Aging is associated with alterations in endogenous tryptophan (TRP) metabolism that contributes to musculoskeletal decline. In this study, we investigated the effects of the microbiota-derived TRP metabolite, indole-3-propionic acid (IPA), on musculoskeletal health in aged mice and lifespan in Drosophila melanogaster. Aged C57BL/6 mice received IPA (20 mg/kg, subcutaneous, three times per week for 12 weeks), while Drosophila were maintained on food supplemented with IPA (100 µM) throughout their lifespan. Our findings revealed that IPA-treated aged mice exhibited enhanced muscle function (grip strength and hang time). Histological and bone microCT analyses revealed no changes in muscle fiber size but enhanced bone microarchitecture. Furthermore, molecular studies have elucidated that IPA treatment prevents oxidative stress and reduces senescence, indicating improved cellular survival. Our Drosophila melanogaster longevity analysis revealed a significant extension of lifespan, but lifespan effects were genotype- and sex-specific. Collectively, our findings identify IPA as a promising microbiota-derived metabolite that improves musculoskeletal health and promotes longevity, highlighting its potential as a therapeutic intervention for age-related decline in function.
The aryl hydrocarbon receptor (AhR) is activated by kynurenine (Kyn), a tryptophan metabolite that accumulates with age, and this process drives osteoblast dysfunction. However, Kyn can be further metabolized, and the extent to which downstream metabolite molecules activate AhR in mesenchymal lineage cells and impact bone formation activity was unclear from previous studies. We hypothesized that Kyn metabolites activate AhR signaling and impair bone formation to drive bone loss. In the current study, tryptophan, Kyn, and 3-hydroxy-kynurenine (3HK) dose-dependently activated AhR in mesenchymal stem cell models, with 3HK being the most potent activator. Treating mesenchymal stem cells with 3HK and 3-hydroxyanthranilic acid (3HAA) dose-dependently induced DNA damage that at lower concentrations induced senescence and at higher concentrations promoted apoptotic cell death. This cell death was rescued upon scavenging reactive oxygen species with N-acetylcysteine, suggesting a mechanism of apoptosis related to increased oxidative stress. With regards to bone formation activity, the differentiation of primary bone marrow stromal cells into matrix-producing osteoblasts was blunted upon the introduction of Kyn, 3HK or 3HAA into osteogenic differentiation media, with 3HK and 3HAA inducing the greatest deficits in mineralized matrix production. In vivo administration of 3HAA to C57BL/6 mice was detrimental to whole-body bone mineral density and cortical bone mass, although trabecular bone was largely unaffected. Together, our results suggest that several intermediate metabolites in the tryptophan-Kyn pathway activate AhR and impede the differentiation of osteoblasts by inducing DNA damage, senescence and oxidative stress, which may have negative consequences for cortical bone in vivo.
Vascularization of the central nervous system and the postnatal retina proceeds through angiogenic growth that relies in part on the basement membrane (BM) to support endothelial cell-cell interactions and maintain barrier integrity during vessel formation. In addition to the core structural components of the BM, matricellular proteins are present as minor constituents, however, their contributions to endothelial cohesion and barrier stability during angiogenesis remain poorly defined. Here, we identify the matricellular protein Fibulin-1 (Fbln1), a regulator of cell-matrix interactions, as an essential factor during mid-gestation that prevents the formation of dilated, tortuous capillaries that give rise to glomeruloid vascular lesions and intracerebral hemorrhage. Fbln1-deficient brains exhibit vascular malformations characterized by reduced Type IV collagen deposition and diminished CD31 localization at endothelial junctions. Although overall pericyte coverage across the vasculature is maintained, the glomeruloid lesions lack pericyte investment.In the developing retina, loss of Fbln1 similarly results in hemorrhage and tortuous capillaries with glomeruloid vascular abnormalities that disrupt the formation of both the superficial and deep vascular plexuses. Together, these findings demonstrate that Fbln1 is a critical determinant of brain and retinal vascular development and is required to preserve endothelial barrier integrity during angiogenesis.
