56 research outputs found
Lipotoxicity and β-Cell Failure in Type 2 Diabetes: Oxidative Stress Linked to NADPH Oxidase and ER Stress
A high caloric intake, rich in saturated fats, greatly contributes to the development of
obesity, which is the leading risk factor for type 2 diabetes (T2D). A persistent caloric surplus
increases plasma levels of fatty acids (FAs), especially saturated ones, which were shown to negatively
impact pancreatic β-cell function and survival in a process called lipotoxicity. Lipotoxicity in β cells activates different stress pathways, culminating in β-cells dysfunction and death. Among all
stresses, endoplasmic reticulum (ER) stress and oxidative stress have been shown to be strongly
correlated. One main source of oxidative stress in pancreatic β-cells appears to be the reactive oxygen
species producer NADPH oxidase (NOX) enzyme, which has a role in the glucose-stimulated insulin
secretion and in the β-cell demise during both T1 and T2D. In this review, we focus on the acute
and chronic effects of FAs and the lipotoxicity-induced β-cell failure during T2D development, with
special emphasis on the oxidative stress induced by NOX, the ER stress, and the crosstalk between
NOX and ER stress
Early Cytokine-Induced Transient NOX2 Activity Is ER Stress-Dependent and Impacts β-Cell Function and Survival
In type 1 diabetes (T1D) development, proinflammatory cytokines (PIC) released by
immune cells lead to increased reactive oxygen species (ROS) production in β-cells. Nonetheless, the
temporality of the events triggered and the role of different ROS sources remain unclear. Isolated islets
from C57BL/6J wild-type (WT), NOX1 KO and NOX2 KO mice were exposed to a PIC combination.
We show that cytokines increase O2
•− production after 2 h in WT and NOX1 KO but not in NOX2 KO
islets. Using transgenic mice constitutively expressing a genetically encoded compartment specific
H2O2 sensor, we show, for the first time, a transient increase of cytosolic/nuclear H2O2
in islet cells
between 4 and 5 h during cytokine exposure. The H2O2
increase coincides with the intracellular
NAD(P)H decrease and is absent in NOX2 KO islets. NOX2 KO confers better glucose tolerance and
protects against cytokine-induced islet secretory dysfunction and death. However, NOX2 absence
does not counteract the cytokine effects in ER Ca2+ depletion, Store-Operated Calcium Entry (SOCE)
increase and ER stress. Instead, the activation of ER stress precedes H2O2 production. As early
NOX2-driven ROS production impacts β-cells’ function and survival during insulitis, NOX2 might be
a potential target for designing therapies against early β-cell dysfunction in the context of T1D onset
Prolactin protects against cytokine-induced beta-cell death by NFκB and JNK inhibition
FUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAULO - FAPESPCONSELHO NACIONAL DE DESENVOLVIMENTO CIENTÍFICO E TECNOLÓGICO - CNPQCOORDENAÇÃO DE APERFEIÇOAMENTO DE PESSOAL DE NÍVEL SUPERIOR - CAPESType 1 diabetes is caused by an autoimmune assault that induces progressive beta-cell dysfunction and dead. Pro-inflammatory cytokines, such as interleukin 1 beta (IL1B), tumor necrosis factor (TNF) and interferon gamma (IFNG) contribute for beta-cell dea6112536FUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAULO - FAPESPCONSELHO NACIONAL DE DESENVOLVIMENTO CIENTÍFICO E TECNOLÓGICO - CNPQCOORDENAÇÃO DE APERFEIÇOAMENTO DE PESSOAL DE NÍVEL SUPERIOR - CAPESFUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAULO - FAPESPCONSELHO NACIONAL DE DESENVOLVIMENTO CIENTÍFICO E TECNOLÓGICO - CNPQCOORDENAÇÃO DE APERFEIÇOAMENTO DE PESSOAL DE NÍVEL SUPERIOR - CAPESsem informaçãosem informaçãosem informaçãoThe authors thank the personnel from the Laboratory of Endocrine Pancreas and Metabolism (UNICAMP) and ULB Center for Diabetes Research: W O Floriano, J P Agulhari, N Pachera, A Musuaya, M Pangerl, S Mertens and I Millard for excellent technical suppor
Glucagon-Like Peptide-1 Agonists Protect Pancreatic β-Cells From Lipotoxic Endoplasmic Reticulum Stress Through Upregulation of BiP and JunB
Chronic exposure of pancreatic beta-cells to saturated free fatty acids (FFAs) causes endoplasmic reticulum (ER) stress and apoptosis and may contribute to beta-cell loss in type 2 diabetes. Here, we evaluated the molecular mechanisms involved in the protection of beta-cells from lipotoxic ER stress by glucagon-like peptide (GLP)-1 agonists utilized in the treatment of type 2 diabetes.info:eu-repo/semantics/publishe
