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1.
J Clin Invest ; 132(4)2022 02 15.
Article in English | MEDLINE | ID: mdl-35166234

ABSTRACT

As life expectancy continues to increase, clinicians are challenged by age-related renal impairment that involves podocyte senescence and glomerulosclerosis. There is now compelling evidence that lithium has a potent antiaging activity that ameliorates brain aging and increases longevity in Drosophila and Caenorhabditis elegans. As the major molecular target of lithium action and a multitasking protein kinase recently implicated in a variety of renal diseases, glycogen synthase kinase 3ß (GSK3ß) is overexpressed and hyperactive with age in glomerular podocytes, correlating with functional and histological signs of kidney aging. Moreover, podocyte-specific ablation of GSK3ß substantially attenuated podocyte senescence and glomerular aging in mice. Mechanistically, key mediators of senescence signaling, such as p16INK4A and p53, contain high numbers of GSK3ß consensus motifs, physically interact with GSK3ß, and act as its putative substrates. In addition, therapeutic targeting of GSK3ß by microdose lithium later in life reduced senescence signaling and delayed kidney aging in mice. Furthermore, in psychiatric patients, lithium carbonate therapy inhibited GSK3ß activity and mitigated senescence signaling in urinary exfoliated podocytes and was associated with preservation of kidney function. Thus, GSK3ß appears to play a key role in podocyte senescence by modulating senescence signaling and may be an actionable senostatic target to delay kidney aging.


Subject(s)
Aging/metabolism , Cellular Senescence , Glycogen Synthase Kinase 3 beta/biosynthesis , Podocytes/enzymology , Adult , Aging/genetics , Animals , Female , Gene Expression Regulation, Enzymologic , Glycogen Synthase Kinase 3 beta/genetics , Humans , Male , Mice , Mice, Knockout , Middle Aged
2.
Acta Pharmacol Sin ; 43(2): 342-353, 2022 Feb.
Article in English | MEDLINE | ID: mdl-34811512

ABSTRACT

Panax notoginseng, a traditional Chinese medicine, exerts beneficial effect on diabetic kidney disease (DKD), but its mechanism is not well clarified. In this study we investigated the effects of ginsenoside Rb1 (Rb1), the main active ingredients of Panax notoginseng, in alleviating podocyte injury in diabetic nephropathy and the underlying mechanisms. In cultured mouse podocyte cells, Rb1 (10 µM) significantly inhibited high glucose-induced cell apoptosis and mitochondrial injury. Furthermore, Rb1 treatment reversed high glucose-induced increases in Cyto c, Caspase 9 and mitochondrial regulatory protein NOX4, but did not affect the upregulated expression of aldose reductase (AR). Molecular docking analysis revealed that Rb1 could combine with AR and inhibited its activity. We compared the effects of Rb1 with eparestat, a known aldose reductase inhibitor, in high glucose-treated podocytes, and found that both alleviated high glucose-induced cell apoptosis and mitochondrial damage, and Rb1 was more effective in inhibiting apoptosis. In AR-overexpressing podocytes, Rb1 (10 µM) inhibited AR-mediated ROS overproduction and protected against high glucose-induced mitochondrial injury. In streptozotocin-induced DKD mice, administration of Rb1 (40 mg·kg-1·d-1, ig, for 7 weeks) significantly mitigated diabetic-induced glomerular injuries, such as glomerular hypertrophy and mesangial matrix expansion, and reduced the expression of apoptotic proteins. Collectively, Rb1 combines with AR to alleviate high glucose-induced podocyte apoptosis and mitochondrial damage, and effectively mitigates the progression of diabetic kidney disease.


Subject(s)
Aldehyde Reductase/antagonists & inhibitors , Diabetic Nephropathies/drug therapy , Ginsenosides/therapeutic use , Podocytes/drug effects , Albuminuria/metabolism , Animals , Apoptosis/drug effects , Blood Glucose/analysis , Blotting, Western , Cells, Cultured , Diabetes Mellitus, Experimental/complications , Diabetes Mellitus, Experimental/drug therapy , Diabetic Nephropathies/enzymology , Diabetic Nephropathies/pathology , Flow Cytometry , Kidney/drug effects , Kidney/pathology , Male , Mice , Molecular Docking Simulation , Podocytes/enzymology
3.
Int J Mol Sci ; 22(21)2021 Oct 20.
Article in English | MEDLINE | ID: mdl-34768768

ABSTRACT

Fabry disease (FD) is caused by mutations in the α-galactosidase A (GLA) gene encoding the lysosomal AGAL enzyme. Loss of enzymatic AGAL activity and cellular accumulation of sphingolipids (mainly globotriaosylcermide) may lead to podocyturia and renal loss of function with increased cardiovascular morbidity and mortality in affected patients. To identify dysregulated cellular pathways in FD, we established a stable AGAL-deficient podocyte cell line to perform a comprehensive proteome analysis. Imbalanced protein expression and function were analyzed in additional FD cell lines including endothelial, epithelial kidney, patient-derived urinary cells and kidney biopsies. AGAL-deficient podocytes showed dysregulated proteins involved in thermogenesis, lysosomal trafficking and function, metabolic activity, cell-cell interactions and cell cycle. Proteins associated with neurological diseases were upregulated in AGAL-deficient podocytes. Rescues with inducible AGAL expression only partially normalized protein expression. A disturbed protein expression was confirmed in endothelial, epithelial and patient-specific cells, pointing toward fundamental pathway disturbances rather than to cell type-specific alterations in FD. We conclude that a loss of AGAL function results in profound changes of cellular pathways, which are ubiquitously in different cell types. Due to these profound alterations, current approved FD-specific therapies may not be sufficient to completely reverse all dysregulated pathways.


