| Literature DB >> 23144914 |
Irmgard Schuiki1, Liling Zhang, Allen Volchuk.
Abstract
Accumulation of unfolded, misfolded and aggregated proteins in the endoplasmic reticulum (ER) causes ER stress. ER stress can result from physiological situations such as acute increases in secretory protein biosynthesis or pathological conditions that perturb ER homeostasis such as alte<span class="Species">rations in the ER redox state. Here we monitored ER redox together with transcriptional output of the Unfolded Protein Response (UPR) in <span class="Disease">INS-1 insulinoma cells stably expressing eroGFP (ER-redox-sensor) and mCherry protein driven by a GRP78 promoter (UPR-sensor). Live cell imaging, flow cytometry and biochemical characterization were used to examine these parameters in response to various conditions known to induce ER stress. As expected, treatment of the cells with the reducing agent dithiothreitol caused a decrease in the oxidation state of the ER accompanied by an increase in XBP-1 splicing. Unexpectedly however, other treatments including tunicamycin, thapsigargin, DL-homocysteine, elevated free fatty acids or high glucose had essentially no influence on the ER redox state, despite inducing ER stress. Comparable results were obtained with dispersed rat islet cells expressing eroGFP. Thus, unlike in yeast cells, ER stress in pancreatic β-cells is not associated with a more reducing ER environment.Entities:
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Year: 2012 PMID: 23144914 PMCID: PMC3493583 DOI: 10.1371/journal.pone.0048626
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1Characterization of eroGFP and mCherry expressing INS-1 (clone # 15/5) cell line.
(A) Schematic diagram of constructs used to generate a double-stable INS-1 insulinoma cell line. (B) Colocalization of eroGFP with PDI by immunofluorescence. Cells were fixed and processed for immunofluorescence by using anti-PDI antibody followed by a secondary antibody labeled with Cy-5. Merging the two images demonstrates colocalization of the signals (yellow in merged image). Images were taken on a spinning disk confocal microscope. (C) Induction of mCherry upon treatment with Tm. Images were acquired on a confocal laser-scanning microscope. Scale bars: 1 µm. (D) Analysis of eroGFP emission from excitation at 488 nm/405 nm in control cells and cells treated with dithiothreitol (DTT, 5 mM) for 5 and 10 min by live cell imaging. eroGFP ratios (defined as the ratio of fluorescence from excitation at 488 nm versus 405 nm) are represented as the mean (±SEM), with a minimum of 50 cells analyzed per condition. * Denotes significance from untreated cells by Student t-test (p<0.05). (E) eroGFP ratio was monitored by confocal microscopy and image analysis. Images were taken every 30 sec. Cells were imaged for 10 min then 5 mM DTT was added. After 10 min DTT containing medium was exchanged for regular medium (DTT washout) and images were taken for another 10 min. The eroGFP ratio was calculated and normalized to the eroGFP ratio at time 0 min. Representative result from two independent experiments is shown.
Figure 2ER redox state monitored by FACS analysis in response to DTT treatment.
(A) FACS plots from a representative experiment of untreated and DTT (5 mM) treated INS-1 cells (GRP78mCherry/eroGFP # 15/5). Scatter plot: forward scatter (FSC) vs. side scatter (SSC) and gated populations are represented (top left and top right panel); typical fluorescence emission of INS-1 (GRP78mCherry/eroGFP # 15/5) cells before and after addition of DTT (5 mM) for 30 min (lower left and right panels); fluorescence intensities as areas for eroGFP (488 nm), eroGFP (405 nm) and mCherry are shown. (B) eroGFP ratio (from n = 9 experiments) in cells before and after addition of 5 mM DTT (C) Ethidium bromide stained agarose gel of unspliced (uXBP-1) and spliced (sXBP-1) XBP-1 cDNA obtained by RT-PCR of total RNA of untreated and DTT treated cells. (D) eroGFP ratio (from n = 3 experiments) in cells before and after addition of 0.1 mM H2O2 at the indicated times.
Figure 3Response of cells to various concentrations of DTT over time.