The aryl hydrocarbon receptor (AhR) is proposed to mediate the frailty-promoting effects of the tryptophan metabolite kynurenine, which increases with age in mice and humans. The goal of the current study was to test whether administration of pharmacological AhR inhibitors, BAY2416964 and CH-223191, could abrogate musculoskeletal decline in aging mice. Female C57BL/6 mice (18 months old) were treated with vehicle (VEH) or 30 mg/kg BAY2416964 (BAY) via daily oral gavage 5 days/week for 8 weeks. A second AhR antagonist, CH-223191, was administered to 16-month-old male and female C57BL/6 mice via intraperitoneal injections (3.3 mg/kg) 3 days/week for 12 weeks. While grip strength declined over time in VEH-treated mice, BAY preserved grip strength in part by improving integrity of neuromuscular junctions (NMJs), an effect replicated during in vitro studies with siRNA against AhR. Cortical bone mass was also greater in BAY- than VEH-treated mice. Similarly, CH-223191 treatment improved cortical bone and showed beneficial effects in skeletal muscle, including reducing oxidative stress as compared with VEH-treated animals. Transcriptomic and proteomic data from BAY-treated mice supported a positive impact of BAY on molecular targets that affect NMJ function. Taken together, these data support AhR as a therapeutic target for improving musculoskeletal health during aging.
Kynurenine (KYN), a tryptophan metabolite that increases with age, impairs osteoblast function. The aryl hydrocarbon receptor (AhR) has been proposed to mediate KYN's actions in bone. To test whether deletion of AhR in osteoblasts is beneficial for bone, we established an adult-onset AhR conditional knockout (CKO) model using Osx-Cre and examined the effects of AhR CKO at 4.5 and 6 mo of age (representing ~6 and 12 wk of CKO). While BMSC-derived osteoblasts from WT mice demonstrated reduced matrix formation from KYN treatment, AhR CKO osteoblasts were unaffected by KYN. Kynurenine's harmful effects were most pronounced in the middle of an osteoblastic differentiation time course, and these effects could be rescued via the AhR antagonist BAY2416964. In vivo, AhR deletion in Osx-expressing cells promoted sex- and compartment-specific skeletal phenotypes. Trabecular bone was increased in the distal femur of male and female AhR CKO mice at both 4.5 and 6 mo of age, potentially driven by a net decrease in the ratio of trabecular osteoclasts to osteoblasts despite a reduction in mineral apposition rate at 6 mo of age. In contrast, cortical bone phenotypes induced by AhR deletion depended on age and sex. In males, cortical bone volume fraction (Ct.BV/TV) was elevated in AhR CKO mice vs WT littermates at 4.5 mo of age, but differences resolved by 6 mo of age. In contrast, cortical bone was reduced in female AhR CKO as compared to WT littermates at 6 mo of age. These results underscore the complexity of AhR signaling in skeletal biology that must be considered while exploring AhR as a therapeutic target for conditions like osteoporosis and musculoskeletal frailty. Future studies will be needed to test the effects of osteoblastic AhR deletion at advanced ages, when the endogenous AhR ligand KYN is elevated in the circulation and skeletal niche.
Introduction: The incidence of obesity has dramatically increased worldwide. Obesity has been shown to exacerbate the progression of periodontal disease. Studies suggest a sex difference in periodontitis, whereby males are more sensitive to periodontal inflammation compared to females. Aim: In the current study, it was hypothesized that obesity drives periodontal inflammation and bone loss in both sexes. Methodology: Utilizing leptin receptor mutant (SSLepR mutant) rats as a genetic model of obesity, 11–12-week-old male and female lean Dahl salt-sensitive (SS) rats and obese SSLepR mutant rats were used to investigate sex differences in obesity-induced periodontal inflammation. Results: Body weight, insulin, hemoglobin A1c and cholesterol levels were significantly elevated in the obese SSLepR mutant strain vs. the lean SS strain within the same sex. Sex differences in body weight and plasma hemoglobin A1c were only observed in obese SSLepR mutant rats, with males having significantly greater body weight and hemoglobin A1c vs. females. Plasma thiobarbituric acid reactive substances (TBARs) and monocyte chemoattractant protein-1 (MCP-1), markers of systemic oxidative stress and inflammation, respectively, were significantly elevated in obese SSLepR mutant rats vs. lean SS rats, with no sex differences in these parameters in either rat strains. Although micro-CT analyses of the maxillary first molar alveolar bone from obese SSLepR mutant rats revealed no evidence of bone loss and/or sex differences, immuno-histochemical analysis revealed significant elevations in periodontal IL-6 and decreases in IL-10 in obese SSLepR mutant rats vs. lean SS rats, with no apparent sex differences in these parameters. Conclusions: Obesity increases systemic and periodontal inflammation, without evidence of bone loss or apparent sex differences in SSLepR mutant rats.
