In this study, we used single-cell RNA sequencing to delineate the contributions of muscle-resident Schwann cells to neuromuscular junction (NMJ) remodeling by comparing a model of stable innervation with models of reinnervation following partial or complete denervation. We discovered multiple distinct Schwann cell subtypes, including a terminal Schwann cell subtype integral to the denervation-reinnervation cycle, identified by a transcriptomic signature indicative of cell migration and polarization. The data also characterize 3 myelin Schwann cell subtypes, which are distinguished based on enrichment of genes associated with myelin production, mesenchymal differentiation, or collagen synthesis. Importantly, SPP1 signaling emerged as a pivotal regulator of NMJ dynamics, promoting Schwann cell proliferation and muscle reinnervation across nerve injury models. These findings advance our understanding of NMJ maintenance and regeneration and underscore the therapeutic potential of targeting specific molecular pathways to treat neuromuscular and neurodegenerative disorders.
Pulmonary disorders impact 40-80% of individuals with obesity. Respiratory muscle dysfunction is linked to these conditions; however, its pathophysiology remains largely undefined. Mice subjected to diet-induced obesity (DIO) develop diaphragmatic weakness. Increased intra-diaphragmatic adiposity and extracellular matrix (ECM) content correlate with reductions in contractile force. Thrombospondin-1 (THBS1) is an obesity-associated matricellular protein linked with muscular damage in genetic myopathies. THBS1 induces proliferation of fibro-adipogenic progenitors (FAPs)-mesenchymal cells that differentiate into adipocytes and fibroblasts. We hypothesized that THBS1 drives FAP-mediated diaphragm remodeling and contractile dysfunction in DIO. We tested this by comparing effects of dietary challenge on diaphragms of wild-type (WT) and Thbs1 knockout ( Thbs1 -/- ) mice. Bulk and single-cell transcriptomics demonstrated DIO-induced stromal expansion in WT diaphragms. Diaphragm FAPs displayed upregulation of ECM and TGFβ-related expression signatures, and augmentation of a Thy1 -expressing sub-population previously linked to type 2 diabetes. Despite similar weight gain, Thbs1 -/- mice were protected from these transcriptomic changes, and from obesity-induced increases in diaphragm adiposity and ECM deposition. Unlike WT controls, Thbs1 -/- diaphragms maintained normal contractile force and motion after DIO challenge. These findings establish THBS1 as a necessary mediator of diaphragm stromal remodeling and contractile dysfunction in overnutrition, and potential therapeutic target in obesity-associated respiratory dysfunction.
The maintenance of neuromuscular junctions (NMJs) is crucial for combating degenerative neuromuscular diseases. Maintenance of the NMJ involves turnover and regeneration with these processes dependant on the activation of Schwann cells by specific molecular cues within the muscular environment. Secreted phosphoprotein-1 (SPP1), known as osteopontin, is a chemokine that is rapidly upregulated following nerve injury. Its precise influence on Schwann cell-mediated nerve regeneration, however, remains to be elucidated. Our recent single-cell RNA sequencing data has uncovered a previously unrecognized interaction between myelinating Schwann cells and terminal Schwann cells (tSCs), mediated by SPP1 signaling. We propose that this interaction, orchestrated by SPP1, is crucial for tSC proliferation and ultimately, successful reinnervation of muscle fibers post-injury. To investigate the effect of nerve injury on SPP1 signaling gene expression within skeletal muscle, we conducted sciatic nerve crush experiments in two-month-old C57BL/6 mice. We compared gene expression profiles associated with denervation and SPP1 signaling in the gastrocnemius muscles of uninjured controls to those at 7, 14, and 28 days post-injury (DPI). We found significant transient increases in Spp1 and its receptor genes Cd44 and Itgav, peaking at 7 DPI and returning to baseline by 14 DPI. To further elucidate the role of SPP1 in muscle reinnervation and its impact on tSC responses following nerve injury, we conducted peroneal nerve injuries in S100-GFP transgenic mice and administered either an SPP1 neutralizing