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proteomics
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Article
43 sectionsContents
- History and etymology
- Complexity of the problem
- Post-translational modifications
- Phosphorylation
- Ubiquitination
- Additional modifications
- Distinct proteins are made under distinct settings
- Limitations of genomics and proteomics studies
- Methods of studying proteins
- Protein detection with antibodies (immunoassays)
- Antibody-free protein detection
- Detection methods
- Separation methods
- Hybrid technologies
- Current research methodologies
- High-throughput proteomic technologies
- Mass spectrometry and protein profiling
- Affinity proteomics
- Protein chips
- Reverse-phased protein microarrays
- Protein Detection via Bioorthogonal Chemistry
- Practical applications
- Drug discovery
- Interaction proteomics and protein networks
- Expression proteomics
- Biomarkers
- Proteogenomics
- Structural proteomics
- Bioinformatics for proteomics (proteome informatics)
- Protein identification
- Protein structure
- Post-translational modifications
- Computational methods in studying protein biomarkers
- Emerging trends
- Systems biology
- Human plasma proteome
- Journals
- See also
- Protein databases
- Research centers
- References
- Bibliography
- External links
300px|thumb|right|Robotic preparation of MALDI [[mass spectrometry samples on a sample carrier]]
Proteomics is the large-scale study of proteins. It is an interdisciplinary domain that has benefited greatly from the genetic information of various genome projects, including the Human Genome Project. It covers the exploration of proteomes from the overall level of protein composition, structure, and activity, and is an important component of functional genomics. The proteome is the entire set of proteins produced or modified by an organism or system.