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Sex-dependent and muscle-specific progression of the MYBPC1 E248K Myotrem myopathy in response to aging
Jennifer M. Mariano, Humberto C. Joca, Jacob Kallenbach, Natasha Ranu, Julien Ochala, Christopher Ward, Aikaterini Kontrogianni-Konstantopoulos
Jennifer M. Mariano, Humberto C. Joca, Jacob Kallenbach, Natasha Ranu, Julien Ochala, Christopher Ward, Aikaterini Kontrogianni-Konstantopoulos
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Research Article Cell biology Muscle biology

Sex-dependent and muscle-specific progression of the MYBPC1 E248K Myotrem myopathy in response to aging

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Abstract

Dominant missense mutations in MYBPC1, the gene encoding the essential sarcomeric slow Myosin Binding Protein-C (sMyBP-C), are associated with Myotrem, a new, early-onset congenital myopathy characterized by muscle weakness, hypotonia, skeletal deformities, and myogenic tremor. Importantly, the clinical manifestation of Myotrem in mid- and late adulthood is unknown. Using the Myotrem MYBPC1 E248K–knock-in (E248K-KI) murine model, we interrogated contractile performance of soleus, gastrocnemius, and tibalis anterior (TA) muscles in both male and female mice in mid- (12 months) and late (24 months) adulthood. Our findings show that the phenotypic manifestation of E248K Myotrem differs across muscle type, sex, and age. While KI soleus muscle consistently exhibited contractile impairment across both sexes and ages, KI gastrocnemius muscle displayed preserved force production. Interestingly, TA muscle showed a sex- and age-specific effect with preserved function through 12 months in both sexes and a sharp decline at 24 months solely in males. Quantitative analysis of TA sarcomeric organization uncovered structural deficits coinciding with contractile dysfunction, supporting the notion that sMyBP-C serves a primarily structural role in skeletal muscle. Collectively, our studies reveal that aging affects the E248K Myotrem myopathy in a muscle- and sex-dependent fashion and show that sarcomeric disorganization accompanies contractile deterioration in affected muscles.

Authors

Jennifer M. Mariano, Humberto C. Joca, Jacob Kallenbach, Natasha Ranu, Julien Ochala, Christopher Ward, Aikaterini Kontrogianni-Konstantopoulos

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Figure 1

Ex vivo contractile function of 12-month-old male soleus muscle.

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Ex vivo contractile function of 12-month-old male soleus muscle.
(A and ...
(A and B) Soleus morphometric parameters were similar between WT and Knock-In (KI) mice in terms of mass (A) and physiological cross-sectional area (PCSA; B). (C) Soleus muscles from 12-month-old WT and KI male mice were mounted to a force transducer and a rigid pole on each end, and they were immersed in an ex vivo bath. Muscles were subsequently subjected to brief pulses of field stimulation between 1 and 200 Hz, and a force-frequency relationship was generated at tetanic stimulation (200 Hz). (D–F) KI male soleus muscle produced significantly reduced absolute force (D); specific force, defined as absolute force divided by PCSA (E); and rate of contraction (F) at 12 months compared with age- and sex-matched WT. (G) However, no statistical difference was observed in relaxation rate; n = 5 WT and n = 4 KI mice. Data are presented as mean ± SEM, and force traces are shown over a 1,500 msec period with a sampling rate of 125 Hz. Statistical significance was determined by 2-tailed Student’s t test (A, B, F, and G) and 2-way ANOVA followed by Šídák’s multiple comparisons test (D and E); NS, not significant; **P < 0.01 and ****P < 0.0001.

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