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Published on: February 3, 2023
RNA-Binding Proteins Alter Redox Gene Splicing in Biliary Atresia: Insights from Expression Profiling
Jiwen Cheng1, Pu Zhao2, Ping Cao3
1Department of Pediatrics, First Affiliated Hospital of Xi'an Jiaotong University, Xi'an, Shaanxi Province 710061, China.
Insights
RNA-binding protein (RBP) dysfunction and aberrant splicing are linked to biliary atresia (BA) pathogenesis. This study highlights the RBP-splicing axis
Area of Science:
- Pediatric Hepatology
- Molecular Biology
- Genomics
Background:
- Biliary atresia (BA) is a severe infant liver disease with unknown causes.
- RNA-binding proteins (RBPs) regulate gene splicing and are implicated in liver diseases.
- The role of RBP dysfunction and aberrant splicing in BA pathogenesis is unclear.
Purpose of the Study:
- To investigate the role of RNA-binding proteins (RBPs) and alternative splicing events (ASEs) in biliary atresia (BA).
- To identify potential regulatory mechanisms underlying BA pathogenesis involving RBPs and splicing.
Main Methods:
- Integrated transcriptomic analysis of RNA-seq data from BA patients and normal livers.
- Identification of differentially expressed genes (DEGs) and alternative splicing events (ASEs).
- Construction of RBP-ASE coexpression networks and validation using qRT-PCR.
Main Results:
- Identified 2022 DEGs and significant RBP dysregulation (135 abnormal expression, 182 altered splicing).
- RBP-mediated splicing events are crucial in metabolic processes, redox homeostasis, and RNA processing in BA.
- Validated dysregulation of specific RBPs (FUS, RBM15B) and their targets in BA and congenital choledochal cyst (CCC) tissues.
Conclusions:
- RBP dysregulation and aberrant splicing are linked to biliary atresia (BA).
- The RBP-splicing axis is associated with disrupted redox and metabolic pathways in BA.
- The RBP-splicing axis represents a potential contributor to BA pathogenesis and a therapeutic target.
Background:
Biliary atresia (BA), the most common cause of extrahepatic obstructive jaundice in infants, is a severe infant disease with a poor prognosis and unclear etiology. RNA-binding proteins (RBPs) are key regulators of alternative splicing and are implicated in various liver pathologies. However, whether RBP dysfunction and resultant aberrant splicing contribute to BA pathogenesis remains unknown.
Methods:
We performed an integrated transcriptomic analysis using RNA-seq data from BA patients and normal donor livers (GEO: GSE159720). This encompassed systematic identification of differentially expressed genes (DEGs) and alternative splicing events (ASEs), followed by construction of RBP-ASE coexpression networks to infer underlying regulatory mechanisms. Key bioinformatic predictions were subsequently validated via qRT-PCR in an independent cohort using congenital choledochal cyst (CCC) tissues as controls.
Results:
Our analysis identified 2022 DEGs and revealed extensive RBP dysregulation, with 135 RBPs showing abnormal expression and 182 exhibiting altered splicing patterns. Notably, 15 RBPs were perturbed at both levels. Coexpression network and functional enrichment analyses demonstrated that RBP-mediated splicing events are significantly involved in metabolic processes, redox homeostasis, and RNA splicing and transport, underscoring their central role in BA pathogenesis. The expression of several RBPs (e.g., FUS, RBM15B) and coexpressed DEGs (e.g., AOX1, ADH6, UGDH) was markedly altered in BA. Similarly, validation of differentially spliced RBPs (e.g., CCNT2, YBX3, TRA2A) and their coexpressed targets (e.g., CFHR2, PRKACB) further corroborated the dysregulation of the RBP-splicing axis.
Conclusion:
In summary, our study links RBP dysregulation and aberrant splicing to biliary atresia, primarily through their association with disrupted redox and metabolic pathways. These findings point to the RBP-splicing axis as a potential contributor to BA pathogenesis and a candidate target for further investigation.
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