Coronavirus disease 2019 (COVID-19) is an infectious disease caused by severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2). While recent studies have demonstrated that SARS-CoV-2 may enter kidney and colon epithelial cells by inducing receptor-independent macropinocytosis, it remains unknown whether this process also occurs in cell types directly relevant to SARS-CoV-2-associated lung pneumonia, such as alveolar epithelial cells and macrophages. The goal of our study was to investigate the ability of SARS-CoV-2 spike protein subunits to stimulate macropinocytosis in human alveolar epithelial cells and primary human and murine macrophages. Flow cytometry analysis of fluid-phase marker internalization demonstrated that SARS-CoV-2 spike protein subunits S1, the receptor-binding domain (RBD) of S1, and S2 stimulate macropinocytosis in both human and murine macrophages in an angiotensin-converting enzyme 2 (ACE2)-independent manner. Pharmacological and genetic inhibition of macropinocytosis substantially decreased spike-protein-induced fluid-phase marker internalization in macrophages both in vitro and in vivo. High-resolution scanning electron microscopy (SEM) imaging confirmed that spike protein subunits promote the formation of membrane ruffles on the dorsal surface of macrophages. Mechanistic studies demonstrated that SARS-CoV-2 spike protein stimulated macropinocytosis via NADPH oxidase 2 (Nox2)-derived reactive oxygen species (ROS) generation. In addition, inhibition of protein kinase C (PKC) and phosphoinositide 3-kinase (PI3K) in macrophages blocked SARS-CoV-2 spike-protein-induced macropinocytosis. To our knowledge, these results demonstrate for the first time that SARS-CoV-2 spike protein subunits stimulate macropinocytosis in macrophages. These results may contribute to a better understanding of SARS-CoV-2 infection and COVID-19 pathogenesis.
Diseases linked to atherosclerosis are the leading cause of death in the United States. Transmigration of monocytes across the endothelial layer and their differentiation into macrophages play an important role in the initiation and progression of atherosclerosis. These monocyte-derived macrophages internalize modified LDL in the arterial wall and drive the pathogenesis of atherosclerosis. Recent studies have shown that pharmacological depletion of foamy monocytes inhibits atherosclerosis development in mice, identifying monocyte uptake of plasma LDL as a therapeutic target in atherosclerosis. However, the precise mechanisms by which monocytes internalize plasma LDL remain unknown. The goal of our study was to investigate the role, and relative contribution, of macropinocytosis and scavenger receptors ( Cd36 and Sr-a ) to foamy monocyte formation. The presence of foamy monocytes was confirmed in hypercholesterolemic mice and humans via flow cytometry analysis of Nile Red fluorescence. High resolution scanning electron microscopy and flow cytometry analysis of dextran internalization confirmed macropinocytosis stimulation in THP-1 and primary murine monocytes. Stimulation of macropinocytosis in monocytes induced uptake of both native LDL and oxLDL, leading to foamy monocyte formation in vitro . Pharmacological (EIPA) and genetic inhibition of macropinocytosis ( Lysm - CreER T2+/- Nhe1 -/- ) inhibited foamy monocyte formation (58.9%) in hypercholesterolemic mice in vivo . RT-PCR confirmed expression of Cd36 and Sr-a in monocytes and deletion of Cd36 and Sr-a inhibited foamy monocyte formation in hypercholesterolemic mice (10.3%) compared to wild type controls. FACS and bulk RNA sequencing characterized monocyte subsets including classical, intermediate, and non-classical monocytes in hypercholesterolemic Cd36 -/- / Sr-a -/- and Lysm - CreER T2+/- Nhe1 -/- mice and their respective wild type controls. Mechanistic studies identified NADPH oxidase 2 (Nox2) and downstream redox regulation of actin-cytoskeleton as a major stimulator of monocyte macropinocytosis. These results provide novel insights into the mechanisms of foamy monocyte formation and potentially identify new therapeutic targets in the treatment of atherosclerosis.