Subject(s)
Fabry Disease/genetics , Fabry Disease/metabolism , Podocytes/enzymology , Podocytes/metabolism , alpha-Galactosidase/genetics , alpha-Galactosidase/metabolism , Acid Ceramidase/metabolism , Adult , Cell Line , Fibroblasts/metabolism , Gene Expression Regulation , Humans , Kidney/metabolism , Kidney/pathology , Male , Middle Aged , Primary Cell Culture , Signal Transduction , rab GTP-Binding Proteins/metabolism
4.
Cell Death Dis ; 12(11): 958, 2021 10 18.
Article in English | MEDLINE | ID: mdl-34663802

ABSTRACT

Lysosomes are organelles involved in cell metabolism, waste degradation, and cellular material circulation. They play a key role in the maintenance of cellular physiological homeostasis. Compared with the lysosomal content of other organs, that of the kidney is abundant, and lysosomal abnormalities are associated with the occurrence and development of certain renal diseases. Lysosomal structure and function in intrinsic renal cells are impaired in diabetic kidney disease (DKD). Promoting lysosomal biosynthesis and/or restoring lysosomal function can repair damaged podocytes and proximal tubular epithelial cells, and delay the progression of DKD. Lysosomal homeostasis maintenance may be advantageous in alleviating DKD. Here, we systematically reviewed the latest advances in the relationship between lysosomal dyshomeostasis and progression of DKD based on recent literature to further elucidate the mechanism of renal injury in diabetes mellitus and to highlight the application potential of lysosomal homeostasis maintenance as a new prevention and treatment strategy for DKD. However, research on screening effective interventions for lysosomal dyshomeostasis is still in its infancy, and thus should be the focus of future research studies. The screening out of cell-specific lysosomal function regulation targets according to the different stages of DKD, so as to realize the controllable targeted regulation of cell lysosomal function during DKD, is the key to the successful clinical development of this therapeutic strategy.


Subject(s)
Diabetic Nephropathies/pathology , Disease Progression , Homeostasis , Lysosomes/metabolism , Animals , Autophagy , Humans , Podocytes/enzymology , Podocytes/pathology
5.
Biomed Pharmacother ; 144: 112349, 2021 Dec.
Article in English | MEDLINE | ID: mdl-34700229

ABSTRACT

Membranous nephropathy (MN) is the most common cause of nephrotic syndrome in adults without diabetes. Primary MN has been associated with circulating antibodies against native podocyte antigens, including phospholipase A2 receptor (PLA2R); however, precision therapy targeting the signaling cascade of PLA2R activation is lacking. Both PLA2R and the mammalian target of rapamycin (mTOR) exist in podocytes, but the interplay between these two proteins and their roles in MN warrants further exploration. This study aimed to investigate the crosstalk between PLA2R activation and mTOR signaling in a human podocyte cell line. We demonstrated that podocyte apoptosis was induced by Group IB secretory phospholipase A2 (sPLA2IB) in a concentration- and time-dependent manner via upregulation of phosphoinositide 3-kinase (PI3K), protein kinase B (AKT), and mTOR, and inhibited by rapamycin or LY294002. Furthermore, aberrant activation of the PI3K/AKT/mTOR pathway triggers both extrinsic (caspase-8 and caspase-3) and intrinsic (Bcl-2-associated X protein [BAX], B-cell lymphoma 2 [BCL-2], cytochrome c, caspase-9, and caspase-3) apoptotic cascades in podocytes. The therapeutic implications of our findings are that strategies to reduce PLA2R activation and PI3K/AKT/mTOR pathway inhibition in PLA2R-activated podocytes help protect podocytes from apoptosis. The therapeutic potential of rapamycin shown in this study provides cellular evidence supporting the repurposing of rapamycin for MN treatment.


Subject(s)
Apoptosis/drug effects , Glomerulonephritis, Membranous/drug therapy , MTOR Inhibitors/pharmacology , Phosphatidylinositol 3-Kinase/metabolism , Podocytes/drug effects , Proto-Oncogene Proteins c-akt/metabolism , Receptors, Phospholipase A2/metabolism , Sirolimus/pharmacology , TOR Serine-Threonine Kinases/antagonists & inhibitors , Apoptosis Regulatory Proteins/metabolism , Cell Line , Enzyme Activation , Glomerulonephritis, Membranous/enzymology , Glomerulonephritis, Membranous/pathology , Humans , Podocytes/enzymology , Podocytes/pathology , Signal Transduction , TOR Serine-Threonine Kinases/metabolism
6.
Am J Physiol Renal Physiol ; 321(5): F659-F673, 2021 11 01.
Article in English | MEDLINE | ID: mdl-34569252

