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Hamstra, S. I.

Publications and source records attributed to Hamstra, S. I..

3 recordsLinked to original sources

Tideglusib mitigates dystrophic pathology in skeletal muscle and restores diastolic function in young D2 mdx mice

Introductory paragraphDuchenne muscular dystrophy (DMD) is a severe X-linked muscle wasting disorder that affects 1 in 5,000 males worldwide1. It is caused by the absence of functional dystrophin, which compromises muscle integrity, leading to progressive muscle wasting and weakness2. Glucocorticoids are the standard of care for patients with DMD as they delay the loss of ambulation by an average of 3 years3; however, they are also associated with adverse effects such as insulin resistance and increased risk of type 2 diabetes4. Thus, alternative therapeutic options should be explored. Here, we show that treating the DBA/2J mdx mouse with the glycogen synthase kinase 3 (GSK3) inhibitor, tideglusib, improved skeletal muscle function and insulin sensitivity, while also attenuating the hypermetabolic phenotype previously observed in these mice5. Furthermore, treating mdx mice with the GSK3 inhibitor, lithium, augmented the benefits of voluntary wheel running on insulin sensitivity and skeletal muscle function despite running half of the total distance compared to control-treated mdx mice. This is important given that some patients with DMD may not be able to engage in adequate amounts of physical activity. Thus, GSK3 inhibition alone or in combination with exercise can enhance skeletal muscle function and insulin sensitivity in mdx mice.

physiology↗

SERCA-mediated calcium uptake in the DBA/2J vs C57BL/10 mdx models of Duchenne muscular dystrophy

The DBA/2J (D2) mdx mouse has emerged as a more severe model of Duchenne muscular dystrophy when compared to the traditional C57BL/10 (C57) mdx mouse. Here, we questioned whether sarco(endo)plasmic reticulum Ca2+-ATPase (SERCA) function would differ in muscles from young D2 and C57 mdx mice. In gastrocnemius muscles, both D2- and C57 mdx mice exhibited signs of impaired Ca2+ uptake, however, this was more severe in D2 mdx mice. Maximal SERCA activity was lowered only in D2 mdx gastrocnemius muscles and not C57 mdx muscles. Furthermore, in the left ventricle and diaphragm, Ca2+ uptake was impaired in C57 mdx muscles with lowered rates of Ca2+ uptake compared with C57 WT mice, whereas in muscles from D2 mdx mice, rates of Ca2+ uptake were unattainable due to the severe impairments in their ability to transport Ca2+. Overall, our study demonstrates that SERCA function is drastically impaired in young D2 mdx mice.

pathology↗

Characterizing SERCA function in murine skeletal muscles after 35-37 days of spaceflight

It is well established that microgravity exposure causes significant muscle weakness and atrophy via muscle unloading. On Earth, muscle unloading leads to a disproportionate loss in muscle force and size with the loss in muscle force occurring at a faster rate. Though the exact mechanisms are unknown, a role for Ca2+ dysregulation has been suggested. The sarco(endo)plasmic reticulum Ca2+ ATPase (SERCA) pump actively brings cytosolic Ca2+ into the SR, eliciting muscle relaxation and maintaining low intracellular Ca2+ ([Ca2+]i). SERCA dysfunction contributes to elevations in [Ca2+]i, leading to cellular damage and thus may contribute to the muscle weakness and atrophy observed with spaceflight. Here, we investigated SERCA function, SERCA regulatory protein content (sarcolipin, phospholamban, and neuronatin), and reactive oxygen/nitrogen species (RONS) protein adduction in murine skeletal muscle after 35-37 days of spaceflight. In male and female soleus muscles, spaceflight led to drastic impairments in Ca2+ uptake despite significant increases in SERCA1a protein content. We attribute this impairment to an increase in RONS production and elevated total protein tyrosine (T) nitration and cysteine (S) nitrosylation. Contrarily, in the tibialis anterior (TA) we observed an enhancement in Ca2+ uptake, which we attribute to a shift towards a faster muscle fiber type (i.e., increased myosin heavy chain IIb and SERCA1a) without elevated total protein T-nitration and S-nitrosylation. Thus, spaceflight affects SERCA function differently between the soleus and TA. As the soleus is severely affected by spaceflight, future studies should determine whether improving SERCA function in this muscle can mitigate muscle atrophy and weakness.

physiology↗