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PITX2 is involved in stress response in cultured human trabecular meshwork cells through regulation of SLC13A3
M Hermina Strungaru1, Tim Footz, Yi Liu
1Department of Medical Genetics, University of Alberta, Edmonton, Alberta, Canada.
Purpose:
Mutations of the PITX2 gene cause Axenfeld-Rieger syndrome (ARS) and glaucoma. In this study, the authors investigated genes directly regulated by the PITX2 transcription factor to gain insight into the mechanisms underlying these disorders.
Methods:
RNA from nonpigmented ciliary epithelium cells transfected with hormone-inducible PITX2 and activated by mifepristone was subjected to microarray analyses. Data were analyzed using dCHIP algorithms to detect significant differences in expression. Genes with significantly altered expression in multiple microarray experiments in the presence of activated PITX2 were subjected to in silico and biochemical analyses to validate them as direct regulatory targets. One target gene was further characterized by studying the effect of its knockdown in a cell model of oxidative stress, and its expression in zebrafish embryos was analyzed by in situ hybridization.
Results:
Solute carrier family 13 sodium-dependent dicarboxylate transporter member 3 (SLC13A3) was identified as 1 of 47 potential PITX2 target genes in ocular cells. PITX2 directly regulates SLC13A3 expression, as demonstrated by luciferase reporter and chromatin immunoprecipitation assays. Reduction of PITX2 or SLC13A3 levels by small interfering RNA (siRNA)-mediated knockdown augmented the death of transformed human trabecular meshwork cells exposed to hydrogen peroxide. Zebrafish slc13a3 is expressed in anterior ocular regions in a pattern similar to that of pitx2.
Conclusions:
The results indicate that SLC13A3 is a direct downstream target of PITX2 transcriptional regulation and that levels of PITX2 and SLC13A3 modulate responses to oxidative stress in ocular cells.
Insights
PITX2, a gene linked to Axenfeld-Rieger syndrome and glaucoma, directly regulates SLC13A3. This interaction influences how ocular cells respond to oxidative stress, offering new insights into these conditions.
Area of Science:
- Ocular genetics
- Molecular biology
- Transcriptional regulation
Background:
- Mutations in the PITX2 gene are associated with Axenfeld-Rieger syndrome (ARS) and glaucoma.
- Understanding PITX2's regulatory network is crucial for elucidating the mechanisms behind these ocular disorders.
Purpose of the Study:
- To identify genes directly regulated by the PITX2 transcription factor.
- To investigate the role of PITX2-regulated genes in ocular development and disease.
Main Methods:
- Microarray analysis of RNA from PITX2-transfected ciliary epithelium cells.
- Bioinformatic and biochemical validation of direct PITX2 target genes.
- siRNA-mediated knockdown and oxidative stress assays in human trabecular meshwork cells.
- Zebrafish in situ hybridization to analyze gene expression patterns.
Main Results:
- Solute carrier family 13 sodium-dependent dicarboxylate transporter member 3 (SLC13A3) was identified as a direct PITX2 target gene.
- PITX2 directly regulates SLC13A3 expression, confirmed by luciferase reporter and ChIP assays.
- Knockdown of PITX2 or SLC13A3 increased oxidative stress-induced cell death in trabecular meshwork cells.
- Zebrafish slc13a3 expression in ocular regions mirrors pitx2 patterns.
Conclusions:
- SLC13A3 is a direct downstream target of PITX2 transcriptional regulation.
- PITX2 and SLC13A3 levels modulate ocular cell responses to oxidative stress.
- These findings provide insights into the pathogenesis of PITX2-related eye disorders.
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