerenu, Alex Arrieta-Legorburu, Roberto Fernández-Torrón, Miren Zulaica, Amets Saenz, Joseba Elizazu, Gisela Nogales-Gadea, Shahinaz M. Gadalla, Marcos J. Araúzo-Bravo, Adolfo López de Munain, Ander Matheu
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Research Article Aging Cell biology

Senescence plays a role in myotonic dystrophy type 1

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Abstract

Myotonic dystrophy type 1 (DM1; MIM #160900) is an autosomal dominant disorder, clinically characterized by progressive muscular weakness and multisystem degeneration. The broad phenotypes observed in patients with DM1 resemble the appearance of an accelerated aging process. However, the molecular mechanisms underlying these phenotypes remain largely unknown. Transcriptomic analysis of fibroblasts derived from patients with DM1 and healthy individuals revealed a decrease in cell cycle activity, cell division, and DNA damage response in DM1, all of which related to the accumulation of cellular senescence. The data from transcriptome analyses were corroborated in human myoblasts and blood samples, as well as in mouse and Drosophila models of the disease. Serial passage studies in vitro confirmed the accelerated increase in senescence and the acquisition of a senescence-associated secretory phenotype in DM1 fibroblasts, whereas the DM1 Drosophila model showed reduced longevity and impaired locomotor activity. Moreover, functional studies highlighted the impact of BMI1 and downstream p16INK4A/RB and ARF/p53/p21CIP pathways in DM1-associated cellular phenotypes. Importantly, treatment with the senolytic compounds Quercetin, Dasatinib, or Navitoclax reversed the accelerated aging phenotypes in both DM1 fibroblasts in vitro and in Drosophila in vivo. Our results identify the accumulation of senescence as part of DM1 pathophysiology and, therefore, demonstrate the efficacy of senolytic compounds in the preclinical setting.

Authors

Mikel García-Puga, Ander Saenz-Antoñanzas, Gorka Gerenu, Alex Arrieta-Legorburu, Roberto Fernández-Torrón, Miren Zulaica, Amets Saenz, Joseba Elizazu, Gisela Nogales-Gadea, Shahinaz M. Gadalla, Marcos J. Araúzo-Bravo, Adolfo López de Munain, Ander Matheu

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Figure 6

BMI1 pathway and DNA damage response regulate several phenotypes of DM1 fibroblasts.

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BMI1 pathway and DNA damage response regulate several phenotypes of DM1 ...
(A) Western blot of indicated proteins in control and DM1 fibroblasts infected with empty vector (–) or construct encoding BMI1 (BMI1). Representative immunoblots of 3 independent experiments are shown. (B) BMI1 mRNA levels in DM1 fibroblasts infected with empty vector or overexpressing BMI1 compared with control fibroblasts (n = 2 experiments with 2 independent biological samples each). (C) Cell growth of different genotypes at the indicated time points (n ≥ 5). (D) Quantification of pH3+ cells in the indicated genotypes (n = 4). (E) mRNA levels of p16INK4A, p14ARF, and p21CIP1 in DM1 (n = 3) and control fibroblasts (n = 2). (F) Quantification of SA–β-galactosidase+ cells in indicated genotypes. Results are average of 2 independent experiments with 2 independent samples each. (G) Quantification of γ-H2AX integrated fluorescence density at indicated genotypes in the absence or presence of doxorubicin (each point represents an independent sample; n ≥ 5). (H) Quantification of 53BP1 integrated fluorescence density in controls and DM1 fibroblasts in the absence or presence of doxorubicin (each point represents an independent sample; n ≥ 5). (I) BRCA1 mRNA levels in DM1 and control fibroblasts infected with empty vector (pLKO, or –) or with a short hairpin (shBRCA1) (n = 2). Relative expression to pLKO condition in each genotype. (J) Cell growth of different genotypes at the indicated time points (n ≥ 2). (K) mRNA levels of p16INK4A in DM1 and control fibroblasts of the indicated genotypes (n ≥ 2). (L) Quantification of γ-H2AX integrated fluorescence density in controls and DM1 fibroblasts in the absence or presence of doxorubicin (n = 3). P values were calculated using the Student’s t test with P value corrected for FDR. ≠P < 0.1, *P < 0.05, **P < 0.01, ***P < 0.001.

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