ABSTRACT

Since previous research suggests a role of a circulating factor in the pathogenesis of steroid-sensitive nephrotic syndrome (NS), we speculated that circulating plasma extracellular vesicles (EVs) are a candidate source of such a soluble mediator. Here, we aimed to characterize and try to delineate the effects of these EVs in vitro. Plasma EVs from 20 children with steroid-sensitive NS in relapse and remission, 10 healthy controls, and 6 disease controls were obtained by serial ultracentrifugation. Characterization of these EVs was performed by electron microscopy, flow cytometry, and Western blot analysis. Major proteins from plasma EVs were identified via mass spectrometry. Gene Ontology classification analysis and Ingenuity Pathway Analysis were performed on selectively expressed EV proteins during relapse. Immortalized human podocyte culture was used to detect the effects of EVs on podocytes. The protein content and particle number of plasma EVs were significantly increased during NS relapse. Relapse NS EVs selectively expressed proteins that involved actin cytoskeleton rearrangement. Among these, the level of RAC-GTP was significantly increased in relapse EVs compared with remission and disease control EVs. Relapse EVs were efficiently internalized by podocytes and induced significantly enhanced motility and albumin permeability. Moreover, relapse EVs induced significantly higher levels of RAC-GTP and phospho-p38 and decreased the levels of synaptopodin in podocytes. Circulating relapse EVs are biologically active molecules that carry active RAC1 as cargo and induce recapitulation of the NS phenotype in podocytes in vitro.NEW & NOTEWORTHY Up to now, the role of extracellular vesicles (EVs) in the pathogenesis of steroid-sensitive nephrotic syndrome (NS) has not been studied. Here, we found that relapse NS EVs contain significantly increased active RAC1, induce enhanced podocyte motility, and increase expression of RAC-GTP and phospho-p38 expression in vitro. These results suggest that plasma EVs are biologically active molecules in the pathogenesis of NS.


Subject(s)
Extracellular Vesicles/enzymology , Nephrotic Syndrome/enzymology , Podocytes/enzymology , rac1 GTP-Binding Protein/blood , Adolescent , Case-Control Studies , Cell Line , Child , Child, Preschool , Extracellular Vesicles/ultrastructure , Female , Humans , Male , Microfilament Proteins/metabolism , Nephrotic Syndrome/blood , Nephrotic Syndrome/drug therapy , Nephrotic Syndrome/pathology , Phenotype , Phosphorylation , Podocytes/pathology , Recurrence , Remission Induction , Steroids/therapeutic use , Treatment Outcome , p38 Mitogen-Activated Protein Kinases/metabolism
8.
Ren Fail ; 43(1): 968-979, 2021 Dec.
Article in English | MEDLINE | ID: mdl-34157937

ABSTRACT

AIM: Podocyte injury plays an important role in diabetic nephropathy (DN), yet the underlying molecular mechanisms of podocyte injury in DN is not clear. Here, we investigated the role of activating transcription factor 4 (ATF4) and HO-1 in DN-induced podocyte injury. METHODS: Protein expression was measured by western blotting (WB) and immunofluorescence. Cellular apoptosis was quantified by flow cytometry. ATF4 siRNA knockdown and HO-1 overexpression in podocyte were employed to evaluate the role of ER stress in DN-induced apoptosis and autophagy response. Urinary protein levels, nephrin expression, serum creatinine and BUN were evaluated and glomerulosclerosis was quantified by Periodic Acid-Schiff staining. RESULTS: Expression of ATF4 was increased in podocytes exposed to serum from DN mice. ATF4 knockdown enhanced DN-induced podocyte apoptosis. HO-1 overexpression reduced the decline of DN-induced podocyte autophagy and inhibited apoptosis and the beneficial effects of HO-1 overexpression in DN were blocked by ATF4 knockdown. The diabetic mice were significantly ameliorated by HO-1 agonist hemin treatment. CONCLUSIONS: ATF4 induces autophagy by enhancing the expression of HO-1, and inhibits podocyte apoptosis in DN. Treatment with the HO-1 agonist reduced proteinuria, apoptosis, and enhanced autophagy response, and thus improved renal function in DN mice.


Subject(s)
Activating Transcription Factor 4/metabolism , Autophagy/drug effects , Glucose/pharmacology , Heme Oxygenase-1/metabolism , Podocytes/pathology , Activating Transcription Factor 4/genetics , Animals , Apoptosis/drug effects , Diabetes Mellitus, Experimental/metabolism , Diabetic Nephropathies/metabolism , Heme Oxygenase-1/antagonists & inhibitors , Heme Oxygenase-1/genetics , Male , Mice , Podocytes/drug effects , Podocytes/enzymology , Proteinuria/drug therapy , RNA, Small Interfering/genetics , Signal Transduction/drug effects
9.
Int J Mol Sci ; 22(7)2021 Apr 01.
Article in English | MEDLINE | ID: mdl-33915776

ABSTRACT

The first step of urine formation is the selective filtration of the plasma into the urinary space at the kidney structure called the glomerulus. The filtration barrier of the glomerulus allows blood cells and large proteins such as albumin to be retained while eliminating the waste products of the body. The filtration barrier consists of three layers: fenestrated endothelial cells, glomerular basement membrane, and podocytes. Podocytes are specialized epithelial cells featured by numerous, actin-based projections called foot processes. Proteins on the foot process membrane are connected to the well-organized intracellular actin network. The Rho family of small GTPases (Rho GTPases) act as intracellular molecular switches. They tightly regulate actin dynamics and subsequent diverse cellular functions such as adhesion, migration, and spreading. Previous studies using podocyte-specific transgenic or knockout animal models have established that Rho GTPases are crucial for the podocyte health and barrier function. However, little attention has been paid regarding subcellular locations where distinct Rho GTPases contribute to specific functions. In the current review, we discuss cellular events involving the prototypical Rho GTPases (RhoA, Rac1, and Cdc42) in podocytes, with particular focus on the subcellular compartments where the signaling events occur. We also provide our synthesized views of the current understanding and propose future research directions.