Aims: Thrombospondin-1 (TSP1), a secretory protein, has been associated with various cardiovascular diseases. TSP1 mainly functions via its cognate receptors CD47 and CD36. Recently, we observed elevated TSP1 expression in human and murine atherosclerotic arteries. However, the role of vascular smooth muscle cell (VSMC) TSP1-CD47 signaling in regulating VSMC phenotype and atherogenesis is unclear. Methods and Results: Human arterial SMCs were treated with human TSP1 and analyzed for SMC markers and proliferation. The data revealed decreased expression of SMC markers, ACTA, CNN1, and SM22α in TSP1-exposed VSMCs compared with vehicle-treated control cells. Further, TSP1 treatment increased VSMC proliferation in vitro , suggesting TSP1 induces VSMC hyperproliferative phenotype. Additional experiments showed CD47 as the major TSP1’s receptor in VSMCs. To investigate the in vivo role of VSMC Cd47 in atherosclerosis, we generated tamoxifen-inducible SMC-specific Cd47 knockout mice ( Cd47 f/f Myh11 Cre +/– , Cd47 ΔVSMC ) by crossing female Cd47 f/f mice with male Myh11 Cre +/- mice. Male tamoxifen-injected Cd47 ΔVSMC and corn oil-administered Cd47 WT mice were given a single injection of AAV8- hPCSK9 (1х10 11 viral genomes/mouse, IP) and fed a Western diet for 12 weeks. En face oil red O (ORO) staining of whole aortas exhibited reduced atherosclerosis in Cd47 ΔVSMC mice compared with control Cd47 WT mice. Further histochemical staining performed on aortic root sections revealed attenuated neointimal lesion area, lipid accumulation and necrotic area in Cd47 ΔVSMC mice. However, there were no significant differences in weight gain, body composition (fat and lean mass), plasma total cholesterol, and fasting blood glucose between Cd47 ΔVSMC and Cd47 WT mice. Conclusions: Taken together, these findings suggest that TSP1 promotes VSMC phenotype switch and VSMC-specific Cd47 deletion in hypercholesterolemic mice suppresses atherosclerosis progression.
Atherosclerotic cardiovascular disease (ASCVD) is the leading cause of death worldwide. Clinical and experimental data demonstrated that circulating monocytes internalize plasma lipoproteins and become lipid-laden foamy cells in hypercholesterolemic subjects. This study was designed to identify the endocytic mechanisms responsible for foamy monocyte formation, perform functional and transcriptomic analysis of foamy and nonfoamy monocytes relevant to ASCVD, and characterize specific monocyte subsets isolated from the circulation of normocholesterolemic controls and hypercholesterolemic patients. We hypothesized that activation of fluidphase macropinocytosis contributes to foamy monocyte formation in vitro and in hypercholesterolemic mice in vivo. High resolution scanning electron microscopy (SEM) and quantification of FITC/TRITC-dextran internalization demonstrated macropinocytosis stimulation in human (THP-1) and wild type murine monocytes. Stimulation of macropinocytosis induced foamy monocyte formation in the presence of unmodified, native LDL (nLDL) and oxidized LDL (ox-LDL) in vitro. Genetic blockade of macropinocytosis (LysMCre+ Nhe1f/f) inhibited foamy monocyte formation in hypercholesterolemic mice in vivo and attenuated monocyte adhesion to atherosclerotic aortas ex vivo. Mechanistic studies identified NADPH oxidase 2 (Nox2)-derived superoxide anion (O2 & sdot;- ) as an important downstream signaling molecule stimulating macropinocytosis in monocytes. qRT-PCR identified CD36 as a major scavenger receptor that increases in response to lipid loading in monocytes and deletion of CD36 (Cd36- /- ) inhibited foamy monocyte formation in hypercholesterolemic mice. Bulk RNA-sequencing characterized transcriptional differences between non-foamy and foamy monocytes versus macrophages. Finally, flow cytometry analysis of CD14 and CD16 expression demonstrated a significant increase in intermediate monocytes in hypercholesterolemic patients compared to normocholesterolemic controls. These results provide novel insights into the mechanisms of foamy monocyte formation and potentially identify new therapeutic targets for the treatment of atherosclerosis.