antibody (Spp1-nAb) or a saline solution intramuscularly. Direct muscle stimulation force testing revealed comparable evoked forces between both groups, however nerve-evoked muscle forces were significantly diminished by 43% in the Spp1-nAb-treated mice. The Spp1-nAb treated mice also demonstrated a 38% reduction in nerve-to-muscle force ratios compared to the saline group. Histological assessments post-injury showed that mice given Spp1-nAb at 7 DPI had markedly reduced nerve terminal and synaptic areas compared to saline-treated controls. Similarly, a greater percentage of muscle fibers remained denervated with Spp1-nAb treatment (67% vs 33% in saline), accompanied by a reduction in NMJ synaptic area. An analysis of tSCs further indicated a decreased count per NMJ and a reduction in overall tSC area upon SPP1 signaling inhibition. Our comprehensive analysis establishes the essential function of Spp1 in muscle reinnervation, as evidenced by its role in enhancing tSC numbers at the NMJ. These findings provide significant contributions to our understanding of the molecular mechanisms essential for NMJ repair and maintenance, with a particular focus on the role of tSCs in this process. This work was supported by the National institutes of Health (NIH) under the awards R01(AG050676) (SVB), P01 (AG051442) (SVB), P30 (AR069620)(SVB), T32 (AG000114)(SDG), and the American Physiological Society Porter Fellowship (SDG). This is the full abstract presented at the American Physiology Summit 2024 meeting and is only available in HTML format. There are no additional versions or additional content available for this abstract. Physiology was not involved in the peer review process.
Skeletal muscle activation using optogenetics has emerged as a promising technique for inducing noninvasive muscle contraction and assessing muscle function both in vivo and in vitro. Transgenic mice overexpressing the optogenetic fusion protein, Channelrhodopsin 2-EYFP (ChR2-EYFP) in skeletal muscle are widely used; however, overexpression of fluorescent proteins can negatively impact the functionality of activable tissues. In this study, we characterized the contractile properties of ChR2-EYFP skeletal muscle and introduced the ChR2-only mouse model that expresses light-responsive ChR2 without the fluorescent EYFP in their skeletal muscles. We found a significant reduction in the contractile ability of ChR2-EYFP muscles compared with ChR2-only and WT mice, observed under both electrical and optogenetic stimulation paradigms. Bulk RNAseq identified the downregulation of genes associated with transmembrane transport and metabolism in ChR2-EYFP muscle, while the ChR2-only muscle did not demonstrate any notable deviations from WT muscle. The RNAseq results were further corroborated by a reduced protein-level expression of ion channel-related HCN2 in ChR2-EYFP muscles and gluconeogenesis-modulating FBP2 in both ChR2-EYFP and ChR2-only muscles. Overall, this study reveals an intrinsic skeletal dysfunction in the widely used ChR2-EYFP mice model and underscores the importance of considering alternative optogenetic models, such as the ChR2-only, for future research in skeletal muscle optogenetics.
The acute traumatic or surgical loss of skeletal muscle, known as volumetric muscle loss (VML), is a devastating type of injury that results in exacerbated and persistent inflammation followed by fibrosis. The mechanisms that mediate the magnitude and duration of the inflammatory response and ensuing fibrosis after VML remain understudied, and as such, the development of regenerative therapies has been limited. To address this need, we profiled how lipid mediators, which are potent regulators of the immune response after injury, varied with VML injuries that heal or result in fibrosis. We observed that non-healing VML injuries displayed increased pro-inflammatory eicosanoids and a lack of pro-resolving lipid mediators. Treatment of VML with a pro-resolving lipid mediator synthesized from docosahexaenoic acid, called Maresin 1, ameliorated fibrosis through reduction of neutrophils and macrophages and enhanced recovery of muscle strength. These results expand our knowledge of the dysregulated immune response that develops after VML and identify a novel immuno-regenerative therapeutic modality in Maresin 1.