Alzheimer’s disease (AD), a progressive neurodegenerative disorder, is frequently associated with musculoskeletal complications, including sarcopenia and osteoporosis, which substantially impair patient quality of life. Despite these clinical observations, the molecular mechanisms linking AD to bone loss remain insufficiently explored. In this study, we examined the femoral bone microarchitecture and transcriptomic profiles of APP/PS1 transgenic mouse models of AD to elucidate the disease’s impact on bone pathology and identify potential gene candidates associated with bone deterioration. We performed micro-computed tomography (microCT) and RNA transcriptome analysis on the femoral bone of these mice. We observed a significant reduction in bone microstructure in both male and female APP/PS1 mice compared to their wild-type counterparts. Transcriptomic analysis of femoral bone tissue revealed substantial differential gene expression between AD mice and controls. Specifically, APP/PS1 mice exhibited differential expression in 289 protein-coding genes across both sexes. Notably, in female APP/PS1 mice, 664 genes were differentially expressed, with key genes such as Shh, Efemp1, Arg1, EphA2, Irx1, and PORCN potentially implicated in bone loss. In male APP/PS1 mice, 787 genes were differentially expressed, with Sel1l, Ffar4, Hspa1a, AMH, WFS1, and CLIC1 emerging as notable candidates in the context of bone deterioration. Gene Ontology (GO) enrichment analysis further revealed distinct sex-specific gene pathways between male and female APP/PS1 mice, underscoring the differential molecular underpinnings of bone pathology in AD. This study identifies novel sex-specific genes in the APP/PS1 mouse model and proposes potential therapeutic targets to mitigate bone loss in AD patients.
Fluoride plays a dual role in dental health-preventing caries at optimal levels but causing fluorosis when excessive. While most animal studies focus on young mice, age-related susceptibility to fluoride remains poorly understood. This study presents the first comprehensive analysis of developmental stage-dependent differences in fluoride toxicity, focusing on enamel formation and systemic fluoride clearance. Male C57BL/6J mice-adolescent (5-9 weeks) and mature (16-20 weeks)-were exposed to fluoride in drinking water (0, 50, 100, or 125 ppm) for 6 weeks. Adolescent mice developed pronounced dental fluorosis, characterized by chalky white incisors, elevated Quantitative Light-induced Fluorescence (QLF) values, reduced enamel microhardness, and lower enamel mineral density (EMD). Histological analysis revealed disrupted ameloblast morphology, reduced KLK4 expression, and aprismatic enamel, with more severe effects in adolescents. In contrast, mature mice exhibited minimal changes in QLF, enamel hardness, and EMD. Systemic fluoride analysis showed significantly lower serum and urinary fluoride levels in adolescent mice compared to mature mice, indicating reduced excretion and increased tissue accumulation. These findings demonstrate that younger mice are more vulnerable to fluoride-induced enamel defects due to lower clearance than mature mice. This study provides critical evidence of age-related differences in fluoride toxicity, revealing heightened vulnerability during developmental stages. Our findings have significant public health implications, supporting the need for age-specific fluoride exposure guidelines to balance caries prevention and developmental fluoride toxicity.