Subject(s)
Podocytes/enzymology , rho GTP-Binding Proteins/metabolism , Actin Cytoskeleton/metabolism , Animals , Cell Membrane/metabolism , Humans
10.
J Diabetes Res ; 2021: 9570405, 2021.
Article in English | MEDLINE | ID: mdl-33778085

ABSTRACT

OBJECTIVE: Abnormal signaling pathways play a crucial role in the mechanisms of podocyte injury in diabetic nephropathy. They also affect the recovery of podocytes after islet transplantation (IT). However, the specific signaling abnormalities that affect the therapeutic effect of IT on podocytes remains unclear. The purpose of this study was to assess whether the RhoA/ROCK/NF-κB signaling pathway is related to podocyte restoration after IT. METHODS: A mouse model of diabetic nephropathy was established in vivo using streptozotocin. The mice were then subsequently reared for 4 weeks after islet transplantation to determine the effect of IT. Islet cells, CCG-1423 (RhoA Inhibitor), and fasudil (ROCK inhibitor) were then cocultured with podocytes in vitro to assess their protective effects on podocyte injury induced by high glucose (HG). Protein expression levels of RhoA, ROCK1, synaptopodin, IL-6, and MCP-1 in kidney tissues were then measured using immunohistochemistry and Western blotting techniques. RESULTS: Islet transplantation reduced the expression levels of RhoA/ROCK1 and that of related inflammatory factors such as IL-6 and MCP-1 in the kidney podocytes of diabetic nephropathy. In the same line, islet cells reduced the expression of RhoA, ROCK1, and pp65 in immortalized podocytes under high glucose (35.0 mmol/L glucose) conditions. CONCLUSIONS: Islet transplantation can reverse podocyte injury in diabetes nephropathy by inhibiting the RhoA/ROCK1 signaling pathway. Islet cells have a strong protective effect on podocytes treated with high glucose (35.0 mmol/L glucose). Discovery of signaling pathways affecting podocyte recovery is helpful for individualized efficacy evaluation and targeted therapy of islet transplantation patients.


Subject(s)
Blood Glucose/metabolism , Diabetic Nephropathies/surgery , Islets of Langerhans Transplantation , NF-kappa B/metabolism , Podocytes/enzymology , rho-Associated Kinases/metabolism , rhoA GTP-Binding Protein/metabolism , Animals , Cell Line , Coculture Techniques , Cytokines/metabolism , Diabetic Nephropathies/enzymology , Diabetic Nephropathies/pathology , Disease Models, Animal , Inflammation Mediators/metabolism , Male , Mice, Inbred C57BL , Podocytes/pathology , Signal Transduction
11.
J Diabetes Res ; 2021: 5597394, 2021.
Article in English | MEDLINE | ID: mdl-33748285

ABSTRACT

OBJECTIVE: Microinflammation plays a crucial role in podocyte dysfunction in diabetic nephropathy, but its regulatory mechanism is still unclear. This study is aimed at discussing the mechanisms underlying the effect of miRNA-155 on podocyte injury to determine its potential as a therapeutic target. METHODS: Cultured immortalized mouse podocytes and diabetic KK-Ay mice models were treated with a miR-155 inhibitor. Western blotting, real-time PCR, ELISA, immunofluorescence, and Luciferase reporter assay were used to analyze markers of inflammation cytokines and podocyte injury. RESULTS: miRNA-155 was found to be highly expressed in serum and kidney tissue of mice with diabetic nephropathy and in cultured podocytes, accompanied by elevated levels of inflammatory factors. Inhibition of miRNA-155 can reduce proteinuria and ACR levels, diminish the secretion of inflammatory molecules, improve kidney function, inhibit podocyte foot fusion, and reverse renal pathological changes in diabetic nephropathy mice. Overexpression of miRNA-155 in vitro can increase inflammatory molecule production in podocytes and aggravates podocyte injury, while miRNA-155 inhibition suppresses inflammatory molecule production in podocytes and reduces podocyte injury. A luciferase assay confirmed that miRNA-155 could selectively bind to 3'-UTR of SIRT1, resulting in decreased SIRT1 expression. In addition, SIRT1 siRNA could offset SIRT1 upregulation and enhance inflammatory factor secretion in podocytes, induced by the miRNA-155 inhibitor. CONCLUSIONS: These findings strongly support the hypothesis that miRNA-155 inhibits podocyte inflammation and reduces podocyte injury through SIRT1 silencing. miRNA-155 suppression therapy may be useful for the management of diabetic nephropathy.