Abstract Disclosure: E.D. Buras: None. R. Kaul Verma: None. M. Woo: None. S.H. Kondisetti: None. C. Davis: None. D. Claflin: None. K. Converso-Baran: None. D. Michele: None. S. Brooks: None. T. Chun: None. Between 40% and 80% of obese individuals are affected by respiratory disorders. These range in severity from dyspnea on exertion, which reduces exercise tolerance, to obesity hypoventilation syndrome (OHS), which doubles 5-year mortality rate. Respiratory muscle dysfunction is a common underlying factor in these conditions and is epidemiologically linked with the metabolic syndrome and diabetes. Despite its clinical relevance, the pathophysiology of obesity-related respiratory muscle weakness is not well defined. Our previous work explored the hypothesis that anatomic remodeling and contractile dysfunction of the diaphragm are interrelated obesity complications. In mice subjected to a long-term high fat diet (HFD) time course, we observed a progressive decline in diaphragm motion (measured on ultrasound), and an endpoint reduction in isometric force generation (measured ex vivo on muscle strips). These findings demonstrated that diet-induced obesity (DIO) causes functional impairment intrinsic to the diaphragm. Intra-diaphragmatic adipocyte number and polymerized collagen content both increased with duration of HFD feeding, and quantitatively correlated with isometric force deficits. All adipocytes and many collagen-depositing cells arose from fibro-adipogenic progenitors (FAPs), an intramuscular mesenchymal stem cell population. Moreover, diaphragmatic FAPs from HFD-fed mice assumed a proliferative phenotype with increased collagen production. Thrombospondin-1 (THBS-1) is a circulating matricellular protein that increases with obesity, functions as a mesenchymal cell mitogen and has been linked to muscle injury in inflammatory myopathies. We hypothesized that THBS-1 drives FAP-mediated diaphragm remodeling and contractile dysfunction in obesity. To test this, we treated isolated mouse diaphragm FAPs with THBS-1 at concentrations seen in obese human subjects. This maneuver caused increased FAP proliferation and extracellular matrix (ECM) deposition. We next compared the effects of a 6-month DIO time course on diaphragm FAP content, tissue-level gene expression, anatomy, and physiology in wild-type (WT) and Thbs1 knockout (Thbs1-/-) mice. In WT mice, DIO caused increased FAP number (flow cytometry) and shifts toward pro-fibrotic sub-types (single cell RNA-seq). These changes did not occur in Thbs1-/- mice despite similar weight gain. Thbs1-/- diaphragms also had fewer adipocytes and reduced gene/ protein levels of ECM species. Finally, diaphragm contractile force and motion parameters (excursion amplitude, inspiratory velocity, and expiratory velocity) declined with duration of obesity in WT mice, but, remained unchanged in Thbs1-/- animals. These data define THBS-1 as a novel regulator of diaphragm stromal remodeling and potential therapeutic target for mitigating obesity-associated respiratory dysfunction. Presentation: Friday, June 16, 2023
Whole-body knock-out of Cu,Zn superoxide dismutase (Sod1KO) results in accelerated, age-related loss of muscle mass and function associated with neuromuscular junction (NMJ) breakdown similar to sarcopenia. In order to determine whether altered redox in motor neurons underlies this phenotype, an inducible neuron-specific deletion of Sod1 (i-mnSod1KO) was compared with wild-type (WT) mice of different ages (adult, mid-age, and old) and whole-body Sod1KO mice. Nerve oxidative damage, motor neuron numbers and structural changes to neurons and NMJ were examined. Tamoxifen-induced deletion of neuronal Sod1 from two months of age. No specific effect of a lack of neuronal Sod1 was seen on markers of nerve oxidation (electron paramagnetic resonance of an in vivo spin probe, protein carbonyl, or protein 3-nitrotyrosine contents). i-mnSod1KO mice showed increased denervated NMJ, reduced numbers of large axons and increased number of small axons compared with old WT mice. A large proportion of the innervated NMJs in old i-mnSod1KO mice displayed a simpler structure than that seen in adult or old WT mice. Thus, previous work showed that neuronal deletion of Sod1 induced exaggerated loss of muscle in old mice, and we report that this deletion leads to a specific nerve phenotype including reduced axonal area, increased proportion of denervated NMJ, and reduced acetyl choline receptor complexity. Other changes in nerve and NMJ structure seen in the old i-mnSod1KO mice reflect aging of the mice.