We and others have seen that osteocytes sense high-impact osteogenic mechanical loading via transient plasma membrane disruptions (PMDs) which initiate downstream mechanotransduction. However, a PMD must be repaired for the cell to survive this wounding event. Previous work suggested that the protein Prkd1 (also known as PKCμ) may be a critical component of this PMD repair process, but the specific role of Prkd1 in osteocyte mechanobiology had not yet been tested. We treated MLO-Y4 osteocytes with Prkd1 inhibitors (Go6976, kbNB 142-70, staurosporine) and generated an osteocyte-targeted (Dmp1-Cre) Prkd1 conditional knockout (CKO) mouse. PMD repair rate was measured via laser wounding and FM1-43 dye uptake, PMD formation and post-wounding survival were assessed via fluid flow shear stress (50 dyn/cm2), and in vitro osteocyte mechanotransduction was assessed via measurement of calcium signaling. To test the role of osteocyte Prkd1 in vivo, Prkd1 CKO and their wildtype (WT) littermates were subjected to 2 weeks of unilateral axial tibial loading and loading-induced changes in cortical bone mineral density, geometry, and formation were measured. Prkd1 inhibition or genetic deletion slowed osteocyte PMD repair rate and impaired post-wounding cell survival. These effects could largely be rescued by treating osteocytes with the FDA-approved synthetic copolymer Poloxamer 188 (P188), which was previously shown to facilitate membrane resealing and improve efficiency in the repair rate of PMD in skeletal muscle myocytes. In vivo, while both WT and Prkd1 CKO mice demonstrated anabolic responses to tibial loading, the magnitude of loading-induced increases in tibial BMD, cortical thickness, and periosteal mineralizing surface were blunted in Prkd1 CKO as compared to WT mice. Prkd1 CKO mice also tended to show a smaller relative difference in the number of osteocyte PMD in loaded limbs and showed greater lacunar vacancy, suggestive of impaired post-wounding osteocyte survival. While P188 treatment rescued loading-induced increases in BMD in the Prkd1 CKO mice, it surprisingly further suppressed loading-induced increases in cortical bone thickness and cortical bone formation. Taken together, these data suggest that Prkd1 may play a pivotal role in the regulation and repair of the PMD response in osteocytes and support the idea that PMD repair processes can be pharmacologically targeted to modulate downstream responses, but suggest limited utility of PMD repair-promoting P188 in improving bone anabolic responses to loading.
Excessive fluoride ingestion during tooth development can cause dental fluorosis. Previously, we reported that fluoride activates histone acetyltransferase (HAT) to acetylate p53, promoting fluoride toxicity in mouse ameloblast-like LS8 cells. However, the roles of HAT and histone acetylation status in fluoride-mediated gene expression remain unidentified. Here, we demonstrate that fluoride-mediated histone modification causes gene expression alterations in LS8 cells. LS8 cells were treated with or without fluoride followed by ChIP-Seq analysis of H3K27ac. Genes were identified by differential H3K27ac peaks within ±1 kb from transcription start sites. The levels of mRNA of identified genes were assessed using rea-time PCR (qPCR). Fluoride increased H3K27ac peaks associated with Bax, p21, and Mdm2 genes and upregulated their mRNA levels. Fluoride decreased H3K27ac peaks and p53, Bad, and Bcl2 had suppressed transcription. HAT inhibitors (Anacardic acid or MG149) suppressed fluoride-induced mRNA of p21 and Mdm2, while fluoride and the histone deacetylase (HDAC) inhibitor sodium butyrate increased Bad and Bcl2 expression above that of fluoride treatment alone. To our knowledge, this is the first study that demonstrates epigenetic regulation via fluoride treatment via H3 acetylation. Further investigation is required to elucidate epigenetic mechanisms of fluoride toxicity in enamel development.
We and others have shown that application of high-level mechanical loading promotes the formation of transient plasma membrane disruptions (PMD) which initiate mechanotransduction. We hypothesized that increasing osteocyte cell membrane fragility, by disrupting the cytoskeleton-associated protein β2-spectrin (Sptbn1), could alter osteocytic responses and bone adaptation to loading in a PMD-related fashion. In MLO-Y4 cells, treatment with the spectrin-disrupting agent diamide or knockdown of Sptbn1 via siRNA increased the number of PMD formed by fluid shear stress. Primary osteocytes from an osteocyte-targeted DMP1-Cre Sptbn1 conditional knockout (CKO) model mimicked trends seen with diamide and siRNA treatment and suggested the creation of larger PMD, which repaired more slowly, for a given level of stimulus. Post-wounding cell survival was impaired in all three models, and calcium signaling responses from the wounded osteocyte were mildly altered in Sptbn1 CKO cultures. Although Sptbn1 CKO mice did not demonstrate an altered skeletal phenotype as compared to WT littermates under baseline conditions, they showed a blunted increase in cortical thickness when subjected to an osteogenic tibial loading protocol as well as evidence of increased osteocyte death (increased lacunar vacancy) in the loaded limb after 2 weeks of loading. The impaired post-wounding cell viability and impaired bone adaptation seen with Sptbn1 disruption support the existence of an important role for Sptbn1, and PMD formation, in osteocyte mechanotransduction and bone adaptation to mechanical loading.