Background Recent smooth muscle cell (SMC)-lineage tracing and single-cell RNA sequencing (scRNA-seq) experiments revealed a significant role of SMC-derived cells in atherosclerosis development. Further, thrombospondin-1 (TSP1), a matricellular protein, and activation of its receptor cluster of differentiation (CD) 47 have been linked with atherosclerosis. However, the role of vascular SMC TSP1-CD47 signaling in regulating VSMC phenotype and atherogenesis remains unknown. Methods We investigated the role of SMC CD47 activation by TSP1 in regulating VSMC phenotype and atherosclerosis development using various in vitro cell-based assays, molecular biological techniques, immunohistological approaches, reanalysis of publicly available scRNA-seq data, and cell-specific knockout mice. Results We observed elevated TSP1 expression in human atherosclerotic vascular tissues and VSMCs. TSP1-treated VSMCs exhibited decreased expression of contractile SMC markers (ACTA2, CNN1, and TAGLN) and increased proliferation. Additional experiments and reanalysis of the scRNA-seq dataset showed CD47 as the major TSP1 receptor in VSMCs, with its expression increased in SMC-derived modulated cells of murine atherosclerotic arteries. Knockdown of CD47 gene in human VSMCs upregulated expression of contractile SMC markers and abrogated TSP1's effects on these genes. SMC-specific Cd47 deletion in mice suppressed atherosclerotic lesion formation, reduced macrophage accumulation, and decreased necrotic area. However, no significant differences were observed in weight gain, liver and adipose tissue mass, plasma total cholesterol, and fasting blood glucose between control and SMC-restricted Cd47-deficient mice. Further experiments demonstrated increased efferocytosis of apoptotic CD47-silenced VSMCs by macrophages. Conclusions These findings suggest that CD47 plays a crucial role in regulating VSMC phenotype, and SMC-specific-Cd47 deletion suppresses atherosclerosis. New and noteworthy VSMC phenotypic switching contributes to atherosclerosis development. The present study reports the novel observations that Cd47 levels are upregulated in phenotypically modulated SMCs within atherosclerotic arteries and targeted deletion of Cd47 specifically in SMCs attenuates atherosclerosis. Mechanistic in vitro investigations further showed that TSP1-CD47 signaling regulates VSMC phenotype. Therefore, targeting SMC CD47 represents a promising therapeutic target to suppress atherogenesis.
Background: TSP1 (thrombospondin-1)—a well-known angiogenesis inhibitor—mediates differential effects via interacting with cell surface receptors including CD36 (cluster of differentiation) and CD47. However, the role of TSP1 in regulating lymphangiogenesis is not clear. Our previous study suggested the importance of cell-specific CD47 blockade in limiting atherosclerosis. Further, our experiments revealed CD47 as a dominant TSP1 receptor in lymphatic endothelial cells (LECs). As the lymphatic vasculature is functionally linked to atherosclerosis, we aimed to investigate the effects of LEC TSP1-CD47 signaling inhibition on lymphangiogenesis and atherosclerosis. Methods: Murine atherosclerotic and nonatherosclerotic arteries were utilized to investigate TSP1 expression using Western blotting and immunostaining. LEC-specific knockout mice were used to determine the in vivo role of LEC Cd47 in lymphangiogenesis and atherosclerosis. Various in vitro cell-based assays, in vivo Matrigel plug implantation, molecular biological techniques, and immunohistological approaches were used to evaluate the underlying signaling mechanisms. Results: Elevated TSP1 expression was observed in mouse atherosclerotic aortic tissue compared with nonatherosclerotic control tissue. TSP1 at pathological concentrations suppressed both in vitro and in vivo lymphangiogenesis. Mechanistically, TSP1 inhibited VEGF (vascular endothelial growth factor)-C–induced AKT and eNOS activation in LEC and attenuated NO (nitric oxide) production. Further, CD47 silencing in LEC prevented the effects of TSP1 on lymphangiogenic AKT-eNOS signaling and lymphangiogenesis. Atheroprone AAV (adeno-associated virus) 8- PCSK9 –injected LEC-specific Cd47 knockout mice ( Cd47 ΔLEC ) had reduced atherosclerosis in both aorta and aortic root compared with control mice ( Cd47 ΔWT ). However, no differences in metabolic parameters including body weight, plasma total cholesterol levels, and fasting blood glucose were observed. Additional immunostaining experiments performed on aortic root cross-sections indicated higher lymphatic vessel density in Cd47 ΔLEC mice in comparison to controls. Conclusions: These findings demonstrate that TSP1 inhibits lymphangiogenesis via activation of CD47 in LEC, and loss of LEC Cd47 attenuates atherosclerotic lesion formation. Collectively, these results identify LEC CD47 as a potential therapeutic target in atherosclerosis.
