Mst1 facilitates hyperglycemia-induced retinal pigmented epithelial cell apoptosis by evoking mitochondrial stress and activating the Smad2 signaling pathway.

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This study found that Mst1 mediates hyperglycemia-induced retinal pigmented epithelial cell apoptosis and mitochondrial stress by activating the Smad2 signaling pathway, identifying it as a potential therapeutic target for diabetic retinopathy.

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The original study by Wei et al. investigated the molecular mechanisms underlying hyperglycemia-induced apoptosis in retinal pigmented epithelial cells, specifically examining the roles of Mst1, mitochondrial stress, and Smad2 signaling pathways. The research utilized in vitro models to demonstrate that Mst1 activation exacerbates cellular damage under high glucose conditions through these specific biochemical routes. However, the article has been formally retracted due to significant text overlap and figure similarity with a previously published work by Geng et al., leading the Editor-in-Chief to lose confidence in the integrity of the data. The paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.

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Abstract

Hyperglycemia induces retinal pigmented epithelial cell apoptosis and mitochondrial stress via poorly understood mechanisms. The goal of our current study is to explore whether mammalian sterile 20-like kinase 1 (Mst1) is involved in the pathogenesis of hyperglycemia-mediated retinal pigmented epithelial cell apoptosis by triggering mitochondrial abnormalities and activating the Smad2 signaling pathway. Retinal pigmented epithelial ARPE-19 cells were presented with a high-glucose challenge in vitro. Cell viability and apoptosis were measured via western blotting, ELISAs, and immunofluorescence assays. Mitochondrial function was detected via JC-1 staining, mitochondrial ROS flow cytometry, western blotting, and ELISAs. Loss- and gain-of-function assays were performed via cell transfection and transduction with Mst1 siRNA and Smad2 adenovirus, respectively. The results indicated that hyperglycemia treatment upregulated the levels of Mst1, an effect that was accompanied by an increase in ARPE-19 cell apoptosis. Loss of Mst1 attenuated hyperglycemia-induced cell apoptosis, and this effect seemed to be associated with mitochondrial protection. In response to hyperglycemia stimulus, mitochondrial stress was noted in ARPE-19 cells, including mitochondrial ROS overproduction, mitochondrial respiratory metabolism dysfunction, mitochondrial fission/fusion imbalance, and mitochondrial apoptosis activation. Further, we provided evidence to support the crucial role played by Smad2 in promoting Mst1-mediated cell apoptosis and mitochondrial stress. Overexpression of Smad2 abrogated the beneficial effects of Mst1 deletion on ARPE-19 cell viability and mitochondrial protection. Altogether, our results identified Mst1 as a novel mediator controlling the fate of retinal pigmented epithelial cells and mitochondrial homeostasis via the Smad2 signaling pathway. Based on this finding, strategies to repress Mst1 upregulation and block Smad2 activation are vital to alleviate hyperglycemia-mediated retinal pigmented epithelial cell damage.
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Retraction Note to: Cell Stress and Chaperones (2019)24:259–272 10.1007/s12192-018-00963-z The Editor-in-Chief has retracted this article (Wei et al. 2019) because of significant text overlap and similarity of figures with an article published earlier (Geng et al. 2020). It appears that parts of Fig. 5f are similar to Fig. 4 h in the earlier article. The Editor-in-Chief therefore no longer has confidence in the integrity of the data in this article. The authors did not respond to any correspondence from the editor or publisher about this retraction. Footnotes Publisher's note Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations. References - Wei B, Wang M, Hao W, et al. Mst1 facilitates hyperglycemia-induced retinal pigmented epithelial cell apoptosis by evoking mitochondrial stress and activating the Smad2 signaling pathway. Cell Stress Chaperones. 2019;24:259–272. doi: 10.1007/s12192-018-00963-z. [DOI] [PMC free article] [PubMed] [Google Scholar] [Retracted] - Geng C, Wei J, Wu C. Yap-Hippo pathway regulates cerebral hypoxia-reoxygenation injury in neuroblastoma N2a cells via inhibiting ROCK1/F-actin/mitochondrial fission pathways. Acta Neurol Belg. 2020;120:879–892. doi: 10.1007/s13760-018-0944-6. [DOI] [PubMed] [Google Scholar]

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