Volumetric muscle loss (VML) injuries are a traumatic loss of muscle, limiting regenerative potential and resulting in chronic loss of function. In isolation the bone adjacent to the VML injury is often overlooked, but known association between the tissues are important to long-term health and function. Recent work suggests decrements in both bones and muscles of VML-injured limbs, as well as a distinct relationship between VML and bone health. The clinically injured VML population is expected to undergo considerable periods of physical inactivity or a long-term sedentary lifestyle, and thus decreased loading, after VML. Our objective was to investigate the concomitant impact of VML on the adjacent bone, with and without the restriction of physical activity (reduced ~50% of daily ambulation). We hypothesized that with restriction of physical activity, the tibia adjacent to the VML would have functional impairments greater than those with normal physical activity (daily ambulation >1km). Adult male C57BI/6J mice (n=41) underwent unilateral VML to the posterior hindlimb compartment or served as uninjured age-matched controls, then were randomized to standard or restricted activity cages for 8-wks. Terminally (age 20-wks), mice underwent in vivo muscle function testing. Adjacent tibia were assessed for strength, mid‐diaphysis cortical geometry, and intrinsic material properties, and the metaphyseal trabecular bone structure was evaluated by microcomputed tomography and three‐point bending. A subset of tibias was saved for histologic staining (H&E, TRAP). Data were evaluated by two-way ANOVA. There were no absolute or normalized functional muscle deficits following 8-wks of inactivity. That said, there were significant VML-functional deficits (~42% of uninjured) that are not exacerbated by inactivity (p<0.001). Cortical geometric changes in the bone were primarily a result of physical inactivity, with thickness and cross-sectional moment of inertia both diminished independent of injury (p≤0.018). However, there were no differences in cortical bone volume, diameter, or cross-sectional area (p≥0.056). Trabecular bone mineral density was lower in all VML-injured tibias compared to uninjured (p=0.003). While there was no difference across groups for trabecular spacing (p>0.397), there was a reduction in bone mineral density across all VML-injured, compared to uninjured tibias (p=0.003). The functional capacity of the tibia to resist fracture (i.e., ultimate load during 3‐point bending) was ~21% lower with inactivity (p=0.018), while there was only a trend for VML injury to impact resistance to fracture. Stiffness was calculated during the onset to ultimate load and ~15% less in the VML injured and inactivity VML tibias (p=0.016). Tibia of VML injured and inactive groups appear to have greater lipid accumulation compared to uninjured tibias. While discordant with muscle function, physical activity restriction with and without VML injury impairs adjacent tibia. Inactivity alone had the greatest impact on the cortical bone properties, while VML with and without physical inactivity impacted trabecular tibia properties. This study demonstrates the impact of VML with and without physical inactivity on the tibia, furthering the complexity of traumatic injury on the musculoskeletal system. W81XWH‐20‐10885 (JAC & SMG); S10OD025177. 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.
Aims Cyclooxygenase-2-derived prostaglandin E2 (PGE2) is thought to promote vascular intimal hyperplasia (IH). It has been reported that the PGE2 receptor EP4 is upregulated in injured vessels and that EP4 signalling in vascular smooth muscle cells (VSMCs) promotes IH. In contrast, EP4 in endothelial cells has been demonstrated to restrain IH. We aimed to investigate spatiotemporal expression of EP4 and whether modulating EP4 signalling could be a viable therapeutic strategy.Methods and results We generated EP4 reporter mice (Ptger4-IRES-nlsLacZ) and found temporary but prominent EP4 expression in VSMCs of the proliferative neointima 2 weeks after femoral artery wire injury. Injury-induced IH was diminished in VSMC-targeted EP4 heterozygous deficient mice (Ptger4fl/+;SM22-Cre) 2 and 4 weeks after vascular injury compared to that in SM22-Cre, whereas injury-induced IH was exacerbated in VSMC-targeted EP4-overexpressing mice (Ptger4-Tg) compared to controls (non-Tg). We then investigated the downstream signalling of EP4 in VSMCs. Stimulation of EP4 increased mRNA and protein levels of the glycoprotein fibulin-1 in Ptger4-Tg VSMCs. Fibulin-1C recombinant proteins increased VSMC proliferation and migration through transforming growth factor (TGF)- beta/Smad3, and EP4-mediated proliferation and migration were attenuated in Fbln1fl/fl;SM22-Cre VSMCs and in CRISPR/Cas9-mediated Fbln1 knockdown in Ptger4-Tg VSMCs. We generated multiple deletion mutants of fibulin-1C and found that EGF-like modules 6-8 appear to be involved in fibulin-1-mediated proliferation. Among binding partners of fibulin-1, extracellular matrix protein 1 (ECM1) was also upregulated by EP4 stimulation, and fibulin-1C and ECM1 proteins additively enhanced VSMC proliferation and migration. Injury-induced IH was attenuated in VSMC-targeted fibulin-1 deletion mice (Fbln1fl/fl;SM22-Cre) compared to Fbln1fl/fl. Furthermore, systemic EP4 antagonist administration reduced injury-induced IH in wild-type mice.Conclusion EP4 was upregulated in VSMCs of proliferative IH, and EP4 signalling promoted IH, at least in part through fibulin-1. An EP4 antagonist might be considered as a therapeutic strategy for IH.
