Structural framework to address variant-gene relationship in primary open-angle glaucoma.

Vision Res

Departments of Ophthalmology and Anatomy, University of California, San Francisco, San Francisco, CA 94158, USA. Electronic address:

Published: January 2025

AI Article Synopsis

  • Primary open-angle glaucoma (POAG) is a complicated eye disease that causes nerve damage and can lead to blindness, with new studies improving our understanding of its genetic causes.
  • Researchers are using advanced methods like Exome-Wide Association Studies (ExWAS) and post-GWAS analyses to identify rare gene variants and pathways that might contribute to POAG.
  • Techniques such as ATAC-seq and eQTL analysis help scientists understand how gene regulation and expression affect the risk of developing POAG, ultimately providing a clearer picture of the genetic factors involved in this condition.

Article Abstract

Primary open-angle glaucoma (POAG) is a complex, multifactorial disease leading to progressive optic neuropathy and irreversible vision loss. Genome-Wide Association Studies (GWAS) have significantly advanced our understanding of the genetic loci associated with POAG. Expanding on these findings, Exome-Wide Association Studies (ExWAS) refine the genetic landscape by identifying rare coding variants with potential functional relevance. Post-GWAS in silico analyses, including fine-mapping, gene-based association testing, and pathway analysis, offer insights into target genes and biological mechanisms underlying POAG. This review aims to provide a comprehensive roadmap for the post-GWAS characterization of POAG genes. We integrate current knowledge from GWAS, ExWAS, and post-GWAS analyses, highlighting key genetic variants and pathways implicated in POAG. Recent advancements in genomics, such as ATAC-seq, CUT&RUN, and Hi-C, are crucial for identifying disease-relevant gene regulatory elements by profiling chromatin accessibility, histone modifications, and three-dimensional chromatin architecture. These approaches help pinpoint regulatory elements that influence gene expression in POAG. Expression Quantitative Trait Loci (eQTL) analysis and Transcriptome-Wide Association Studies (TWAS) elucidate the impact of these elements on gene expression and disease risk, while functional validations like enhancer reporter assays confirm their relevance. The integration of high-resolution genomics with functional assays and the characterization of genes in vivo using animal models provides a robust framework for unraveling the complex genetic architecture of POAG. This roadmap is essential for advancing our understanding and identification of genes and regulatory networks involved in POAG pathogenesis.

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Source
http://dx.doi.org/10.1016/j.visres.2024.108505DOI Listing

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