Progressive muscle atrophy and loss of muscle strength associated with old age have been well documented. Although impairments in the ability of old mice to regenerate skeletal muscle following injury have been demonstrated, less is known about the way age modulates the regenerative response of motor neurons and the neuromuscular junctions (NMJ) of mice following contraction‐induced injury. The inability for NMJs to effectively regenerate following an injury could lead to the death of the denervated muscle fibers and therefore play a contributing role to age‐related sarcopenia. To investigate the relationship between age and NMJ regeneration following injury, extensor digitorum longus (EDL) muscles of adult (8‐9 months), middle‐aged (18‐19 months), and old mice (27‐28 months) were subjected to a protocol of repeated lengthening‐contractions that resulted in an acute force deficit of ~70%. After 28 days, muscles were evaluated for maximum force generating capacity, muscle mass, NMJ innervation, and endplate fragmentation. Cross sections of muscles taken at three days post injury showed extensive infiltration of mononuclear cells and widespread tissue disruption consistent with the induction of severe injury to the muscles. At 28 days, maximum isometric force recovered completely in adult mice, but was significantly reduced in middle aged and old mice when compared to muscles of adult mice. In each case, approximately 29% of fibers in the cross sections displayed containing central nuclei, whereas controls showed only 2.9%, indicating that the injured muscle fibers had undergone degeneration and regeneration. Analysis of the innervation of the NMJs in the regenerated muscles showed a moderate decrease in the number of fully innervated endplates in old mice as compared to adult and middle‐aged mice. When the architecture of the endplates in regenerated muscles was examined, the relative number of NMJs with intact postsynaptic structure varied little between the age groups, although control muscles of old mice showed an increase in the number of fragmented endplates compared with the adult and middle aged mice. Thus, the diminished ability of the skeletal muscle of old mice to recover following injury may be, in part, due to an age‐related decrease in the ability to adequately regenerate motor neurons and perhaps form NMJs in the injured muscle.
The neuromuscular junction (NMJ) is an excitatory synapse that constitutes the primary site of communication between the nervous system and skeletal muscle and therefore any degenerative changes at the NMJ have the potential to impair muscle function. The primary cellular components of the NMJ are the motor neuron, the muscle fiber and terminal Schwann cells (tSC) that surround the NMJ. The importance of redox homeostasis for the maintenance of NMJ integrity is supported by work from our group showing degenerative changes at NMJs in mice lacking copper zinc superoxide dismutase (CuZnSOD; Sod1 -/- ) as early as 4 months of age. Prior work from others suggests that tSCs contribute trophic support for the NMJ and facilitate motor unit remodeling, but changes in tSC structure and function under conditions of elevated oxidative stress have not been thoroughly explored. Using in vitro assays, we previously showed that primary Schwann cells treated with a sublethal dose of the reactive oxygen species inducing agent Paraquat (PQ) resulted in increased Schwann cell number, ki67+ staining, and gene expression of trophic factors and the critical NMJ organizing protein Agrin. Furthermore, differentiated C2C12 myotubes treated with conditioned media from PQ treated Schwann cell cultures showed increased number of acetylcholine receptor (AChR) plaques. The goal of the current study was to characterize NMJs in young Sod1 -/- mice (2-months) to determine the early effects of elevated oxidative stress on NMJ structure in vivo with a specific focus on tSCs. We hypothesized that loss of Sod1 would lead to aberrant tSC and NMJ structure associated with decreased muscle function. We assessed maximum isometric force, NMJ morphology, and number of Schwann cells in gastrocnemius muscles of WT (n = 3) and Sod1 -/- (n = 3) mice. In Sod1 -/- mice, muscle force was reduced by 26% ( p = 2e-4) with nerve stimulation compared to direct muscle stimulation, and overlap between motor nerve terminals and AChRs was reduced by nearly 60% compared to WT controls. Post-synaptic AChR area was increased by 37% in Sod1 -/- mice, and tSC area and numbers per NMJ were increased by 60% and 155%, respectively in Sod1 -/- mice. Finally, Schwann cells proximal to NMJs showed increased Ki67+ labeling in Sod1 -/- mice compared to WT mice. This analysis demonstrates that early changes in both pre- and post-synaptic NMJ components and reduced neurotransmission due to loss of Sod1 are associated with marked increases in tSC proliferation. Our data implicate a protective role of muscle-resident Schwann cells in preserving NMJ integrity in response to alterations in redox homeostasis that may be mediated in part through activation and proliferation of these cells. These findings indicate that further investigation of the dynamics between Schwann cells and NMJ function is important to increase understanding of neuromuscular degenerativeconditions that involve altered redox homeostasis such as sarcopenia. Supported by the University of Michigan Medical School Office of Research, the American Physiological Society, and NIH AR069620. This is the full abstract presented at the American Physiology Summit 2023 meeting and is only available in HTML format. There are no additional versions or additional content available for this abstract. Physiology was not involved in the peer review process.