Perfluorooctanoic acid (PFOA) is an artificial fluorinated organic compound that has generated increased public attention due to its potential health hazards. Unsafe levels of PFOA exposure can affect reproduction, growth and development. During tooth enamel development (amelogenesis), environmental factors including fluoride can cause enamel hypoplasia. However, the effects of PFOA on ameloblasts and tooth enamel formation remain largely unknown. In the present study we demonstrate several PFOA-mediated cell death pathways (necrosis/necroptosis, and apoptosis) and assess the roles of ROS-MAPK/ERK signaling in PFOA-mediated cell death in mouse ameloblast-lineage cells (ALC). ALC cells were treated with PFOA. Cell proliferation and viability were analyzed by MTT assays and colony formation assays, respectively. PFOA suppressed cell proliferation and viability in a dose dependent manner. PFOA induced both necrosis (PI-positive cells) and apoptosis (cleaved-caspase-3, γH2AX and TUNEL-positive cells). PFOA significantly increased ROS production and up-regulated phosphor-(p)-ERK. Addition of ROS inhibitor N-acetyl cysteine (NAC) suppressed p-ERK and decreased necrosis, and increased cell viability compared to PFOA alone, whereas NAC did not change apoptosis. This suggests that PFOA-mediated necrosis was induced by ROS-MAPK/ERK signaling, but apoptosis was not associated with ROS. Addition of MAPK/ERK inhibitor PD98059 suppressed necrosis and increased cell viability compared to PFOA alone. Intriguingly, PD98059 augmented PFOA-mediated apoptosis. This suggests that p-ERK promoted necrosis but suppressed apoptosis. Addition of the necroptosis inhibitor Necrostatin-1 restored cell viability compared to PFOA alone, while pan-caspase inhibitor Z-VAD did not mitigate PFOA-mediated cell death. These results suggest that 1) PFOA-mediated cell death was mainly caused by necrosis/necroptosis by ROS-MAPK/ERK signaling rather than apoptosis, 2) MAPK/ERK signaling plays the dual roles (promoting necrosis and suppressing apoptosis) under PFOA treatment. This is the initial report to indicate that PFOA could be considered as a possible causative factor for cryptogenic enamel malformation. Further studies are required to elucidate the mechanisms of PFOA-mediated adverse effects on amelogenesis.