Subject(s)
Anti-Inflammatory Agents/pharmacology , Blood Glucose/metabolism , Cytokines/metabolism , Diabetic Nephropathies/prevention & control , Inflammation Mediators/metabolism , MicroRNAs/antagonists & inhibitors , Oligonucleotides/pharmacology , Podocytes/drug effects , Sirtuin 1/metabolism , 3' Untranslated Regions , Animals , Binding Sites , Diabetic Nephropathies/blood , Diabetic Nephropathies/enzymology , Diabetic Nephropathies/immunology , Disease Models, Animal , Gene Expression Regulation, Enzymologic , HEK293 Cells , Humans , Mice, Inbred C57BL , MicroRNAs/genetics , MicroRNAs/metabolism , Podocytes/enzymology , Podocytes/immunology , Signal Transduction , Sirtuin 1/genetics
12.
J Am Soc Nephrol ; 32(3): 597-613, 2021 03.
Article in English | MEDLINE | ID: mdl-33510039

ABSTRACT

BACKGROUND: The ubiquitin-proteasome system (UPS) and the autophagy-lysosomal system (APLS) are major intracellular degradation procedures. The importance of the APLS in podocytes is established, but the role of the UPS is not well understood. METHODS: To investigate the role of the UPS in podocytes, mice were generated that had deletion of Rpt3 (Rpt3pdKO), which encodes an essential regulatory subunit required for construction of the 26S proteasome and its deubiquitinating function. RESULTS: Rpt3pdKO mice showed albuminuria and glomerulosclerosis, leading to CKD. Impairment of proteasome function caused accumulation of ubiquitinated proteins and of oxidative modified proteins, and it induced podocyte apoptosis. Although impairment of proteasome function normally induces autophagic activity, the number of autophagosomes was lower in podocytes of Rpt3pdKO mice than in control mice, suggesting the autophagic activity was suppressed in podocytes with impairment of proteasome function. In an in vitro study, antioxidant apocynin and autophagy activator rapamycin suppressed podocyte apoptosis induced by proteasome inhibition. Moreover, rapamycin ameliorated the glomerular injury in the Rpt3pdKO mice. The accumulation of ubiquitinated proteins and of oxidative modified proteins, which were detected in the podocytes of Rpt3pdKO mice, is a characteristic feature of aging. An aging marker was increased in the podocytes of Rpt3pdKO mice, suggesting that impairment of proteasome function promoted signs of aging in podocytes. CONCLUSIONS: Impairment of proteasome function in podocytes led to CKD, and antioxidants and autophagy activators can be therapeutic agents for age-dependent CKD.


Subject(s)
Podocytes/enzymology , Proteasome Endopeptidase Complex/deficiency , Renal Insufficiency, Chronic/enzymology , Renal Insufficiency, Chronic/etiology , Aging/metabolism , Aging/pathology , Animals , Apoptosis/drug effects , Autophagy , Bortezomib/pharmacology , Cells, Cultured , Glomerulosclerosis, Focal Segmental/enzymology , Glomerulosclerosis, Focal Segmental/etiology , Glomerulosclerosis, Focal Segmental/pathology , Lysosomes/metabolism , Mice , Mice, Inbred C57BL , Mice, Knockout , Oxidation-Reduction , Podocytes/drug effects , Podocytes/pathology , Proteasome Endopeptidase Complex/genetics , Proteasome Inhibitors/pharmacology , Protein Aggregates , Renal Insufficiency, Chronic/pathology , Sirolimus/pharmacology , Ubiquitination
13.
J Cell Physiol ; 236(6): 4655-4668, 2021 06.
Article in English | MEDLINE | ID: mdl-33244808

ABSTRACT

Insulin plays a major role in regulating glucose homeostasis in podocytes. Protein kinase G type Iα (PKGIα) plays an important role in regulating glucose uptake in these cells. Rac1 signaling plays an essential role in the reorganization of the actin cytoskeleton and is also essential for insulin-stimulated glucose transport. The experiments were conducted using primary rat podocytes. We performed western blot analysis, evaluated small GTPases activity assays, measured radioactive glucose uptake, and performed immunofluorescence imaging to analyze the role of PKGIα-Rac1 signaling in regulating podocyte function. We also utilized a small-interfering RNA-mediated approach to determine the role of PKGIα and Rac1 in regulating glucose uptake in podocytes. The present study investigated the influence of the PKGI pathway on the insulin-dependent regulation of activity and cellular localization of small guanosine triphosphatases in podocytes. We found that the PKGIα-dependent activation of Rac1 signaling induced activation of the PAK/cofilin pathway and increased insulin-mediated glucose uptake in podocytes. The downregulation of PKGIα or Rac1 expression abolished this effect. Rac1 silencing prevented actin remodeling and GLUT4 translocation close to the cell membrane. These data provide evidence that PKGIα-dependent activation of the Rac1 signaling pathways is a novel regulator of insulin-mediated glucose uptake in cultured rat podocytes.


Subject(s)
Cyclic GMP-Dependent Protein Kinase Type I/metabolism , Glucose Transporter Type 4/metabolism , Glucose/metabolism , Hypoglycemic Agents/pharmacology , Insulin/pharmacology , Podocytes/drug effects , rac1 GTP-Binding Protein/metabolism , Actin Cytoskeleton/metabolism , Actin Depolymerizing Factors/metabolism , Animals , Cells, Cultured , Cyclic GMP-Dependent Protein Kinase Type I/genetics , Female , Podocytes/enzymology , Protein Transport , Rats, Wistar , Signal Transduction , p21-Activated Kinases/metabolism , rac1 GTP-Binding Protein/genetics
14.
Arch Biochem Biophys ; 692: 108541, 2020 10 15.
Article in English | MEDLINE | ID: mdl-32781053

