Structural genomics: beyond the Human Genome Project
- 1 October 1999
- journal article
- review article
- Published by Springer Nature in Nature Genetics
- Vol. 23 (2) , 151-157
- https://doi.org/10.1038/13783
Abstract
With access to whole genome sequences for various organisms and imminent completion of the Human Genome Project, the entire process of discovery in molecular and cellular biology is poised to change. Massively parallel measurement strategies promise to revolutionize how we study and ultimately understand the complex biochemical circuitry responsible for controlling normal development, physiologic homeostasis and disease processes. This information explosion is also providing the foundation for an important new initiative in structural biology. We are about to embark on a program of high-throughput X-ray crystallography aimed at developing a comprehensive mechanistic understanding of normal and abnormal human and microbial physiology at the molecular level. We present the rationale for creation of a structural genomics initiative, recount the efforts of ongoing structural genomics pilot studies, and detail the lofty goals, technical challenges and pitfalls facing structural biologists.Keywords
This publication has 21 references indexed in Scilit:
- 100,000 protein structures for the biologistNature Structural & Molecular Biology, 1998
- Functional analysis of the Escherichia coli genome using the sequence-to-structure-to-function paradigm: identification of proteins exhibiting the Glutaredoxin/Thioredoxin disulfide oxidoreductase activityJournal of Molecular Biology, 1998
- Crystal structure of Escherichia coli HdeANature Structural & Molecular Biology, 1998
- Homology-based fold predictions for Mycoplasma genitalium proteinsJournal of Molecular Biology, 1998
- Tess: A geometric hashing algorithm for deriving 3D coordinate templates for searching structural databases. Application to enzyme active sitesProtein Science, 1997
- Domain elucidation by mass spectrometryStructure, 1996
- Mapping the Protein UniverseScience, 1996
- Structural similarity between TAFs and the heterotetrameric core of the histone octamerNature, 1996
- Probing the solution structure of the DNA‐binding protein Max by a combination of proteolysis and mass spectrometryProtein Science, 1995
- Co-crystal structure of the HNF-3/fork head DNA-recognition motif resembles histone H5Nature, 1993