The mechanism by which crocetin regulates the lncRNA NEAT1/miR-125b-5p/SOX7 molecular axis to inhibit high glucose-induced diabetic retinopathy.
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Xiao-ting Xi | Yuan Xia | Yan Li | Xuewei Wang | Qian-bo Chen | Jiaying Ma | Y. Deng | Wang Xi | Yachun Deng
[1] Qingshan Ji,et al. LncRNA THRIL promotes high glucose-induced proliferation and migration of human retina microvascular endothelial cells through enhancing autophagy , 2021, Acta Diabetologica.
[2] K. Ahn,et al. Crocetin imparts antiproliferative activity via inhibiting STAT3 signaling in hepatocellular carcinoma , 2021, IUBMB life.
[3] Junjie Luo,et al. LncRNA NEAT1 Promotes Gastric Cancer Progression Through miR-17-5p/TGFβR2 Axis Up-Regulated Angiogenesis , 2021, Frontiers in Cell and Developmental Biology.
[4] Jianglin Wang,et al. Crocetin suppresses angiogenesis and metastasis through inhibiting sonic hedgehog signaling pathway in gastric cancer. , 2021, Biochemical and biophysical research communications.
[5] Na Zhao,et al. Crocetin suppresses gestational diabetes in streptozotocin-induced diabetes mellitus rats via suppression of inflammatory reaction. , 2021, Journal of food biochemistry.
[6] Wei Li,et al. LncRNA NEAT1 regulated diabetic retinal epithelial-mesenchymal transition through regulating miR-204/SOX4 axis , 2021, PeerJ.
[7] Ramak Roohipourmoallai,et al. The Vitreous Ecosystem in Diabetic Retinopathy: Insight into the Patho-Mechanisms of Disease , 2021, International journal of molecular sciences.
[8] Yu Zhu,et al. Protective Role of microRNA-200a in Diabetic Retinopathy Through Downregulation of PDLIM1 , 2021, Journal of inflammation research.
[9] Hongli Zhou,et al. Salusin-β Mediates High Glucose-Induced Inflammation and Apoptosis in Retinal Capillary Endothelial Cells via a ROS-Dependent Pathway in Diabetic Retinopathy , 2021, Diabetes, metabolic syndrome and obesity : targets and therapy.
[10] S. Mehri,et al. Retinoprotective Effects of Crocin and Crocetin via Anti-angiogenic Mechanism in High Glucose-Induced Human Retinal Pigment Epithelium Cells. , 2021, Current molecular pharmacology.
[11] Jialing Yuan,et al. LncRNA NEAT1 promotes proliferation of ovarian cancer cells and angiogenesis of co-incubated human umbilical vein endothelial cells by regulating FGF9 through sponging miR-365 , 2021, Medicine.
[12] Y. Takeda,et al. Serum exosomal miR‐638 is a prognostic marker of HCC via downregulation of VE‐cadherin and ZO‐1 of endothelial cells , 2021, Cancer science.
[13] Yabin Li,et al. LncRNA NEAT1 promotes glioma cancer progression via regulation of miR-98-5p/BZW1 , 2021, Bioscience reports.
[14] Mohammad Y. Alshahrani,et al. Circulating long non-coding RNAs NKILA, NEAT1, MALAT1, and MIAT expression and their association in type 2 diabetes mellitus , 2021, BMJ Open Diabetes Research & Care.
[15] Xuewen Song,et al. Cardio-protective and Anti-atherosclerosis Effect of Crocetin on Vitamin D3 and HFD-induced Atherosclerosis in Rats. , 2021, Journal of oleo science.
[16] Wenjun Zou,et al. ASK1/p38-mediated NLRP3 inflammasome signaling pathway contributes to aberrant retinal angiogenesis in diabetic retinopathy , 2020, International journal of molecular medicine.
[17] M. Frutos,et al. Saffron bioactives crocin, crocetin and safranal: effect on oxidative stress and mechanisms of action , 2020, Critical reviews in food science and nutrition.
[18] F. Drago,et al. TGF-β Serum Levels in Diabetic Retinopathy Patients and the Role of Anti-VEGF Therapy , 2020, International journal of molecular sciences.