ABSTRACT

Podocytes are unique, highly specialized, terminally differentiated cells that form an essential, integral part of the glomerular filter. These cells limit the outside border of the glomerular basement membrane, forming a tight barrier that prevents significant protein loss from the capillary space. The slit diaphragm formed by podocytes is crucial for maintaining glomerular integrity and function. They are the target of injury in many glomerular diseases, including hypertension and diabetes mellitus. Accumulating studies have revealed that AMP-activated protein kinase (AMPK), an essential cellular energy sensor, might play a fundamental role in regulating podocyte metabolism and function. AMPK participates in insulin signaling, therefore controls glucose uptake and podocytes insulin sensitivity. It is also involved in insulin-dependent cytoskeleton reorganization in podocytes, mediating glomerular albumin permeability. AMPK plays an important role in the regulation of autophagy/apoptosis processes, which influence podocytes viability. The present review aimed to highlight the molecular mechanisms associated with AMPK that are involved in the regulation of podocyte function in health and disease states.


Subject(s)
AMP-Activated Protein Kinases/metabolism , Diabetic Nephropathies/enzymology , Insulin Resistance , Podocytes/enzymology , Signal Transduction , Animals , Apoptosis , Autophagy , Diabetic Nephropathies/pathology , Humans , Insulin/metabolism , Kidney Glomerulus/enzymology , Kidney Glomerulus/pathology , Podocytes/pathology
15.
Cell Death Dis ; 11(5): 355, 2020 05 11.
Article in English | MEDLINE | ID: mdl-32393782

ABSTRACT

Podocytes, a type of highly specialized epithelial cells, require substantial levels of energy to maintain glomerular integrity and function, but little is known on the regulation of podocytes' energetics. Lack of metabolic analysis during podocyte development led us to explore the distribution of mitochondrial oxidative phosphorylation and glycolysis, the two major pathways of cell metabolism, in cultured podocytes during in vitro differentiation. Unexpectedly, we observed a stronger glycolytic profile, accompanied by an increased mitochondrial complexity in differentiated podocytes, indicating that mature podocytes boost both glycolysis and mitochondrial metabolism to meet their augmented energy demands. In addition, we found a shift of predominant energy source from anaerobic glycolysis in immature podocyte to oxidative phosphorylation during the differentiation process. Furthermore, we identified a crucial metabolic regulator for podocyte development, pyruvate kinase M2. Pkm2-knockdown podocytes showed dramatic reduction of energy metabolism, resulting in defects of cell differentiation. Meanwhile, podocyte-specific Pkm2-knockout (KO) mice developed worse albuminuria and podocyte injury after adriamycin treatment. We identified mammalian target of rapamycin (mTOR) as a critical regulator of PKM2 during podocyte development. Pharmacological inhibition of mTOR potently abrogated PKM2 expression and disrupted cell differentiation, indicating the existence of metabolic checkpoint that need to be satisfied in order to allow podocyte differentiation.


Subject(s)
Cell Differentiation , Cellular Reprogramming , Energy Metabolism , Podocytes/enzymology , Pyruvate Kinase/metabolism , Albuminuria/chemically induced , Albuminuria/enzymology , Albuminuria/pathology , Animals , Cell Differentiation/drug effects , Cell Line , Cellular Reprogramming/drug effects , Doxorubicin/toxicity , Energy Metabolism/drug effects , Male , Metabolome , Mice, Inbred C57BL , Mice, Knockout , Podocytes/drug effects , Podocytes/pathology , Pyruvate Kinase/deficiency , Pyruvate Kinase/genetics , TOR Serine-Threonine Kinases/metabolism
16.
J Am Soc Nephrol ; 31(6): 1191-1211, 2020 06.
Article in English | MEDLINE | ID: mdl-32381600

ABSTRACT

BACKGROUND: Mutations in ADCK4 (aarF domain containing kinase 4) generally manifest as steroid-resistant nephrotic syndrome and induce coenzyme Q10 (CoQ10) deficiency. However, the molecular mechanisms underlying steroid-resistant nephrotic syndrome resulting from ADCK4 mutations are not well understood, largely because the function of ADCK4 remains unknown. METHODS: To elucidate the ADCK4's function in podocytes, we generated a podocyte-specific, Adck4-knockout mouse model and a human podocyte cell line featuring knockout of ADCK4. These knockout mice and podocytes were then treated with 2,4-dihydroxybenzoic acid (2,4-diHB), a CoQ10 precursor analogue, or with a vehicle only. We also performed proteomic mass spectrometry analysis to further elucidate ADCK4's function. RESULTS: Absence of Adck4 in mouse podocytes caused FSGS and albuminuria, recapitulating features of nephrotic syndrome caused by ADCK4 mutations. In vitro studies revealed that ADCK4-knockout podocytes had significantly reduced CoQ10 concentration, respiratory chain activity, and mitochondrial potential, and subsequently displayed an increase in the number of dysmorphic mitochondria. However, treatment of 3-month-old knockout mice or ADCK4-knockout cells with 2,4-diHB prevented the development of renal dysfunction and reversed mitochondrial dysfunction in podocytes. Moreover, ADCK4 interacted with mitochondrial proteins such as COQ5, as well as cytoplasmic proteins such as myosin and heat shock proteins. Thus, ADCK4 knockout decreased the COQ complex level, but overexpression of ADCK4 in ADCK4-knockout podocytes transfected with wild-type ADCK4 rescued the COQ5 level. CONCLUSIONS: Our study shows that ADCK4 is required for CoQ10 biosynthesis and mitochondrial function in podocytes, and suggests that ADCK4 in podocytes stabilizes proteins in complex Q in podocytes. Our study also suggests a potential treatment strategy for nephrotic syndrome resulting from ADCK4 mutations.


