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Skeletal Muscle Atrophy Induced by Diabetes Is Mediated by Non-Selective Channels and Prevented by Boldine
Luis A Cea1, Walter Vásquez2, Romina Hernández-Salinas3
1Instituto de Ciencias Biomédicas, Facultad de Ciencias de la Salud, Universidad Autónoma de Chile, Av. Llano Subercaseaux 2801, San Miguel, Santiago 8910060, Chile.
Abstract:
Individuals with diabetes mellitus present a skeletal muscle myopathy characterized by atrophy. However, the mechanism underlying this muscular alteration remains elusive, which makes it difficult to design a rational treatment that could avoid the negative consequences in muscles due to diabetes. In the present work, the atrophy of skeletal myofibers from streptozotocin-induced diabetic rats was prevented with boldine, suggesting that non-selective channels inhibited by this alkaloid are involved in this process, as has previously shown for other muscular pathologies. Accordingly, we found a relevant increase in sarcolemma permeability of skeletal myofibers of diabetic animals in vivo and in vitro due to de novo expression of functional connexin hemichannels (Cx HCs) containing connexins (Cxs) 39, 43, and 45. These cells also expressed P2X7 receptors, and their inhibition in vitro drastically reduced sarcolemma permeability, suggesting their participation in the activation of Cx HCs. Notably, sarcolemma permeability of skeletal myofibers was prevented by boldine treatment that blocks Cx43 and Cx45 HCs, and now we demonstrated that it also blocks P2X7 receptors. In addition, the skeletal muscle alterations described above were not observed in diabetic mice with myofibers deficient in Cx43/Cx45 expression. Moreover, murine myofibers cultured for 24 h in high glucose presented a drastic increase in sarcolemma permeability and levels of NLRP3, a molecular member of the inflammasome, a response that was also prevented by boldine, suggesting that, in addition to the systemic inflammatory response found in diabetes, high glucose can promote the expression of functional Cx HCs and activation of the inflammasome in skeletal myofibers. Therefore, Cx43 and Cx45 HCs play a critical role in myofiber degeneration, and boldine could be considered a potential therapeutic agent to treat muscular complications due to diabetes.
Insights
Boldine prevents skeletal muscle atrophy in diabetes by inhibiting connexin hemichannels (Cx HCs) and P2X7 receptors. This finding offers a potential therapeutic strategy for diabetic muscle complications.
Area of Science:
- Biochemistry
- Cell Biology
- Diabetology
Background:
- Diabetes mellitus causes skeletal muscle myopathy and atrophy, but the underlying mechanisms are not fully understood.
- This lack of understanding hinders the development of effective treatments for diabetic muscle complications.
Purpose of the Study:
- To investigate the role of non-selective channels in diabetic skeletal muscle atrophy.
- To explore boldine as a potential therapeutic agent for preventing muscle degeneration in diabetes.
Main Methods:
- Induction of diabetes in rats using streptozotocin.
- Assessment of sarcolemma permeability and connexin hemichannel (Cx HC) expression in myofibers.
- Inhibition of Cx HCs and P2X7 receptors using boldine and other agents.
- Analysis of NLRP3 inflammasome activation in high glucose conditions.
- Evaluation of muscle alterations in diabetic mice with Cx43/Cx45 deficient myofibers.
Main Results:
- Boldine treatment prevented skeletal muscle atrophy in diabetic rats.
- Diabetic myofibers showed increased sarcolemma permeability due to de novo expression of Cx HCs (Cx39, Cx43, Cx45) and P2X7 receptors.
- Boldine inhibited Cx HCs and P2X7 receptors, reducing sarcolemma permeability.
- High glucose exposure increased myofiber sarcolemma permeability and NLRP3 inflammasome levels, which were prevented by boldine.
- Diabetic mice lacking Cx43/Cx45 in myofibers did not exhibit skeletal muscle alterations.
Conclusions:
- Connexin 43 and 45 hemichannels play a critical role in myofiber degeneration associated with diabetes.
- Boldine demonstrates potential as a therapeutic agent for mitigating muscular complications in diabetes by targeting Cx HCs and P2X7 receptors.
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