Abstract Disclosure: R. Kaul Verma: None. D. Claflin: None. C. Davis: None. K. Converso-Baran: None. D. Michele: None. S. Brooks: None. E.D. Buras: None. Respiratory muscle dysfunction contributes to obesity-associated ventilatory disorders and is epidemiologically linked with diabetes and the metabolic syndrome. Despite its clinical relevance, the pathophysiology of obesity-related respiratory muscle weakness remains unclear. We previously applied non-invasive ultrasound to show that mice subjected to a 6-month diet-induced obesity (DIO) protocol develop diaphragm motion abnormalities. Isometric contractile force—measured ex vivo on isolated diaphragm strips—also declines with 6-month high fat diet (HFD) feeding, demonstrating that overnutrition causes functional impairment intrinsic to the diaphragm muscle. Intra-diaphragmatic adipocyte number and polymerized collagen content both increase with long-term DIO; however, their occupation of muscle cross sectional area (CSA) is insufficient to quantitatively account for force generation deficits. While disruption of tissue architecture secondary to intramuscular adiposity and fibrosis might underlie diaphragm contractile dysfunction, it is also possible that obesity impairs force production in individual myofibers. The functional integrity of the contractile apparatus (ie the sarcomere) can be interrogated in single myofibers. In this approach, muscle samples are subjected to membrane permeabilization, then individual myofibers are mechanically dissected out and affixed to a force transducer apparatus in which isometric contraction is stimulated via calcium administration. An attached camera allows for measurement of fiber CSA, such that specific force (measured force per unit CSA) can be calculated. We measured isometric specific force on both diaphragm strips and permeabilized single myofiber segments isolated from mice fed control diet (CD) or HFD feeding for periods of 6 weeks or 6 months. At the 6-week time point, muscle strip specific force was indistinguishable between groups; however, at 6 months, this parameter was significantly lower in samples from HFD-fed mice—consistent with our previous findings. In contrast, specific force measurements taken from individual myofibers were equivalent between CD and HFD-fed mice at both 6-week and 6-month time points. These data demonstrate that long-term DIO is required to reduce diaphragm contractile force; and that this decline occurs at the level of the tissue rather than the single myofiber contractile apparatus. Presentation: Friday, June 16, 2023
Aging results in the progressive accumulation of senescent cells in tissues that display loss of proliferative capacity and acquire a senescence-associated secretory phenotype (SASP). The tumor suppressor, p16 INK4A , which slows the progression of the cell cycle, is highly expressed in most senescent cells and the removal of p16-expressing cells has been shown to be beneficial to tissue health. Although much work has been done to assess the effects of cellular senescence on a variety of different organs, little is known about the effects on skeletal muscle and whether reducing cellular senescent load would provide a therapeutic benefit against age-related muscle functional decline. We hypothesized that whole-body ablation of p16-expressing cells in the advanced stages of life in mice would provide a therapeutic benefit to skeletal muscle structure and function. Treatment of transgenic p16-3MR mice with ganciclovir (GCV) from 20 to 26 months of age resulted in reduced p16 mRNA levels in muscle. At 26 months of age, the masses of tibialis anterior, extensor digitorum longus, gastrocnemius and quadriceps muscles were significantly larger in GCV-treated compared with vehicle-treated mice, but this effect was limited to male mice. Maximum isometric force for gastrocnemius muscles was also greater in GCV-treated male mice compared to controls. Further examination of muscles of GCV- and vehicle-treated mice showed fewer CD68-positive macrophages present in the tissue following GCV treatment. Plasma cytokine levels were also measured with only one, granulocyte colony stimulating factor (G-CSF), out of 22 chemokines analyzed was reduced in GCV-treated mice. These findings show that genetic ablation of p16+ senescent cells provides moderate and sex specific therapeutic benefits to muscle mass and function.
