A Meta-Analysis of Human Transcriptomics Data in the Context of Peritoneal Dialysis Identifies Novel Receptor-Ligand

Michail Evgeniou1, Juan Manuel Sacnun1,2,3, Klaus Kratochwill1,2

  • 1Division of Pediatric Nephrology and Gastroenterology, Department of Pediatrics and Adolescent Medicine, Comprehensive Center for Pediatrics, Medical University Vienna, Währinger Gürtel 18-20, 1090 Vienna, Austria.

Insights

This meta-analysis of peritoneal dialysis (PD) transcriptomics data identified novel dysregulated receptor-ligand interactions. These findings shed light on molecular processes in end-stage kidney disease (ESKD) complications, offering new targets for research.

Area of Science:

  • Nephrology
  • Molecular Biology
  • Genomics

Background:

  • Peritoneal dialysis (PD) is a treatment for end-stage kidney disease (ESKD).
  • Omics technologies have revealed molecular changes associated with PD treatment.
  • Numerous transcriptomics (TX) datasets related to PD are publicly available.

Purpose of the Study:

  • To conduct a meta-analysis of available PD TX datasets.
  • To identify dysregulated receptor-ligand interactions in PD-associated complications.
  • To discover novel molecular pathways involved in PD.

Main Methods:

  • Consolidated transcriptomics profiles from twelve human PD studies (cell cultures and patient samples).
  • Utilized gene set enrichment analysis for biological process identification.
  • Employed CellPhoneDB to identify receptor-ligand interactions.

Main Results:

  • Identified 2591 unique differentially expressed genes across the twelve PD studies.
  • Key enriched biological processes include angiogenesis, cell adhesion, extracellular matrix organization, and inflammation.
  • Discovered 70 dysregulated receptor-ligand pairs, including novel interactions like BMPR2-GDF6 and FZD4-WNT7B.

Conclusions:

  • This study consolidates human transcriptomics data for PD research.
  • Identified novel, dysregulated receptor-ligand pairs in PD warranting further functional investigation.
  • Provides a foundation for understanding molecular mechanisms in PD complications.

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