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Rapamycin improves satellite cells’ autophagy and muscle regeneration during hypercapnia
Joseph Balnis, Emily L. Jackson, Lisa A. Drake, Diane V. Singer, Ramon Bossardi Ramos, Harold A. Singer, Ariel Jaitovich
Joseph Balnis, Emily L. Jackson, Lisa A. Drake, Diane V. Singer, Ramon Bossardi Ramos, Harold A. Singer, Ariel Jaitovich
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Research Article Pulmonology

Rapamycin improves satellite cells’ autophagy and muscle regeneration during hypercapnia

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Abstract

Both CO2 retention, or hypercapnia, and skeletal muscle dysfunction predict higher mortality in critically ill patients. Mechanistically, muscle injury and reduced myogenesis contribute to critical illness myopathy, and while hypercapnia causes muscle wasting, no research has been conducted on hypercapnia-driven dysfunctional myogenesis in vivo. Autophagy flux regulates myogenesis by supporting skeletal muscle stem cell — satellite cell — activation, and previous data suggest that hypercapnia inhibits autophagy. We tested whether hypercapnia worsens satellite cell autophagy flux and myogenic potential and if autophagy induction reverses these deficits. Satellite cell transplantation and lineage-tracing experiments showed that hypercapnia undermined satellite cells’ activation, replication, and myogenic capacity. Bulk and single-cell sequencing analyses indicated that hypercapnia disrupts autophagy, senescence, and other satellite cell programs. Autophagy activation was reduced in hypercapnic cultured myoblasts, and autophagy genetic knockdown phenocopied these changes in vitro. Rapamycin stimulation led to AMPK activation and downregulation of the mTOR pathway, which are both associated with accelerated autophagy flux and cell replication. Moreover, hypercapnic mice receiving rapamycin showed improved satellite cell autophagy flux, activation, replication rate, and posttransplantation myogenic capacity. In conclusion, we have shown that hypercapnia interferes with satellite cell activation, autophagy flux, and myogenesis, and systemic rapamycin administration improves these outcomes.

Authors

Joseph Balnis, Emily L. Jackson, Lisa A. Drake, Diane V. Singer, Ramon Bossardi Ramos, Harold A. Singer, Ariel Jaitovich

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Figure 7

Hypercapnia downregulates satellite cells’ autophagy in vivo.

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Hypercapnia downregulates satellite cells’ autophagy in vivo.
(A) Diagra...
(A) Diagram indicating the experimental design. (B) Freshly isolated α7-integrin–positive satellite cells obtained from LC3-GFP reporter HC mice show a significant reduction in puncta accumulation after bafilomycin treatment in reference to NC counterparts (n = 3). (C) Column-isolated α7-integrin–positive satellite cells from C57 HC mice regain higher proliferation capacity if treated with rapamycin as measured by EdU assay in comparison with HC counterparts not treated with that drug (n = 3). (D) Immunoblots of column-isolated α7-integrin–positive satellite cells from room air–breathing mice cultured for 4 days in NC and HC show that hypercapnia upregulates p-AMPK but causes a reduction of total AMPK and ULK1, without either translational or posttranslational effect on mTOR. Actin was used as a lane loading control; each lane corresponds to an individual mouse (n = 3). (E) Densitometric quantitation of Western blots in D. (F) Rapamycin administration causes a robust dephosphorylation of mTOR and ribosomal protein S6, which is associated with a further amplification of HC-induced upregulation of p-AMPK. (G) Densitometric quantitation of Western blots in F. Actin was used as a lane loading control; each lane corresponds to an individual mouse (n = 3). Statistical comparisons were performed using Student’s t test in B and C. Densitometric statistical comparisons in E and G were performed using a 1-sample t test (E) and 2-way ANOVA (G); *P < 0.05, **P < 0.01, and ***P < 0.001. Graphics from A were constructed with clipart supplied by BioRender.com.

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