Metabolic memory of ß-cells controls insulin secretion and is mediated by CaMKII
CNPQ - CONSELHO NACIONAL DE DESENVOLVIMENTO CIENTÍFICO E TECNOLÓGICOFAPESP - FUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAULOFAPESP - FUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAULOFAPESP - FUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAUCa(2+)/calmodulin-dependent protein kinase II (CaMKII) functions both in regulation of insulin secretion and neurotransmitter release through common downstream mediators. Therefore, we hypothesized that pancreatic ß-cells acquire and store the information contained in calcium pulses as a form of metabolic memory, just as neurons store cognitive information. To test this hypothesis, we developed a novel paradigm of pulsed exposure of ß-cells to intervals of high glucose, followed by a 24-h consolidation period to eliminate any acute metabolic effects. Strikingly, ß-cells exposed to this high-glucose pulse paradigm exhibited significantly stronger insulin secretion. This metabolic memory was entirely dependent on CaMKII. Metabolic memory was reflected on the protein level by increased expression of proteins involved in glucose sensing and Ca(2+)-dependent vesicle secretion, and by elevated levels of the key ß-cell transcription factor MAFA. In summary, like neurons, human and mouse ß-cells are able to acquire and retrieve information.Ca 2+ /calmodulin-dependent protein kinase II (CaMKII) functions both in regulation of insulin secretion and neurotransmitter release through common downstream mediators. Therefore, we hypothesized that pancreatic ß-cells acquire and store the information34484489CNPQ - CONSELHO NACIONAL DE DESENVOLVIMENTO CIENTÍFICO E TECNOLÓGICOFAPESP - FUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAULOFAPESP - FUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAULOFAPESP - FUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAUCNPQ - CONSELHO NACIONAL DE DESENVOLVIMENTO CIENTÍFICO E TECNOLÓGICOFAPESP - FUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAULOFAPESP - FUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAULOFAPESP - FUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAUsem informação2011/09012-6; 2013/07607-8 ; 2011/09012-
Cytokines Interleukin-1β and Tumor Necrosis Factor-α Regulate Different Transcriptional and Alternative Splicing Networks in Primary β-Cells
OBJECTIVE: Cytokines contribute to pancreatic beta-cell death in type 1 diabetes. This effect is mediated by complex gene networks that remain to be characterized. We presently utilized array analysis to define the global expression pattern of genes, including spliced variants, modified by the cytokines interleukin (IL)-1beta + interferon (IFN)-gamma and tumor necrosis factor (TNF)-alpha + IFN-gamma in primary rat beta-cells. RESEARCH DESIGN AND METHODS: Fluorescence-activated cell sorter-purified rat beta-cells were exposed to IL-1beta + IFN-gamma or TNF-alpha + IFN-gamma for 6 or 24 h, and global gene expression was analyzed by microarray. Key results were confirmed by RT-PCR, and small-interfering RNAs were used to investigate the mechanistic role of novel and relevant transcription factors identified by pathway analysis. RESULTS Nearly 16,000 transcripts were detected as present in beta-cells, with temporal differences in the number of genes modulated by IL-1beta + IFNgamma or TNF-alpha + IFN-gamma. These cytokine combinations induced differential expression of inflammatory response genes, which is related to differential induction of IFN regulatory factor-7. Both treatments decreased the expression of genes involved in the maintenance of beta-cell phenotype and growth/regeneration. Cytokines induced hypoxia-inducible factor-alpha, which in this context has a proapoptotic role. Cytokines also modified the expression of >20 genes involved in RNA splicing, and exon array analysis showed cytokine-induced changes in alternative splicing of >50% of the cytokine-modified genes. CONCLUSIONS: The present study doubles the number of known genes expressed in primary beta-cells, modified or not by cytokines, and indicates the biological role for several novel cytokine-modified pathways in beta-cells. It also shows that cytokines modify alternative splicing in beta-cells, opening a new avenue of research for the field.Journal ArticleResearch Support, Non-U.S. Gov'tinfo:eu-repo/semantics/publishe