Leptin is a feedback signal in the control of energy balance, whereas cholecystokinin (CCK) is a short-term satiety signal that inhibits meal size. The two hormones synergize to promote satiety. We tested whether leptin receptors in the ventromedial nucleus of the hypothalamus (VMH) contribute to the synergy. The results suggest that there is a requirement for a baseline level of activation of leptin receptors in the VMH in order for CCK to promote satiety.
Aims Inhibitors of the anti-phagocytic CD47-SIRP alpha immune checkpoint are currently in clinical development for a variety of haematological and solid tumours. Application of immune checkpoint inhibitors to the cardiovascular field is limited by the lack of preclinical studies using genetic models of CD47 and SIRP alpha inhibition. In this study, we comprehensively analysed the effects of global and cell-specific SIRP alpha and CD47 deletion on atherosclerosis development. Methods and results Here, we show that both SIRP alpha and CD47 expression are increased in human atherosclerotic arteries and primarily co-localize to CD68(+) areas in the plaque region. Hypercholesterolaemic mice homozygous for a Sirpa mutant lacking the signalling cytoplasmic region (Sirpa(mut/mut)) and myeloid cell-specific Sirpa-knockout mice are protected from atherosclerosis. Further, global Cd47(-/-) mice are protected from atherosclerosis but myeloid cell-specific deletion of Cd47 increased atherosclerosis development. Using a combination of techniques, we show that loss of SIRP alpha signalling in macrophages stimulates efferocytosis, reduces cholesterol accumulation, promotes lipid efflux, and attenuates oxidized LDL-induced inflammation in vitro and induces M2 macrophage phenotype and inhibits necrotic core formation in the arterial wall in vivo. Conversely, loss of myeloid cell CD47 inhibited efferocytosis, impaired cholesterol efflux, augmented cellular inflammation, stimulated M1 polarization, and failed to decrease necrotic core area in atherosclerotic vessels. Finally, comprehensive blood cell analysis demonstrated lower haemoglobin and erythrocyte levels in Cd47(-/-) mice compared with wild-type and Sirpa(mut/mut) mice. Conclusion Taken together, these findings identify SIRP alpha as a potential target in atherosclerosis and suggest the importance of cell-specific CD47 inhibition as a future therapeutic strategy.
