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Rapid, Directed Differentiation of Retinal Pigment Epithelial Cells from Human Embryonic or Induced Pluripotent Stem Cells
Published on: October 30, 2017
Long noncoding RNA IGF2AS regulates high-glucose induced apoptosis in human retinal pigment epithelial cells
Xiaoyi Yu1, Yingzi Luo1, Gangyi Chen1
1Department of Ophthalmology, The First affiliated Hospital of Guangzhou University of Chinese Medicine, Guangzhou, Guangdong Province, China.
Abstract:
High-glucose-induced retinal tissue impairment is the major pathological phenotype of diabetic retinopathy. In an in vitro diabetic apoptosis cell model, we evaluated the function of long noncoding RNA, insulin growth factor 2 antisense (IGF2-AS) in high-glucose-injured human retinal pigment epithelial cells. A human retinal pigment epithelial cell line, ARPE-19 was incubated with high-glucose in vitro to induce apoptosis. SiRNA-mediated IGF2-AS downregulation was conducted in ARPE-19 cells to evaluate its effect on high-glucose induced apoptosis, assessed by a TUNEL assay. qRT-PCR and western blot assays were applied to examine the functional effect of IGF2-AS on IGF2/AKT/Casp-9 expressions in glucose-injured ARPE-19 cells. ART was further knocked down, specifically in IGF2-AS-downregualted ARPE-19 cells, to investigate its functional involvement in IGF2-AS-inhibition-mediated apoptotic protection in glucose-injured ARPE-19 cells. High-glucose induced apoptosis in ARPE-19 cells, and upregulated IGF-2AS in a dose-dependent manner. SiRNA-mediated IGF2-AS downregulation ameliorated apoptosis, upregulated IGF2/AKT and decreased Casp-9, in high-glucose-treated ARPE-19 cells. AKT knockdown was shown to dramatically reverse the preventive effect of IGF2-AS-downregulation on high-glucose-induced apoptosis in ARPE-19 cells. Moreover, it was demonstrated that AKT knockdown directly upregulated Casp-9 in IGF2-AS-downregulated and high-glucose-treated ARPE-19 cells. We demonstrated that inhibiting IGF2-AS, possibly also through activation of AKT signaling pathway, has a protective function in high-glucose-induced apoptosis in human retinal pigment epithelial cells in diabetic retinopathy.
Insights
In diabetic retinopathy, high glucose injures retinal cells. Inhibiting the long noncoding RNA IGF2-AS protects these cells from high-glucose-induced apoptosis, potentially via the AKT pathway.
Area of Science:
- Ophthalmology
- Molecular Biology
- Cell Biology
Background:
- Diabetic retinopathy (DR) is characterized by high-glucose-induced retinal tissue damage.
- Human retinal pigment epithelial cells (ARPE-19) are crucial in retinal health and susceptible to high-glucose injury.
- Long noncoding RNAs (lncRNAs) play significant roles in cellular processes, including apoptosis.
Purpose of the Study:
- To investigate the role of insulin growth factor 2 antisense (IGF2-AS) in high-glucose-induced apoptosis of ARPE-19 cells.
- To elucidate the molecular mechanism underlying IGF2-AS function in diabetic retinopathy models.
Main Methods:
- ARPE-19 cells were cultured in high-glucose conditions to induce apoptosis.
- Small interfering RNA (siRNA) was used to downregulate IGF2-AS expression.
- TUNEL assay assessed apoptosis, while qRT-PCR and Western blot analyzed gene and protein expression (IGF2/AKT/Casp-9).
- AKT knockdown experiments were performed to confirm pathway involvement.
Main Results:
- High glucose upregulated IGF2-AS and induced apoptosis in ARPE-19 cells.
- IGF2-AS downregulation ameliorated high-glucose-induced apoptosis.
- IGF2-AS inhibition upregulated IGF2 and AKT, while decreasing Caspase-9 (Casp-9).
- AKT knockdown reversed the protective effects of IGF2-AS downregulation and increased Casp-9 levels.
Conclusions:
- IGF2-AS inhibition demonstrates a protective effect against high-glucose-induced apoptosis in human retinal pigment epithelial cells.
- This protective mechanism may involve the activation of the IGF2/AKT signaling pathway.
- Targeting IGF2-AS represents a potential therapeutic strategy for diabetic retinopathy.
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