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Published on: August 24, 2013
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.
Background:
Each cell type found within the human body performs a diverse and unique set of functions, the disruption of which can lead to disease. However, there currently exists no systematic mapping between cell types and the diseases they can cause.
Methods:
In this study, we integrate protein-protein interaction data with high-quality cell-type-specific gene expression data from the FANTOM5 project to build the largest collection of cell-type-specific interactomes created to date. We develop a novel method, called gene set compactness (GSC), that contrasts the relative positions of disease-associated genes across 73 cell-type-specific interactomes to map genes associated with 196 diseases to the cell types they affect. We conduct text-mining of the PubMed database to produce an independent resource of disease-associated cell types, which we use to validate our method.
Results:
The GSC method successfully identifies known disease-cell-type associations, as well as highlighting associations that warrant further study. This includes mast cells and multiple sclerosis, a cell population currently being targeted in a multiple sclerosis phase 2 clinical trial. Furthermore, we build a cell-type-based diseasome using the cell types identified as manifesting each disease, offering insight into diseases linked through etiology.
Conclusions:
The data set produced in this study represents the first large-scale mapping of diseases to the cell types in which they are manifested and will therefore be useful in the study of disease systems. Overall, we demonstrate that our approach links disease-associated genes to the phenotypes they produce, a key goal within systems medicine.
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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