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PSF functions as a repressor of hypoxia-induced angiogenesis by promoting mitochondrial function
- Source :
- Cell Communication and Signaling, Vol 19, Iss 1, Pp 1-14 (2021), Cell Communication and Signaling : CCS
- Publication Year :
- 2021
- Publisher :
- BMC, 2021.
-
Abstract
- Background Abnormal neovascularization is the most common cause of blindness, and hypoxia alters tissue metabolism, function, and morphology. HIF-1α, the transcriptional activator of VEGF, has intricate mechanisms of nuclear translocation and activation, but its signal termination mechanisms remain unclear. Methods We investigated the role of polypyrimidine tract-binding protein-associated splicing factor (PSF) in cellular energy production, migration, and proliferation by targeting HIF-1α in vivo and in vitro PSF plasmids were transfected with liposome 2000 transfection reagent. Young C57/BL6J mice were kept in a hyperoxia environment, followed by indoor air, resulting in oxygen-induced retinopathy. Oxygen-induced retinopathy (OIR) animals were randomly divided into three groups: OIR group, OIR + vector group (OIR cubs treated with rAAV vector) and OIR + PSF group (OIR cubs treated with rAAV-PSF). Age-matched C57/BL6J mice were used as controls and exposed to constant normoxic conditions. The animals were executed and their pupils were subjected to subsequent experiments. The metabolic spectrum was analyzed by Seahorse XFe96 flux analyzer, and OCR and extracellular acidification rate were quantified at the same time. Results PSF ameliorated retinal neovascularization and corrected abnormal VEGF expression in mice with oxygen-induced retinopathy and reduced intra-retinal neovascularization in Vldlr − / − mice. PSF reprogrammed mitochondrial bioenergetics and inhibited the transition of endothelial cells after hypoxia, suggesting its involvement in pathological angiogenesis.Ectopic PSF expression inhibited hypoxia-induced HIF-1α activation in the nucleus by recruiting Hakai to the PSF/HIF-1α complex, causing HIF-1α inhibition. PSF knockdown increased hypoxia-stimulated HIF-1α reactions. These hypoxia-dependent processes may play a vital role in cell metabolism, migration, and proliferation. Thus, PSF is a potential treatment target in neovascularization-associated ophthalmopathy. Conclusion This is the first study showing that PSF inhibits HIF-1α via recruitment of Hakai, modulates mitochondrial oxidation and glycolysis, and downregulates VEGF expression under hypoxia. We propose a new HIF-1 α/Hakai regulatory mechanism that may play a vital role in the pathogenesis of neovascularization in ophthalmopathy. PSF-Hakai–HIF-1α signaling pathway under hypoxia condition. Schematic diagram showing that the PSF-Hakai–HIF-1α signaling pathway. Under hypoxia condition, PSF-Hakai complex regulate HIF-1α signaling, thus inhibiting downstream target gene VEGF, cell metabolism and angiogenesis eventually.
- Subjects :
- Vascular Endothelial Growth Factor A
HIF1-α
Angiogenesis
Ubiquitin-Protein Ligases
lcsh:Medicine
Mitochondrion
Biochemistry
Retina
Neovascularization
03 medical and health sciences
0302 clinical medicine
Retinal Diseases
Cell Movement
medicine
Animals
Humans
lcsh:QH573-671
PTB-Associated Splicing Factor
Hypoxia
Molecular Biology
Cells, Cultured
PSF
030304 developmental biology
Mice, Knockout
Hyperoxia
0303 health sciences
Gene knockdown
Hakai
Chemistry
lcsh:Cytology
Research
lcsh:R
Endothelial Cells
Cell Biology
Transfection
Hypoxia (medical)
Hypoxia-Inducible Factor 1, alpha Subunit
VEGF
Mitochondria
Cell biology
Mice, Inbred C57BL
Receptors, LDL
030220 oncology & carcinogenesis
medicine.symptom
Signal transduction
Subjects
Details
- Language :
- English
- Volume :
- 19
- Issue :
- 1
- Database :
- OpenAIRE
- Journal :
- Cell Communication and Signaling
- Accession number :
- edsair.doi.dedup.....6c87ef452d4c235b0221161620661eb8