Subject(s)
Hydroxybenzoates/pharmacology , Protein Kinases/physiology , Ubiquinone/analogs & derivatives , Animals , Enzyme Stability , Glomerulosclerosis, Focal Segmental/etiology , HEK293 Cells , Humans , Methyltransferases/metabolism , Mice , Mice, Inbred C57BL , Mitochondria/physiology , Mitochondrial Proteins/metabolism , Podocytes/enzymology , Ubiquinone/metabolism
17.
Am J Physiol Renal Physiol ; 318(6): F1377-F1390, 2020 06 01.
Article in English | MEDLINE | ID: mdl-32308020

ABSTRACT

Ste20-like kinase SLK is critical for embryonic development and may play an important role in wound healing, muscle homeostasis, cell migration, and tumor growth. Mice with podocyte-specific deletion of SLK show albuminuria and damage to podocytes as they age. The present study addressed the role of SLK in glomerular injury. We induced adriamycin nephrosis in 3- to 4-mo-old control and podocyte SLK knockout (KO) mice. Compared with control, SLK deletion exacerbated albuminuria and loss of podocytes, synaptopodin, and podocalyxin. Glomeruli of adriamycin-treated SLK KO mice showed diffuse increases in the matrix and sclerosis as well as collapse of the actin cytoskeleton. SLK can phosphorylate ezrin. The complex of phospho-ezrin, Na+/H+ exchanger regulatory factor 2, and podocalyxin in the apical domain of the podocyte is a key determinant of normal podocyte architecture. Deletion of SLK reduced glomerular ezrin and ezrin phosphorylation in adriamycin nephrosis. Also, deletion of SLK reduced the colocalization of ezrin and podocalyxin in the glomerulus. Cultured glomerular epithelial cells with KO of SLK showed reduced ezrin phosphorylation and podocalyxin expression as well as reduced F-actin. Thus, SLK deletion leads to podocyte injury as mice age and exacerbates injury in adriamycin nephrosis. The mechanism may at least in part involve ezrin phosphorylation as well as disruption of the cytoskeleton and podocyte apical membrane structure.


Subject(s)
Actin Cytoskeleton/enzymology , Doxorubicin , Glomerulosclerosis, Focal Segmental/enzymology , Nephrosis/enzymology , Podocytes/enzymology , Protein Serine-Threonine Kinases/deficiency , Actin Cytoskeleton/pathology , Actins/metabolism , Albuminuria/chemically induced , Albuminuria/enzymology , Albuminuria/genetics , Animals , Cells, Cultured , Cytoskeletal Proteins/metabolism , Disease Models, Animal , Gene Knockdown Techniques , Glomerulosclerosis, Focal Segmental/chemically induced , Glomerulosclerosis, Focal Segmental/genetics , Glomerulosclerosis, Focal Segmental/pathology , Mice, Knockout , Microfilament Proteins/metabolism , Nephrosis/chemically induced , Nephrosis/genetics , Nephrosis/pathology , Phosphoproteins/metabolism , Phosphorylation , Podocytes/pathology , Protein Serine-Threonine Kinases/genetics , Proteins/metabolism , Sodium-Hydrogen Exchangers/metabolism
18.
BMC Mol Cell Biol ; 21(1): 4, 2020 Feb 03.
Article in English | MEDLINE | ID: mdl-32013860

ABSTRACT

BACKGROUND: PM2.5 is associated closely with an increased risk of membranous nephropathy (MN), however, whether PM2.5 could induce podocytes injury, the underlying pathology for MN, has not be thoroughly studied. Triptolide, an active component in Tripterygium wilfordii Hook F, is frequently used to treat MN in China, but its effects on PM2.5-induced podocytes injury is still largely unknown. Therefore, we evaluated the effects of PM2.5 on podocytes, and explored whether triptolide could improve PM2.5-induced podocytes injury and the possible underlying mechanisms. RESULTS: Podocytes were incubated with PM2.5 after being pre-treated with triptolide, viability, apoptosis rate and migratory capacity of podocytes were determined by CCK-8 assay, flow cytometry and Transwell assay, respectively. Additionally, the levels of lactate dehydrogenase (LDH), malondialdehyde (MDA), and superoxide dismutase (SOD) in podocytes, the cytoskeleton of podocytes, the protein expressions of nephrin, podocin, Bcl-2, Bax, nuclear factor kappa-B/p65 (NF-κB/p65) and phospho-inhibitor of NF-κB (p-IκBα) were measured. Our data showed that PM2.5 treatment significantly increased the disorganization of F-actin stress fibers, the damaged structural integrity of nucleus, the deranged and dissociated cytoskeleton in podocytes, increased the podocytes apoptosis rate, the levels of MDA and LDH, markedly up-regulated the protein expression of Bax, NF-κB/p65 and p-IκBα, down-regulated the protein expression of nephrin, podocin and Bcl-2, and significantly decreased the level of SOD, the migration rate and the viability of podocytes, compared with those of the untreated podocytes. These effects of PM2.5 on podocytes, however, were reversed by triptolide administration. CONCLUSION: These results suggest that triptolide could prevent against PM2.5-induced podocytes injury via suppressing NF-κB signaling pathway.