[19] Y. An,et al. Long non-coding RNA RPSAP52 upregulates Timp3 by serving as the endogenous sponge of microRNA-365 in diabetic retinopathy. , 2020, Experimental and Therapeutic Medicine.
[20] Yu Jiang,et al. Crocetin ameliorates chronic restraint stress-induced depression-like behaviors in mice by regulating MEK/ERK pathways and gut microbiota. , 2020, Journal of ethnopharmacology.
[21] P. Aramwit,et al. Crocetin suppresses the growth and migration in HCT-116 human colorectal cancer cells by activating the p-38 MAPK signaling pathway , 2020, Research in pharmaceutical sciences.
[22] I. Kim,et al. Dll4 Blockade Promotes Angiogenesis in Nonhealing Wounds of Sox7-Deficient Mice , 2020, Advances in wound care.
[23] Jinghan Li,et al. Ameliorative effects and mechanism of crocetin in arsenic trioxide-induced cardiotoxicity in rats , 2020, Molecular medicine reports.
[24] Xianli Meng,et al. A review of traditional Chinese medicine on treatment of diabetic retinopathy and involved mechanisms. , 2020, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[25] R. Kowluru,et al. Long noncoding RNA MALAT1 and Regulation of the Antioxidant Defense System in Diabetic Retinopathy. , 2020, Diabetes.
[26] Peisen Sun,et al. Long Noncoding RNA NEAT1 Contributes to the Tumorigenesis of Colorectal Cancer Through Regulating SLC38A1 Expression by Sponging miR-138. , 2020, Cancer biotherapy & radiopharmaceuticals.
[27] Rui Wang,et al. Long non-coding RNA NBAT1 inhibits the progression of glioma through the miR-21/SOX7 axis. , 2020, Oncology letters.
[28] Wanpeng Wang,et al. Circular RNA COL1A2 promotes angiogenesis via regulating miR-29b/VEGF axis in diabetic retinopathy. , 2020, Life sciences.
[29] Kan Shao,et al. Knockdown of NEAT1 exerts suppressive effects on diabetic retinopathy progression via inactivating TGF‐β1 and VEGF signaling pathways , 2020, Journal of cellular physiology.
[30] Xiao-Qing Yang,et al. Connection between SOX7 Expression and Breast Cancer Prognosis , 2020, Medical science monitor : international medical journal of experimental and clinical research.
[31] P. Peplow,et al. MicroRNAs as biomarkers of diabetic retinopathy and disease progression , 2019, Neural regeneration research.
[32] R. Rahbarghazi,et al. Crocetin promotes angiogenesis in human endothelial cells through PI3K-Akt-eNOS signaling pathway , 2019, EXCLI journal.
[33] M. Doyle,et al. Sox7 regulates lineage decisions in cardiovascular progenitor cells. , 2019, Stem cells and development.
[34] F. Drago,et al. Retinal and circulating miRNA expression patterns in diabetic retinopathy: An in silico and in vivo approach , 2019, British journal of pharmacology.
[35] Jia’nan Xie,et al. Enhanced ROBO4 is mediated by up‐regulation of HIF‐1α/SP1 or reduction in miR‐125b‐5p/miR‐146a‐5p in diabetic retinopathy , 2019, Journal of cellular and molecular medicine.
[36] Xin-gen Zhu,et al. Bioinformatics Analysis of Weighted Genes in Diabetic Retinopathy. , 2018, Investigative ophthalmology & visual science.
[37] A. Lilly,et al. SOX7 expression is critically required in FLK1-expressing cells for vasculogenesis and angiogenesis during mouse embryonic development , 2017, Mechanisms of Development.
[38] Jian-xing Ma,et al. Pathogenic Role of microRNA-21 in Diabetic Retinopathy Through Downregulation of PPARα , 2017, Diabetes.
[39] J. Nathans,et al. Sox7, Sox17, and Sox18 Cooperatively Regulate Vascular Development in the Mouse Retina , 2015, PloS one.
[40] D. Garry,et al. Sox7 is regulated by ETV2 during cardiovascular development. , 2014, Stem cells and development.
[41] H. Hara,et al. Crocetin, a carotenoid derivative, inhibits VEGF-induced angiogenesis via suppression of p38 phosphorylation. , 2012, Current neurovascular research.