Thrombospondin-1 (TSP1), an extracellular glycoprotein mediates differential physio- or pathological effects via interacting with cell surface receptors including CD36 and CD47. TSP1 is a well-known angiogenesis inhibitor, however, its role in regulating lymphangiogenesis is not clear. We recently reported that global CD47-deficient mice are protected from atherosclerosis, however, myeloid cell-specific CD47 loss augments lesion formation suggesting the importance of cell-specific CD47 blockade in atherosclerosis. Our experiments revealed CD47 as a dominant TSP1 receptor in lymphatic endothelial cells (LECs). As the lymphatic vasculature is functionally linked to atherosclerosis, we herein investigated the effects of LEC TSP1-CD47 signaling inhibition on lymphangiogenesis and atherosclerotic lesion formation. Our immunoblotting data demonstrated elevated TSP1 expression in human and mouse atherosclerotic aortic tissue compared to non-atherosclerotic control tissue. TSP1 at pathological concentrations inhibited VEGF-C-stimulated in vitro lymphangiogenesis. Mechanistically, TSP1 inhibited VEGF-C-induced Akt activation in LECs, leading to decreased eNOS phosphorylation and attenuated nitric oxide production. Further, TSP1-treated CD47-silenced LECs proliferate faster and have higher Akt and eNOS activation than TSP1-treated control cells. AAV8-PCSK9-injected LEC-specific CD47 knockout ( Cd47 f/f Lyve-1 Cre +/- ) mice had reduced atherosclerosis in both aorta and aortic root compared with control ( Cd47 f/f ) mice. Additional immunostaining experiments performed on aortic root cross-sections indicated improved lymphatic vessel density in Cd47 f/f Lyve-1 Cre +/- mice. These results demonstrate that TSP1-mediated LEC CD47 activation inhibits lymphangiogenesis and blockade of LEC CD47 signaling suppresses atherosclerosis. Altogether, these findings identify LEC CD47 as a potential therapeutic target in atherosclerosis.
Accumulation of lipid-laden foam cells in the arterial wall plays a central role in atherosclerotic lesion development, plaque progression, and late-stage complications of atherosclerosis. However, there are still fundamental gaps in our knowledge of the underlying mechanisms leading to foam cell formation in atherosclerotic arteries. Here, we investigated the role of receptor-independent macropinocytosis in arterial lipid accumulation and pathogenesis of atherosclerosis. Genetic inhibition of fluid-phase macropinocytosis in myeloid cells (LysMCre+ Nhe1fl/fl) and re -purposing of a Food and Drug Administration (FDA)-approved drug that inhibits macrophage macropinocytosis substantially decreased atherosclerotic lesion development in low-density lipoprotein (LDL) receptor-deficient and Apoe-/- mice. Stimulation of macropinocytosis using genetic (H-RASG12V) and physiologically relevant ap-proaches promoted internalization of unmodified native (nLDL) and modified [e.g., acetylated (ac) and oxidized (ox) LDL] lipoproteins in both wild-type and scavenger receptor (SR) knockout (Cd36-/-/Sra-/-) macrophages. Pharmacological inhibition of macropinocytosis in hypercholesterolemic wild-type and Cd36-/-/Sra-/- mice iden-tified an important role of macropinocytosis in LDL uptake by lesional macrophages and development of athero-sclerosis. Furthermore, serial section high-resolution imaging, LDL immunolabeling, and three-dimensional (3D) reconstruction of subendothelial foam cells provide visual evidence of lipid macropinocytosis in both human and murine atherosclerotic arteries. Our findings complement the SR paradigm of atherosclerosis and identify a ther-apeutic strategy to counter the development of atherosclerosis and cardiovascular disease.
Membrane ruffling is the formation of motile plasma membrane protrusions containing a meshwork of newly polymerized actin filaments. Membrane ruffles may form spontaneously or in response to growth factors, inflammatory cytokines, and phorbol esters. Some of the membrane protrusions may reorganize into circular membrane ruffles that fuse at their distal margins and form cups that close and separate into the cytoplasm as large, heterogeneous vacuoles called macropinosomes. During the process, ruffles trap extracellular fluid and solutes that internalize within macropinosomes. High-resolution scanning electron microscopy (SEM) is a commonly used imaging technique to visualize and quantify membrane ruffle formation, circular protrusions, and closed macropinocytic cups on the cell surface. The following protocol describes the cell culture conditions, stimulation of the membrane ruffle formation in vitro, and how to fix, dehydrate, and prepare cells for imaging using SEM. Quantification of membrane ruffling, data normalization, and stimulators and inhibitors of membrane ruffle formation are also described. This method can help answer key questions about the role of macropinocytosis in physiological and pathological processes, investigate new targets that regulate membrane ruffle formation, and identify yet uncharacterized physiological stimulators as well as novel pharmacological inhibitors of macropinocytosis.