Augmented β-cell function and mass in glucocorticoid-treated rodents are associated with increased islet ir-β /AKT/mTOR and decreased AMPK/ACC and AS160 signaling
FAPESP - FUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAULOCNPQ - CONSELHO NACIONAL DE DESENVOLVIMENTO CIENTÍFICO E TECNOLÓGICOGlucocorticoid (GC) therapies may adversely cause insulin resistance (IR) that lead to a compensatory hyperinsulinemia due to insulin hypersecretion. The increased β-cell function is associated with increased insulin signaling that has the protein kinase B (AKT) substrate with 160 kDa (AS160) as an important downstream AKT effector. In muscle, both insulin and AMP-activated protein kinase (AMPK) signaling phosphorylate and inactivate AS160, which favors the glucose transporter (GLUT)-4 translocation to plasma membrane. Whether AS160 phosphorylation is modulated in islets from GC-treated subjects is unknown. For this, two animal models, Swiss mice and Wistar rats, were treated with dexamethasone (DEX) (1 mg/kg body weight) for 5 consecutive days. DEX treatment induced IR, hyperinsulinemia, and dyslipidemia in both species, but glucose intolerance and hyperglycemia only in rats. DEX treatment caused increased insulin secretion in response to glucose and augmented β-cell mass in both species that were associated with increased islet content and increased phosphorylation of the AS160 protein. Protein AKT phosphorylation, but not AMPK phosphorylation, was found significantly enhanced in islets from DEX-treated animals. We conclude that the augmented β-cell function developed in response to the GC-induced IR involves inhibition of the islet AS160 protein activity.Glucocorticoid (GC) therapies may adversely cause insulin resistance (IR) that lead to a compensatory hyperinsulinemia due to insulin hypersecretion. The increased β-cell function is associated with increased insulin signaling that has the protein kinase2014114FAPESP - FUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAULOCNPQ - CONSELHO NACIONAL DE DESENVOLVIMENTO CIENTÍFICO E TECNOLÓGICOFAPESP - FUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAULOCNPQ - CONSELHO NACIONAL DE DESENVOLVIMENTO CIENTÍFICO E TECNOLÓGICOsem informaçãosem informaçã
MDA5 and PTPN2, two candidate genes for type 1 diabetes, modify pancreatic β-cell responses to the viral by-product double-stranded RNA
β-Cell destruction in type 1 diabetes (T1D) is at least in part consequence of a ‘dialog’ between β-cells and immune system. This dialog may be affected by the individual's genetic background. We presently evaluated whether modulation of MDA5 and PTPN2, two candidate genes for T1D, affects β-cell responses to double-stranded RNA (dsRNA), a by-product of viral replication. These genes were selected following comparison between known candidate genes for T1D and genes expressed in pancreatic β-cells, as identified in previous array analysis. INS-1E cells and primary fluorescence-activated cell sorting-purified rat β-cells were transfected with small interference RNAs (siRNAs) targeting MDA5 or PTPN2 and subsequently exposed to intracellular synthetic dsRNA (polyinosinic–polycitidilic acid—PIC). Real-time RT–PCR, western blot and viability assays were performed to characterize gene/protein expression and viability. PIC increased MDA5 and PTPN2 mRNA expression, which was inhibited by the specific siRNAs. PIC triggered apoptosis in INS-1E and primary β-cells and this was augmented by PTPN2 knockdown (KD), although inhibition of MDA5 did not modify PIC-induced apoptosis. In contrast, MDA5 silencing decreased PIC-induced cytokine and chemokine expression, although inhibition of PTPN2 induced minor or no changes in these inflammatory mediators. These findings indicate that changes in MDA5 and PTPN2 expression modify β-cell responses to dsRNA. MDA5 regulates inflammatory signals, whereas PTPN2 may function as a defence mechanism against pro-apoptotic signals generated by dsRNA. These two candidate genes for T1D may thus modulate β-cell apoptosis and/or local release of inflammatory mediators in the course of a viral infection by acting, at least in part, at the pancreatic β-cell level
JunB Inhibits ER Stress and Apoptosis in Pancreatic Beta Cells