Aims Cyclooxygenase-2– and microsomal prostaglandin E synthase-1–derived prostaglandin E 2 (PGE 2 ) are involved in vascular intimal hyperplasia (IH). Although extensive studies have revealed the roles of PGE 2 receptors (EPs) in IH, spatiotemporal EP expressions and downstream targets have not been fully elucidated. In this study, we focused on EP4 and investigated its role in vascular IH. Methods and Results We generated EP4 reporter mice ( Ptger4 -IRES-nlsLacZ) and found prominent EP4 expression in the proliferative neointima 2 weeks after femoral artery wire injury. Expression of EP4 were returned to the baseline level 4 weeks after vascular injury (VI). Injury-induced IH was diminished in vascular smooth muscle cell (VSMC)-specific EP4 heterozygous deficient mice ( Ptger4 fl/+ ; SM22 - Cre ) 2 and 4 weeks after VI compared to SM22 - Cre , whereas injury-induced IH was exacerbated in VSMC-specific EP4-overexpressing mice ( Ptger4 -Tg) compared to controls (non-Tg). Systemic EP4 antagonist administration reduced VI-induced IH in wild-type mice. We investigated the role of extracellular matrix proteins, as downstream regulated targets of EP4. Stimulation of EP4 increased mRNA and protein levels of fibulin-1 (a multifunctional glycoprotein) in Ptger4 -Tg VSMCs. Fibulin-1C or -1D recombinant proteins increased VSMC proliferation, whereas proliferation was decreased in fibulin-1–deficient VSMCs. We generated multiple deletion mutants of fibulin-1C and found that EGF-like modules 6-8 appear to be involved in fibulin-1–mediated proliferation. Among binding partners of fibulin-1, extracellular matrix protein 1 (ECM1) was upregulated by EP4 stimulation, and fibulin-1 and ECM1 proteins additively enhanced VSMC proliferation. Similar to EP4 expression, both fibulin-1 and ECM1 were abundantly expressed in the neointima 2 weeks after VI. Furthermore, injury-induced IH was attenuated in VSMC-specific fibulin-1 deletion mice ( Fbln1 fl/fl ; SM22 -Cre) compared to Fbln1 fl/fl . Conclusions EP4 was upregulated in proliferative IH, and EP4-induced fibulin-1 cooperated with ECM1 to promote IH through VSMC proliferation. The calcium binding EGF-like modules 6-8 of fibulin-1 are indicated to regulate cell proliferation. A Translational Perspective Recent advances in drug-eluting stents have significantly contributed to the reduction of vascular IH. However, the detailed mechanism underlying IH after stenting remains to be elucidated. We found that prostaglandin E 2 -EP4–induced fibulin-1 plays a role in IH through VSMC proliferation. It is well recognized that prostaglandin E 2 plays a role in IH, but inhibition of cyclooxygenase-2 has side effects such as thrombogenesis. Because EP4 and fibulin-1 were upregulated specifically in the neointima after vascular injury, oral or local administration of an EP4 antagonist or the downregulation of fibulin-1 would be potential therapeutic strategies to restrain IH.
Kynurenine (Kyn) is a tryptophan metabolite that increases with age and promotes musculoskeletal dysfunction. We previously found a sexually dimorphic pattern in how Kyn affects bone, with harmful effects more prevalent in females than males. This raises the possibility that male sex steroids might exert a protective effect that blunts the effects of Kyn in males. To test this, orchiectomy (ORX) or sham surgeries were performed on 6-month-old C57BL/6 mice, after which mice received Kyn (10 mg/kg) or vehicle via intraperitoneal injection, once daily, 5×/week, for four weeks. Bone histomorphometry, DXA, microCT, and serum marker analyses were performed after sacrifice. In vitro studies were performed to specifically test the effect of testosterone on activation of aryl hydrocarbon receptor (AhR)-mediated signaling by Kyn in mesenchymal-lineage cells. Kyn treatment reduced cortical bone mass in ORX- but not sham-operated mice. Trabecular bone was unaffected. Kyn's effects on cortical bone in ORX mice were attributed primarily to enhanced endosteal bone resorption activity. Bone marrow adipose tissue was increased in Kyn-treated ORX animals but was unchanged by Kyn in sham-operated mice. ORX surgery increased mRNA expression of the aryl hydrocarbon receptor (AhR) and its target gene Cyp1a1 in the bone, suggesting a priming and/or amplification of AhR signaling pathways. Mechanistic in vitro studies revealed that testosterone blunted Kyn-stimulated AhR transcriptional activity and Cyp1a1 expression in mesenchymal-linage cells. These data suggest a protective role for male sex steroids in blunting the harmful effects of Kyn in cortical bone. Therefore, testosterone may play an important role in regulating Kyn/AhR signaling in musculoskeletal tissues, suggesting crosstalk between male sex steroids and Kyn signaling may influence age-associated musculoskeletal frailty.
