Cognitive ontologies for neuropsychiatric phenomics research
- 24 July 2009
- journal article
- review article
- Published by Taylor & Francis in Cognitive Neuropsychiatry
- Vol. 14 (4-5) , 419-450
- https://doi.org/10.1080/13546800902787180
Abstract
Now that genome-wide association studies (GWAS) are dominating the landscape of genetic research on neuropsychiatric syndromes, investigators are being faced with complexity on an unprecedented scale. It is now clear that phenomics, the systematic study of phenotypes on a genome-wide scale, comprises a rate-limiting step on the road to genomic discovery. To gain traction on the myriad paths leading from genomic variation to syndromal manifestations, informatics strategies must be deployed to navigate increasingly broad domains of knowledge and help researchers find the most important signals. The success of the Gene Ontology project suggests the potential benefits of developing schemata to represent higher levels of phenotypic expression. Challenges in cognitive ontology development include the lack of formal definitions of key concepts and relations among entities, the inconsistent use of terminology across investigators and time, and the fact that relations among cognitive concepts are not likely to be well represented by simple hierarchical “tree” structures. Because cognitive concept labels are labile, there is a need to represent empirical findings at the cognitive test indicator level. This level of description has greater consistency, and benefits from operational definitions of its concepts and relations to quantitative data. Considering cognitive test indicators as the foundation of cognitive ontologies carries several implications, including the likely utility of cognitive task taxonomies. The concept of cognitive “test speciation” is introduced to mark the evolution of paradigms sufficiently unique that their results cannot be “mated” productively with others in meta-analysis. Several projects have been initiated to develop cognitive ontologies at the Consortium for Neuropsychiatric Phenomics (www.phenomics.ucla.edu), in the hope that these ultimately will enable more effective collaboration, and facilitate connections of information about cognitive phenotypes to other levels of biological knowledge. Several free web applications are available already to support examination and visualisation of cognitive concepts in the literature (PubGraph, PubAtlas, PubBrain) and to aid collaborative development of cognitive ontologies (Phenowiki and the Cognitive Atlas). It is hoped that these tools will help formalise inference about cognitive concepts in behavioural and neuroimaging studies, and facilitate discovery of the genetic bases of both healthy cognition and cognitive disorders.Keywords
This publication has 42 references indexed in Scilit:
- Collaborative genome-wide association analysis supports a role for ANK3 and CACNA1C in bipolar disorderNature Genetics, 2008
- Phenomics: Building Scaffolds for Biological Hypotheses in the Post-Genomic EraBiological Psychiatry, 2008
- Construction of a 3D probabilistic atlas of human cortical structuresNeuroImage, 2008
- Is COMT a Susceptibility Gene for Schizophrenia?Schizophrenia Bulletin, 2007
- The endophenotype concept in psychiatric geneticsPsychological Medicine, 2006
- Internet encyclopaedias go head to headPublished by Springer Nature ,2005
- Conditional Inactivation of Presenilin 1 Prevents Amyloid Accumulation and Temporarily Rescues Contextual and Spatial Working Memory Impairments in Amyloid Precursor Protein Transgenic MiceJournal of Neuroscience, 2005
- The Human Connectome: A Structural Description of the Human BrainPLoS Computational Biology, 2005
- Psychiatric Genetics: A Methodologic CritiqueAmerican Journal of Psychiatry, 2005
- A short study on the success of the Gene OntologyJournal of Web Semantics, 2004