Volumetric muscle loss (VML) overwhelms the innate regenerative capacity of mammalian skeletal muscle (SkM), leading to numerous disabilities and reduced quality of life. Immune cells are critical responders to muscle injury and guide tissue resident stem cell– and progenitor-mediated myogenic repair. However, how immune cell infiltration and intercellular communication networks with muscle stem cells are altered following VML and drive pathological outcomes remains underexplored. Herein, we contrast the cellular and molecular mechanisms of VML injuries that result in the fibrotic degeneration or regeneration of SkM. Following degenerative VML injuries, we observed the heightened infiltration of natural killer (NK) cells as well as the persistence of neutrophils beyond 2 wk postinjury. Functional validation of NK cells revealed an antagonistic role in neutrophil accumulation in part via inducing apoptosis and CCR1-mediated chemotaxis. The persistent infiltration of neutrophils in degenerative VML injuries was found to contribute to impairments in muscle stem cell regenerative function, which was also attenuated by transforming growth factor beta 1 (TGFβ1). Blocking TGFβ signaling reduced neutrophil accumulation and fibrosis and improved muscle-specific force. Collectively, these results enhance our understanding of immune cell–stem cell cross talk that drives regenerative dysfunction and provide further insight into possible avenues for fibrotic therapy exploration.
By promoting anabolism, MTORC1 is critical for muscle growth and maintenance. However, genetic MTORC1 upregulation promotes muscle aging and produces age-associated myopathy. Whether MTORC1 activation is sufficient to produce myopathy or indirectly promotes it by accelerating tissue aging is elusive. Here we examined the effects of muscular MTORC1 hyperactivation, produced by simultaneous depletion of TSC1 and DEPDC5 (CKM-TD). CKM-TD mice produced myopathy, associated with loss of skeletal muscle mass and force, as well as cardiac failure and bradypnea. These pathologies were manifested at eight weeks of age, leading to a highly penetrant fatality at around twelve weeks of age. Transcriptome analysis indicated that genes mediating proteasomal and macroautophagic/autophagic pathways were highly upregulated in CKM-TD skeletal muscle, in addition to inflammation, oxidative stress, and DNA damage signaling pathways. In CKM-TD muscle, autophagosome levels were increased, and the AMPK and ULK1 pathways were activated; in addition, autophagy induction was not completely blocked in CKM-TD myotubes. Despite the upregulation of autolysosomal markers, CKM-TD myofibers exhibited accumulation of autophagy substrates, such as SQSTM1/p62 and ubiquitinated proteins, suggesting that the autophagic activities were insufficient. Administration of a superoxide scavenger, tempol, normalized most of these molecular pathologies and subsequently restored muscle histology and force generation. However, CKM-TD autophagy alterations were not normalized by rapamycin or tempol, suggesting that they may involve non-canonical targets other than MTORC1. These results collectively indicate that the concomitant muscle deficiency of TSC1 and DEPDC5 can produce early-onset myopathy through accumulation of oxidative stress, which dysregulates myocellular homeostasis.Abbreviations: AMPK: AMP-activated protein kinase; CKM: creatine kinase, M-type; COX: cytochrome oxidase; DEPDC5: DEP domain containing 5, GATOR1 subcomplex subunit; DHE: dihydroethidium; EDL: extensor digitorum longus; EIF4EBP1: eukaryotic translation initiation factor 4E binding protein 1; GAP: GTPase-activating protein; GTN: gastrocnemius; MTORC1: mechanistic target of rapamycin kinase complex 1; PLA: plantaris; QUAD: quadriceps; RPS6KB/S6K: ribosomal protein S6 kinase beta; SDH: succinate dehydrogenase; SOL: soleus; SQSTM1: sequestosome 1; TA: tibialis anterior; TSC1: TSC complex subunit 1; ULK1: unc-51 like autophagy activating kinase 1.