BACKGROUND Impaired lymphatic drainage of the arterial wall results in intimal lipid accumulation and atherosclerosis. However, the mechanisms regulating lymphangiogenesis in atherosclerotic arteries are not well understood. Our studies identified elevated levels of matrix protein R-Spondin 2 (RSPO2) in atherosclerotic arteries. In this study, we investigated the role of RSPO2 in lymphangiogenesis, arterial cholesterol efflux into lesion-draining lymph nodes and development of atherosclerosis. METHODS AND RESULTS The effect of RSPO2 on lymphangiogenesis was investigated using human lymphatic endothelial cells in vitro and implanted Matrigel plugs in vivo. Cellular and molecular approaches, pharmacological agents, and siRNA silencing of RSPO2 receptor LGR4 were used to investigate RSPO2-mediated signaling in lymphatic endothelial cells. In vivo LDL tracking and perivascular blockade of RSPO2-LGR4 signaling using LGR4-ECD pluronic gel in hypercholesterolemic mice were utilized to investigate the role of RSPO2 in arterial reverse cholesterol transport and atherosclerosis. Immunoblotting and imaging experiments demonstrated increased RSPO2 expression in human and mouse atherosclerotic arteries compared to non-atherosclerotic controls. RSPO2 treatment inhibited lymphangiogenesis both in vitro and in vivo. LGR4 silencing and inhibition of RSPO2-LGR4 signaling abrogated RSPO2-induced inhibition of lymphangiogenesis. Mechanistically, we found that RSPO2 inhibits PI3K-AKT-eNOS signaling via LGR4 and inhibits activation of the canonical Wnt-β-catenin pathway. ApoE-/- mice treated with LGR4-ECD developed significantly less atherosclerosis compared with control treatment. Finally, increased arterial lymphatic vessel density and improved lymphatic drainage of fluorescently-labeled LDL to deep cervical lymph nodes were observed in LGR4-ECD-treated mice. CONCLUSIONS These findings demonstrate that RSPO2 inhibits lymphangiogenesis via LGR4 and downstream impairment of AKT-eNOS-NO signaling. These results may also inform new therapeutic strategies to promote lymphangiogenesis and improve cholesterol efflux from atherosclerotic arteries. TRANSLATIONAL PERSPECTIVE Atherosclerotic cardiovascular disease is the leading cause of death worldwide. Thus, attenuation of atherosclerotic lesion formation and prevention of its cardiovascular complications is an urgent medical need. The findings of the present study that inhibition of LGR4-mediated signaling increases arterial lymphangiogenesis, improves lymphatic drainage from the vessel wall and attenuates atherosclerosis, provide a framework from which novel therapeutic strategies to augment lymphatic vessel density and reduce atherosclerotic lesion formation can be developed and used for the treatment of patients with atherosclerosis. This pathway may also have important implications in other pathological conditions associated with lymphatic dysfunction, such as lymphedema, obesity, hypertension, and impaired wound healing.