Cytokines contribute to pancreatic β-cell apoptosis in type 1 diabetes (T1D) by modulation of β-cell gene expression networks. The transcription factor Activator Protein-1 (AP-1) is a key regulator of inflammation and apoptosis. We presently evaluated the function of the AP-1 subunit JunB in cytokine-mediated β-cell dysfunction and death. The cytokines IL-1β+IFN-γ induced an early and transitory upregulation of JunB by NF-κB activation. Knockdown of JunB by RNA interference increased cytokine-mediated expression of inducible nitric oxide synthase (iNOS) and endoplasmic reticulum (ER) stress markers, leading to increased apoptosis in an insulin-producing cell line (INS-1E) and in purified rat primary β-cells. JunB knockdown β-cells and junB−/− fibroblasts were also more sensitive to the chemical ER stressor cyclopiazonic acid (CPA). Conversely, adenoviral-mediated overexpression of JunB diminished iNOS and ER markers expression and protected β-cells from cytokine-induced cell death. These findings demonstrate a novel and unexpected role for JunB as a regulator of defense mechanisms against cytokine- and ER stress-mediated apoptosis
Role of the global transcriptional regulators, BRG1 and Brm, in the glucocorticoid induced -phenotypic reversion of ST1 cells
Os hormônios glicocorticóides (GCs) têm sido amplamente empregados como agentes antiinflamatórios e anti-tumorais. Sua ação ocorre via receptores nucleares (GR) sendo dependente da remodelação da estrutura da cromatina. As proteínas Brm e BRG1, componentes essenciais de um complexo regulador global da transcrição (SWI/SNF), por remodelamento da cromatina, exercem um papel-chave na ação de GR. Para estudar o mecanismo de ação de GCs, foram utilizadas as linhagens celulares ST1 e P7, derivadas da linhagem celular C6, de glioma de rato. P7 é insensível ao tratamento com GC, enquanto ST1 apresenta reversão fenotípica tumoral→normal, gerando um bloqueio específico na fase G1. Um anti-soro policlonal específico para Brm e BRG1, foi gerado através da inoculaçâo de coelha com a proteína hBRG1 recombinante. Este antisoro foi utilizado para análisar os níveis destas proteínas nas duas linhagens celulares, sob ação de GC. Enquanto em ST1, Brm é induzida por GC, em células P7, o nível basal de Brm é relativamente alto, mantendo-se inalterado na presença de GC. A possíbilidade de existirem mutações no gene brm de células P7, foi investigada através de amplificação do DNA, por PCR, e seqüenciamento. A superexpressão de brm e BRG1 em células P7 mostrou que clones isolados apresentavam, de um modo geral, achatamento celular, diminuição da taxa de crescimento e da eficiência de plaqueamento em substrato sólido e semi-sólido. Alguns destes clones passaram a responder ao tratamento com GC, porém não tão drasticamente como as células ST1. Co-imunonoprecipitação mostrou algumas diferenças entre os complexos SWI/SNF de células ST1 e P7.Glucocorticoid hormones (GCs) have been used as anti-inflammatory and anti-tumor agents, acting via nuclear receptors (GR) and being dependent on remodeling of the chromatin structure. As components of the global chromatin remodeling transcription complex (SWI/SNF), Brm and BRG-1 proteins play a key role in the action of GR. In order to study the mechanisms of action of GCs, we have been using the ST1 and P7 cell lines, derived from the C6, a rat glioma cell line. P7 is insensitive to the GC treatment, while ST1 displays a complete phenotypic reversion from tumoral to normal, including a G1-specific block in the cell cycle. A Brm and BRG1-specific polyclonal antiserum was generated, in rabbit, using recombinant hBRG1 protein as antigen. This antiserum was used to analyze the levels of Brm and BRG1 in these two cell lines, under GC treatment. While Brm is induced by GC, in ST1 cells, the basal level of Brm, in P7 cells, is relatively high, remaining unchanged under GC treatment. The possibility of brm mutations occurring in the P7 cells, was analyzed by DNA sequencing. Overexpression of brm and BRG1 in P7 cells led to morphological alterations (cell flattening) and decreased colony formation in agarose suspension and in solid substrate. Some of these clones became partially responsive to GC, when compared to the ST1 cell line. Co-immunoprecipitation assays revealed some differences in the SWI/SNF complex between ST1 and P7 cells
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