Whole body knock out of Cu, Zn superoxide dismutase1 (Sod1KO) results in accelerated, age-related loss of muscle mass and function associated with a breakdown of neuromuscular junctions (NMJ) similar to sarcopenia. In order to determine whether altered redox in motor neurons is integral to this phenotype, an inducible neuron specific deletion of Sod1 (i-mnSod1KO) was compared with wild type (WT) mice of different ages (adult, mid-age and old) and whole body Sod1KO mice. Nerve oxidative damage, motor neuron numbers and structural changes to neurons and NMJ were examined. Deletion of neuronal Sod1 (induced by tamoxifen injection at 6 months of age) caused the exaggerated, age-associated loss of muscle mass and force generation previously reported. No effect of age or lack of neuronal Sod1 was seen on oxidation in the sciatic nerve assessed by electron paramagnetic resonance of the in vivo spin probe 1-hydroxy-3-carboxy-2,2,5,5 tetramethylpyrrolidine (CPH), analysis of protein 3-nitrotyrosines or carbonyl content. i-mnSod1KO mice showed increased numbers of denervated NMJs, a reduced number of large axons and increased number of small axons compared with age-matched old WT mice. A large proportion of the remaining innervated NMJs in i-mnSod1KO mice also displayed a much simpler structure than that seen in WT mice. Thus, while Sod1KO mice recapitulate substantially the neuromuscular phenotypes of old WT mice, deletion of Sod1 specifically in neurons induces exaggerated loss of muscle mass and force only in old (24-29 month) mice indicating that significant muscle declines require the accumulation of age-related changes such that a threshold is reached past which maintenance of structure and function is not possible. Significance statement Sarcopenia is the age-related loss of muscle mass and function. It is a significant contributor to frailty and to increased falls in the elderly. While multifactorial, changes in redox status have been shown to have significant influence over neuromuscular aging, recent work suggests that changes in motor neurons may be the driving factor in muscle atrophy. The current study confirmed that a specific lack of Sod1 in the motor neuron causes significant alteration in axonal architecture and the neuromuscular junctions which can drive reduced muscle mass and function. Pinpointing early changes in motor neurons may provide therapeutic targets critical for maintaining muscle in the elderly.
Specialized pro-resolving mediators actively limit inflammation and support tissue regeneration, but their role in age-related muscle dysfunction has not been explored. We profiled the mediator lipidome of aging muscle via liquid chromatography-tandem mass spectrometry and tested whether treatment with the pro-resolving mediator resolvin D1 (RvD1) could rejuvenate the regenerative ability of aged muscle. Aged mice displayed chronic muscle inflammation and this was associated with a basal deficiency of pro-resolving mediators 8-oxo-RvD1, resolvin E3, and maresin 1, as well as many anti-inflammatory cytochrome P450-derived lipid epoxides. Following muscle injury, young and aged mice produced similar amounts of most pro-inflammatory eicosanoid metabolites of cyclooxygenase (e.g., prostaglandin E 2 ) and 12-lipoxygenase (e.g., 12-hydroxy-eicosatetraenoic acid), but aged mice produced fewer markers of pro-resolving mediators including the lipoxins (15-hydroxy-eicosatetraenoic acid), D-resolvins/protectins (17-hydroxy-docosahexaenoic acid), E-resolvins (18-hydroxy-eicosapentaenoic acid), and maresins (14-hydroxy-docosahexaenoic acid). Similar absences of downstream pro-resolving mediators including lipoxin A 4 , resolvin D6, protectin D1/DX, and maresin 1 in aged muscle were associated with greater inflammation, impaired myofiber regeneration, and delayed recovery of strength. Daily intraperitoneal injection of RvD1 had minimal impact on intramuscular leukocyte infiltration and myofiber regeneration but suppressed inflammatory cytokine expression, limited fibrosis, and improved recovery of muscle function. We conclude that aging results in deficient local biosynthesis of specialized pro-resolving mediators in muscle and that immunoresolvents may be attractive novel therapeutics for the treatment of muscular injuries and associated pain in the elderly, due to positive effects on recovery of muscle function without the negative side effects on tissue regeneration of non-steroidal anti-inflammatory drugs.