Arterial accumulation of plasma-derived LDL and its subsequent oxidation contributes to atherosclerosis. Lymphatic vessel (LV)-mediated removal of arterial cholesterol has been shown to reduce atherosclerotic lesion formation. However, the precise mechanisms that regulate LV density and function in atherosclerotic vessels remain to be identified. The aim of this study was to investigate the role of native LDL (nLDL) and oxidized LDL (oxLDL) in modulating lymphangiogenesis and underlying molecular mechanisms. Western blotting and immunostaining experiments demonstrated increased oxLDL expression in human atherosclerotic arteries. Furthermore, elevated oxLDL levels were detected in the adventitial layer, where LV are primarily present. Treatment of human lymphatic endothelial cells (LEC) with oxLDL inhibited in vitro tube formation, while nLDL stimulated it. Similar results were observed with Matrigel plug assay in vivo. CD36 deletion in mice and its siRNA-mediated knockdown in LEC prevented oxLDL-induced inhibition of lymphangiogenesis. In addition, oxLDL via CD36 receptor suppressed cell cycle, downregulated AKT and eNOS expression, and increased levels of p27 in LEC. Collectively, these results indicate that oxLDL inhibits lymphangiogenesis via CD36-mediated regulation of AKT/eNOS pathway and cell cycle. These findings suggest that therapeutic blockade of LEC CD36 may promote arterial lymphangiogenesis, leading to increased cholesterol removal from the arterial wall and reduced atherosclerosis.
Leptin administration into the hindbrain, and specifically the nucleus of the solitary tract, increases phosphorylated signal transducer and activator of transcription 3 (pSTAT3), a marker of leptin receptor activation, in hypothalamic nuclei known to express leptin receptors. The ventromedial nucleus of the hypothalamus (VMH) shows the greatest response, with a threefold increase in pSTAT3. This experiment tested the importance of VMH leptin receptor-expressing neurons in mediating weight loss caused by fourth ventricle (4V) leptin infusion. Male Sprague-Dawley rats received bilateral VMH 75-nL injections of 260 ng/μL of leptin-conjugated saporin (Lep-Sap) or blank-saporin (Blk-Sap). After 23 days they were fitted with 4V infusion cannulas and 1 wk later adapted to housing in a calorimeter before they were infused with 0.9 μg leptin/day for 14 days. There was no effect of VMH Lep-Sap on weight gain or glucose clearance before leptin infusion. Leptin inhibited food intake and respiratory exchange ratio in Blk-Sap but not Lep-Sap rats. Leptin had no effect on energy expenditure or brown adipose tissue temperature of either group. Inguinal and epididymal fat were significantly reduced in leptin-treated Blk-Sap rats, but the response was greatly attenuated in Lep-Sap rats. VMH pSTAT3 was increased in leptin-treated Blk-Sap but not Lep-Sap rats. These results support the concept that leptin-induced weight loss results from an integrated response across different brain areas. They also support previous reports that VMH leptin receptors do not play a significant role in maintaining energy balance in basal conditions but limit weight gain during positive energy balance.
The purpose of this study was to determine the effects of resistance training prior to and during doxorubicin (DOX) treatment on antioxidant enzyme expression in the primarily type I soleus muscle. Thirty‐six male, Sprague‐Dawley rats were randomly assigned to one of four groups: sedentary+saline (SSS), sedentary+DOX (SSD), resistance training+saline (RRS), and resistance training+DOX (RRD). The resistance training protocol incorporated a raised cage model where food and water were elevated progressively which provided hindlimb loading 10 weeks prior to DOX injection and during the course of DOX treatment. Animals receiving DOX received 3 mg/kg DOX administered i.p. weekly for 4 weeks (12 mg/kg cumulative). Five days following the final DOX injection, solei were excised and Western blotting was performed to quantify superoxide dismutase (SOD)1 and SOD2 expression. No significant main activity or drug effects were observed with SOD1 or SOD2 expression, but a significant activity × drug interaction was observed for SOD1 expression with RRD expressing significantly higher SOD1 than SSD. This interaction, however, was not observed for SOD2. In conclusion, resistance training prior to and during weekly DOX administration promoted an increase in SOD1 expression (the cytosolic form of SOD) suggesting that resistance training may play a role in combatting DOX myotoxicity by enhancing cytosolic antioxidant defenses.This abstract is from the Experimental Biology 2018 Meeting. There is no full text article associated with this abstract published in The FASEB Journal.