Subject(s)
Diterpenes/pharmacology , NF-kappa B/metabolism , Particulate Matter/toxicity , Phenanthrenes/pharmacology , Podocytes/drug effects , Tripterygium/chemistry , Animals , Apoptosis/drug effects , Cell Line , Cell Movement/drug effects , Cell Survival/drug effects , Cytoskeleton/metabolism , Drugs, Chinese Herbal/pharmacology , Epoxy Compounds/pharmacology , Intracellular Signaling Peptides and Proteins/metabolism , L-Lactate Dehydrogenase/metabolism , Malondialdehyde/metabolism , Membrane Proteins/metabolism , Mice , NF-kappa B/antagonists & inhibitors , Podocytes/enzymology , Podocytes/pathology , Proto-Oncogene Proteins c-bcl-2/metabolism , Signal Transduction/drug effects , Superoxide Dismutase/metabolism , bcl-2-Associated X Protein/metabolism
19.
J Diabetes Res ; 2019: 9512406, 2019.
Article in English | MEDLINE | ID: mdl-31886291

ABSTRACT

Diabetic nephropathy (DN) is the leading cause of end-stage renal disease (ESRD). The ROS-mediated PI3K/AKT pathway plays a key role in podocyte apoptosis and DN progression. Our previous study demonstrated that Baoshenfang (BSF) can decrease proteinuria and attenuate podocyte injury. However, the effects of BSF on podocyte apoptosis induced by the ROS-mediated PI3K/AKT pathway remain unclear. Herein, in vivo and in vitro studies have been performed. In our in vivo study, BSF significantly decreased 24-h urinary protein, serum creatinine, and blood urea nitrogen levels in DN mice. Meanwhile, BSF significantly inhibited oxidative stress and podocyte apoptosis in our in vivo and in vitro studies. Moreover, BSF significantly decreased the inhibition of the PI3K/AKT pathway induced by HG in DN. More importantly, the effects of BSF on podocyte apoptosis were reversed by PI3K siRNA transfection. In conclusion, BSF can decrease proteinuria and podocyte apoptosis in DN, in part through regulating the ROS-mediated PI3K/AKT pathway.


Subject(s)
Antioxidants/pharmacology , Apoptosis/drug effects , Diabetic Nephropathies/drug therapy , Drugs, Chinese Herbal/pharmacology , Oxidative Stress/drug effects , Podocytes/drug effects , Proto-Oncogene Proteins c-akt/metabolism , Reactive Oxygen Species/metabolism , Animals , Apoptosis Regulatory Proteins/genetics , Apoptosis Regulatory Proteins/metabolism , Cell Line , Diabetic Nephropathies/enzymology , Diabetic Nephropathies/pathology , Disease Models, Animal , Glucose/toxicity , Male , Mice, Inbred C57BL , NADPH Oxidase 4/genetics , NADPH Oxidase 4/metabolism , Phosphatidylinositol 3-Kinase/genetics , Phosphatidylinositol 3-Kinase/metabolism , Phosphorylation , Podocytes/enzymology , Podocytes/pathology , Proteinuria/enzymology , Proteinuria/pathology , Proteinuria/prevention & control , Rats, Sprague-Dawley , Signal Transduction
20.
Biomed Res Int ; 2019: 4508048, 2019.
Article in English | MEDLINE | ID: mdl-31428635

ABSTRACT

The 6-O-endosulfatases (sulfs) are important enzymatic components involved in the regulation of heparan sulfate by altering the sulfatation pattern. Specifically in the kidney, sulfs have been implicated in the glomerular podocyte-endothelial cell crosstalk and in the preservation of the glomerular filtration barrier (GFB) in different mouse models. Since it has been shown that in zebrafish larvae, Sulf1, Sulf2a, and Sulf2b are expressed in the pronephric kidney we set out to establish if a reduction in sulf expression leads to GFB dysfunction. Here, we show that a reduced sulf expression following morpholino (MO) induced knockdown in zebrafish larvae promotes damage to the GFB leading to renal plasma protein loss from the circulation. Moreover, a combined knockdown of Sulf1, Sulf2a, and Sulf2b is associated with severe morphologic changes including narrowing of the fenestration between glomerular endothelial cells as well as thickening of the glomerular basement membrane and podocyte foot process effacement, suggesting that glomerular damage is an underlying cause of the circulatory protein loss observed after MO injection. Additionally, we show that a decrease in sulf expression reduces the bioavailability of VegfA in the glomerulus of the pronephros, which may contribute to the structural changes observed in the glomeruli of morphant fish. Furthermore, consistent with previous results, knockdown of the sulfs is associated with arteriovenous malformations in particular in the tail region of the larvae. Overall, taken together our results suggest that 6-O-endosulfatases are important in the preservation of GFB integrity and a reduction in their expression levels induces phenotypic changes that are indicative of renal protein loss.


Subject(s)
Glomerular Basement Membrane/embryology , Podocytes/enzymology , Sulfatases/biosynthesis , Zebrafish Proteins/biosynthesis , Zebrafish/embryology , Animals , Endothelial Cells/enzymology , Gene Expression Regulation, Developmental/drug effects , Gene Expression Regulation, Enzymologic/drug effects , Gene Knockdown Techniques , Morpholinos/pharmacology , Sulfatases/genetics , Zebrafish/genetics , Zebrafish Proteins/genetics
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