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Autophagy mediates cell cycle response by regulating nucleocytoplasmic transport of PAX6 in limbal stem cells under ultraviolet-A stress
- Source :
- PLoS ONE, Vol 12, Iss 7, p e0180868 (2017), PLoS ONE
- Publication Year :
- 2017
- Publisher :
- Public Library of Science (PLoS), 2017.
-
Abstract
- Limbal stem cells (LSC) account for homeostasis and regeneration of corneal epithelium. Solar ultraviolet A (UVA) is the major source causing oxidative damage in the ocular surface. Autophagy, a lysosomal degradation mechanism, is essential for physiologic function and stress defense of stem cells. PAX6, a master transcription factor governing corneal homeostasis by regulating cell cycle and cell fate of LSC, responds to oxidative stress by nucleocytoplasmic shuttling. Impaired autophagy and deregulated PAX6 have been reported in oxidative stress-related ocular surface disorders. We hypothesize a functional role for autophagy and PAX6 in LSC’s stress response to UVA. Therefore, human LSC colonies were irradiated with a sub-lethal dose of UVA and autophagic activity and intracellular reactive oxygen species (ROS) were measured by CYTO-ID assay and CM-H2DCFDA live staining, respectively. Following UVA irradiation, the percentage of autophagic cells significantly increased in LSC colonies while intracellular ROS levels remained unaffected. siRNA-mediated knockdown (KD) of ATG7 abolished UVA-induced autophagy and led to an excessive accumulation of ROS. Upon UVA exposure, LSCs displayed nuclear-to-cytoplasmic translocation of PAX6, while ATG7KD or antioxidant pretreatment largely attenuated the intracellular trafficking event. Immunofluorescence showing downregulation of proliferative marker PCNA and induction of cell cycle regulator p21 indicates cell cycle arrest in UVA-irradiated LSC. Abolishing autophagy, adenoviral-assisted restoration of nuclear PAX6 or antioxidant pretreatment abrogated the UVA-induced cell cycle arrest. Adenoviral expression of an ectopic PAX gene, PAX7, did not affect UVA cell cycle response. Furthermore, knocking down PAX6 attenuated the cell cycle progression of irradiated ATG7KD LSC by de-repressing p21 expression. Collectively, our data suggest a crosstalk between autophagy and PAX6 in regulating cell cycle response of ocular progenitors under UVA stress. Autophagy deficiency leads to impaired intracellular trafficking of PAX6, perturbed redox balance and uncurbed cell cycle progression in UVA-stressed LSCs. The coupling of autophagic machinery and PAX6 in cell cycle regulation represents an attractive therapeutic target for hyperproliferative ocular surface disorders associated with solar radiation.
- Subjects :
- 0301 basic medicine
Cell cycle checkpoint
PAX6 Transcription Factor
Light
Paired Box
Immunofluorescence
lcsh:Medicine
Biochemistry
Antioxidants
Cornea
0302 clinical medicine
Medicine and Health Sciences
Cell Cycle and Cell Division
lcsh:Science
Cells, Cultured
Cellular Stress Responses
Microscopy, Confocal
Multidisciplinary
Cell Death
Reverse Transcriptase Polymerase Chain Reaction
Chemistry
Stem Cells
Physics
Cell Cycle
PAX7 Transcription Factor
Cell cycle
Cell biology
Physical sciences
Cell Processes
Anatomy
Stem cell
Intracellular
Signal Transduction
Research Article
Ultraviolet radiation
Ultraviolet Rays
Autophagic Cell Death
Ocular Anatomy
Active Transport, Cell Nucleus
Cell fate determination
Research and Analysis Methods
03 medical and health sciences
Electromagnetic radiation
Protein Domains
Downregulation and upregulation
Ocular System
Autophagy
Humans
Progenitor cell
Immunoassays
lcsh:R
Autophagosomes
Biology and Life Sciences
Proteins
Cell Biology
eye diseases
030104 developmental biology
Immunologic Techniques
030221 ophthalmology & optometry
lcsh:Q
Ultraviolet A
sense organs
Reactive Oxygen Species
Subjects
Details
- Language :
- English
- ISSN :
- 19326203
- Volume :
- 12
- Issue :
- 7
- Database :
- OpenAIRE
- Journal :
- PLoS ONE
- Accession number :
- edsair.doi.dedup.....555464b056a2792e79fd6b0800c9b7a6