Exploring the cellular basis of human disease through a large-scale mapping of deleterious genes to cell types

Alex J Cornish1, Ioannis Filippis2, Alessia David3

  • 1Department of Life Sciences, Imperial College London, Exhibition Road, London, SW7 2AZ, UK. a.cornish12@imperial.ac.uk.

Genome Medicine
|September 3, 2015
PubMed
Abstract

Insights

This study maps diseases to specific human cell types, revealing new disease mechanisms and creating a comprehensive resource for systems medicine research. The findings link disease-associated genes to their resulting phenotypes.

Area of Science:

  • Systems biology and medicine
  • Genomics and bioinformatics
  • Cell biology and disease mechanisms

Background:

  • Human cells have unique functions; disruptions can cause disease.
  • A systematic mapping of cell types to diseases is currently lacking.
  • Understanding cell-type-specific disease etiology is crucial for medical research.

Purpose of the Study:

  • To create the largest collection of cell-type-specific interactomes to date.
  • To systematically map diseases to the specific cell types they affect.
  • To develop and validate a novel computational method for disease-cell-type association.

Main Methods:

  • Integrated protein-protein interaction data with FANTOM5 cell-type-specific gene expression data.
  • Developed the gene set compactness (GSC) method to map 196 diseases to 73 cell types.
  • Validated findings using text-mining of PubMed for independent disease-associated cell type data.

Main Results:

  • Successfully identified known disease-cell-type associations and highlighted novel ones.
  • Discovered potential links, such as mast cells and multiple sclerosis, currently in clinical trials.
  • Constructed a cell-type-based diseasome, offering insights into disease etiology and connections.

Conclusions:

  • Generated the first large-scale dataset mapping diseases to their manifesting cell types.
  • The dataset serves as a valuable resource for studying disease systems and mechanisms.
  • The approach effectively links disease-associated genes to their resulting phenotypes, advancing systems medicine.

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