(A) eroGFP ratio (from n = 4 experiments) in INS-1 cells (GRP78mCherry/eroGFP # 15/5) treated or not with 0.1 mM DTT, 0.5 mM DTT and 5 mM DTT for the indicated times obtained by FACS analysis. * Denotes significance from untreated cells by Student t-test (p<0.05). (B) Ethidium bromide stained agarose gel of unspliced (uXBP-1) and spliced (sXBP-1) XBP-1 cDNA obtained by RT-PCR of total RNA of cells treated with 0.1 mM DTT, 0.5 mM DTT and 5 mM DTT at the indicated times.
Figure 4Analyses of INS-1 (GRP78mCherry/eroGFP # 15/5) cells under conditions of pharmacologically-induced ER stress.
(A) eroGFP ratio of cells treated with thapsigargin (Tg) or tunicamycin (Tm) for the indicated times obtained by confocal imaging and image analysis. (B) FACS plots from a representative experiment of untreated cells or of cells treated with 2 µg/ml Tm for 16 h. Scatter plot: forward scatter (FSC) vs. side scatter (SSC) and gated population are represented (top left and top right panel); typical fluorescence emission of INS-1 (GRP78mCherry/eroGFP # 15/5) cells before and after incubation with Tm (2 µg/ml) for 16 h (lower left and right panels); fluorescence intensities as areas for eroGFP (488 nm), eroGFP (405 nm) and mCherry are shown. (C) eroGFP ratio (from n = 3 experiments) in cells treated with vehicle or treated with Tm (2 µg/ml) for 16 h obtained by FACS analysis. (D) eroGFP ratio of cells treated with Tg (1 µM) for 1 h or 4 h analyzed by FACS analysis, normalized to vehicle control. (E) Ethidium bromide stained agarose gel of unspliced (uXBP-1) and spliced (sXBP-1) XBP-1 cDNA obtained by RT-PCR of total RNA of cells after treatment with Tg (1 h and 4 h) or Tm (16 h). (F) Relative GRP78 mRNA level as determined by real-time PCR. Total RNA was isolated from GRP78mCherry/eroGFP #15/5 cells untreated, treated with DTT (5 mM) for 30 min, treated with vehicle (DMSO) for 16 h or Tm (2 µg/ml) for 16 h and real-time PCR analysis was performed to determine GRP78 mRNA expression. *Denotes significance at p<0.05 (ANOVA).
Figure 5eroGFP ratio in dispersed rat islet cells.
(A) eroGFP ratio in dispersed rat islet cells transduced with eroGFP adenovirus (24 h), then treated with vehicle or treated with Tg (1 µM) for 3 h. Data was obtained by confocal imaging and image analysis. (B) eroGFP ratio in rat islet cells before and after addition of 5 mM DTT for 10 min, obtained by confocal imaging and image analysis. eroGFP ratios are represented as the mean (±SEM) with a minimum of 50 cells analyzed per condition. *Denotes significance from untreated cells by Student t-test (p<0.05).
Figure 6eroGFP ratio in response to ER stress induced by DL-homocysteine.
(A) eroGFP ratio (from n = 3 experiments) in INS-1 cells (GRP78mCherry/eroGFP # 15/5) treated or not with 5 mM DL-homocysteine for the times indicated obtained by FACS analysis. (B) Ethidium bromide–stained agarose gel of unspliced (uXBP-1) and spliced (sXBP-1) XBP-1 cDNA obtained by RT-PCR of total RNA of cells treated or not with 5 mM DTT or 5 mM DL-homocysteine for indicated times.
Figure 7eroGFP ratio in cells treated with FFAs and high glucose.
(A) eroGFP ratio of INS-1 cells (GRP78mCherry/eroGFP # 15/5) treated with palmitate and oleate for 6 h and 16 h obtained by FACS analysis normalized to BSA control. (B) Ethidium bromide–stained agarose gel of unspliced (uXBP-1) and spliced (sXBP-1) XBP-1 cDNA obtained by RT-PCR of total RNA of untreated cells, BSA treated cells and cells after treatment with palmitate (6 h and 16 h). (C) eroGFP ratio of cells under basal glucose (5 mM), acute (25 mM glucose for 2 h) and chronic high glucose (25 mM glucose for 48 h), obtained by FACS analysis. eroGFP ratios are normalized to control (untreated) cells in RPMI media (11.1 mM glucose).