Skeletal muscle suffers atrophy and weakness with aging. Denervation, oxidative stress, and mitochondrial dysfunction are all proposed as contributors to age-associated muscle loss, but connections between these factors have not been established. We examined contractility, mitochondrial function, and intracellular calcium transients (ICTs) in muscles of mice throughout the life span to define their sequential relationships. We performed these same measures and analyzed neuromuscular junction (NMJ) morphology in mice with postnatal deletion of neuronal Sod1 (i-mn-Sod1-/- mice), previously shown to display accelerated age-associated muscle loss and exacerbation of denervation in old age, to test relationships between neuronal redox homeostasis, NMJ degeneration and mitochondrial function. In control mice, the amount and rate of the decrease in mitochondrial NADH during contraction was greater in middle than young age although force was not reduced, suggesting decreased efficiency of NADH utilization prior to the onset of weakness. Declines in both the peak of the ICT and force were observed in old age. Muscles of i-mn-Sod1-/- mice showed degeneration of mitochondrial and calcium handling functions in middle-age and a decline in force generation to a level not different from the old control mice, with maintenance of NMJ morphology. Together, the findings support the conclusion that muscle mitochondrial function decreases during aging and in response to altered neuronal redox status prior to NMJ deterioration or loss of mass and force suggesting mitochondrial defects contribute to sarcopenia independent of denervation.
Specialized proresolving mediators (SPMs) actively limit inflammation and expedite its resolution by modulating leukocyte recruitment and function. Here we profiled intramuscular lipid mediators via liquid chromatography-tandem mass spectrometry–based metabolipidomics following myofiber injury and investigated the potential role of SPMs in skeletal muscle inflammation and repair. Both proinflammatory eicosanoids and SPMs increased following myofiber damage induced by either intramuscular injection of barium chloride or synergist ablation–induced functional muscle overload. Daily systemic administration of the SPM resolvin D1 (RvD1) as an immunoresolvent limited the degree and duration of inflammation, enhanced regenerating myofiber growth, and improved recovery of muscle strength. RvD1 suppressed inflammatory cytokine expression, enhanced polymorphonuclear cell clearance, modulated the local muscle stem cell response, and polarized intramuscular macrophages to a more proregenerative subset. RvD1 had minimal direct impact on in vitro myogenesis but directly suppressed myokine production and stimulated macrophage phagocytosis, showing that SPMs can modulate both infiltrating myeloid and resident muscle cell populations. These data reveal the efficacy of immunoresolvents as a novel alternative to classical antiinflammatory interventions in the management of muscle injuries to modulate inflammation while stimulating tissue repair.
Glucocorticoids promote muscle atrophy by inducing a class of proteins called atrogenes, resulting in reductions in muscle size and strength. In this work, we evaluated whether a mouse model with pre-existing diet-induced obesity had altered glucocorticoid responsiveness. We observed that all animals treated with the synthetic glucocorticoid dexamethasone had reduced strength, but that obesity exacerbated this effect. These changes were concordant with more pronounced reductions in muscle size, particularly in Type II muscle fibers, and potentiated induction of atrogene expression in the obese mice relative to lean mice. Furthermore, we show that the reductions in lean mass do not fully account for the dexamethasone-induced insulin resistance observed in these mice. Together, these data suggest that obesity potentiates glucocorticoid-induced muscle atrophy.