研究目的
Investigating the effect of HMGB1 small interfering RNA (siRNA) on retinal cells in diabetic retinopathy (DR) under high-glucose conditions.
研究成果
HMGB1 siRNA reduces retinal cell damage induced by high glucose both in vitro and in vivo by inhibiting the HMGB1–IKKβ–NFκB signaling pathway, suggesting it as a potential therapeutic target for diabetic retinopathy.
研究不足
The study did not investigate the translocation of HMGB1 in cells, and the effects on necrosis were not fully explored. Further research is needed to confirm the mechanisms and potential clinical applications.
1:Experimental Design and Method Selection:
The study used in vivo and in vitro models to assess the effects of HMGB1 siRNA on diabetic retinopathy. In vivo, Wistar rats were induced with diabetes using streptozotocin and treated with intravitreal injections of HMGB1 siRNA or controls. In vitro, human retinal endothelial cells (HRECs) were cultured under high-glucose conditions and transfected with HMGB1 siRNA. Methods included immunohistochemistry, real-time qPCR, TUNEL assays, electroretinography, Western blot, MTT assays, flow cytometry, Hoechst staining, ROS and SOD assays.
2:Sample Selection and Data Sources:
80 adult male Wistar rats were used for in vivo experiments, and HRECs purchased from the American Type Culture Collection were used for in vitro studies.
3:List of Experimental Equipment and Materials:
Equipment included surgical microscopes, microsyringes, electroretinography systems, real-time PCR systems, fluorescence microscopes, flow cytometers, and microplate readers. Materials included streptozotocin, HMGB1 siRNA, Lipofectamine 2000, various antibodies, assay kits, and cell culture media.
4:Experimental Procedures and Operational Workflow:
Rats were induced with diabetes, treated with siRNA injections, and assessed after 1 week. HRECs were transfected with siRNA and exposed to high glucose, followed by various assays to measure apoptosis, oxidative stress, and protein expression.
5:Data Analysis Methods:
Statistical analysis was performed using Student's t-test, one-way ANOVA, and nonparametric Kruskal-Wallis tests, with significance set at P<0.05.
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real-time PCR system
7300
Thermo Fisher Scientific
Performing quantitative PCR for gene expression analysis.
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blood glucose tester
Bayer AG
Measuring blood glucose levels in rats via the caudal vein.
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streptozotocin
Sigma-Aldrich
Inducing diabetes in rats through intraperitoneal injection.
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HMGB1 siRNA
GenePharma Co Ltd
Silencing HMGB1 gene expression in retinal cells.
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Scr-siRNA
GenePharma Co Ltd
Negative control for siRNA experiments.
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Lipofectamine 2000
Thermo Fisher Scientific
Transfecting siRNA into cells.
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tropicamide phenylephrine eyedrops
Santen Pharmaceutical
Dilating pupils for intravitreal injections.
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oxybuprocaine hydrochloride eyedrops
Santen Pharmaceutical
Anesthetic for eye procedures.
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microsyringe
Injecting substances into the vitreous cavity.
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electroretinography system
Ai Erxi
Recording retinal function via flash responses.
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TUNEL assay kit
Hoffman-La Roche Ltd
Detecting apoptotic cells in retinal sections.
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flow cytometer
FACSCalibur
BD Biosciences
Analyzing cell apoptosis using annexin V staining.
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fluorescence microplate reader
Measuring ROS levels with specific wavelengths.
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