Skeletal muscles and bones are structurally and functionally linked, such that bone strength is primarily determined the frequency and magnitude of the mechanical strain derived from muscular contractions. Volumetric muscle loss (VML) injury results in a significant loss of muscle tissue and a non-recoverable loss of muscle strength. However, the extent to which limbs that sustain a VML injury have associated changes to bone structure and functional capacity is unknown. This study’s objective was to investigate whether VML injury affects the adjacent tibial bone structure and functional capacity in adult male C57BL/6J mice. At 12 weeks of age, mice (n=14) underwent a unilateral VML injury (4mm diameter muscle biopsy) to the left hindlimb plantar flexor muscles, while the right limbs served as uninjured controls. At 20 weeks of age (2 months post-VML injury), mice were bilaterally tested for in vivo peak-isometric plantarflexion torque. Post-mortem analyses of tibial bone structure and mechanical properties was assessed via μCT and 3-point bending tests, respectively, at the mid-diaphysis. Statistical analyses were performed between injured and uninjured limbs via paired t-test, with an α-level of 0.05. At 2 months post-injury, VML-injured limbs had significantly less gastrocnemius muscle mass (28%), and peak-isometric torque (35%) as compared to uninjured limbs (p<0.001). Tibial bone strength, as measured by ultimate load, demonstrated a trend in VML-injured limbs to be 3% lower than that in uninjured limbs (p=0.055). Most notably, the cross-sectional moment of inertia (CSMI), the principal structural determinant of the bone’s ultimate load was 9% smaller in VML-injured limbs as compared to uninjured limbs (p=0.035). Additional structural changes in cortical bone were detected: notably, less cortical bone thickness (4.5%), volume (6.6%), and cross-sectional area (4.9%) in VML-injured limbs as compared to the uninjured limb (p≤ 0.025). Bone-to-muscle functional ratio (i.e., ultimate load:peak-isometric torque) was 38% greater in VML-injured limbs compared to uninjured limbs (p<0.001) indicating the deficits in muscle far outweigh that of bone at 2 months post-injury. Future research directions include determining if more time post-VML injury has a greater effect on bone ultimate load and exploring the extent to which the uninjured limbs in VML-injured mice experience compensatory or related changes to bone structure and function. W81XWH-20-1-0885 to JAC and SMG 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.
Emerging evidence shows that the microRNA-141-3p is involved in various age-related pathologies. Previously, our group and others reported elevated levels of miR-141-3p in several tissues and organs with age. Here, we inhibited the expression of miR-141-3p using antagomir (Anti-miR-141-3p) in aged mice and explored its role in healthy aging. We analyzed serum (cytokine profiling), spleen (immune profiling), and overall musculoskeletal phenotype. We found decreased levels of pro-inflammatory cytokines (such as TNF-α, IL-1β, IFN-γ) in serum with Anti-miR-141-3p treatment. The flow-cytometry analysis on splenocytes revealed decreased M1 (pro-inflammatory) and increased M2 (anti-inflammatory) populations. We also found improved bone microstructure and muscle fiber size with Anti-miR-141-3p treatment. Molecular analysis revealed that miR-141-3p regulates the expression of AU-rich RNA-binding factor 1 (AUF1) and promotes senescence (p21, p16) and pro-inflammatory (TNF-α, IL-1β, IFN-γ) environment whereas inhibiting miR-141-3p prevents these effects. Furthermore, we demonstrated that the expression of FOXO-1 transcription factor was reduced with Anti-miR-141-3p and elevated with silencing of AUF1 (siRNA-AUF1), suggesting crosstalk between miR-141-3p and FOXO-1. Overall, our proof-of-concept study demonstrates that inhibiting miR-141-3p could be a potential strategy to improve immune, bone, and muscle health with age.
Angiotensin signaling is known to be sexually dimorphic. Although it is a well-studied target for intervention in stroke and cognitive impairment, female studies are rare. With females suffering a disproportionately greater negative impact of stroke and dementia vs. males, effective interventions are of utmost urgency. The aim of the current study was to determine the impact of activation of the angiotensin II type 2 receptor (AT2R) with the agonist compound 21 (C21) on the development of post-stroke cognitive impairment, after experimental ischemic stroke. Ovariectomized (OVX) spontaneously hypertensive rats (SHRs) were subjected to 1 h of middle cerebral artery occlusion (MCAO). At 24 h, rats with a significant neurologic deficit were randomized to receive either saline or C21 (0.03 mg/kg/day) intraperitoneally (IP) for 5 days, then orally (0.12 mg/kg/day) for a total of 6 weeks. Cognitive function, brain structure by MRI and vascular architecture by microCT angiography were measured. C21 preserved cognitive function, specifically spatial memory, and improved vascular density in the ischemic hemisphere at 6 weeks, reflecting both arteriogenesis and angiogenesis. In conclusion, C21 prevented cognitive impairment after stroke, likely through a mechanism involving vascular protection and restoration.