Chemical genetics: Reshaping biology through chemistry
- 1 July 2007
- journal article
- Published by Taylor & Francis in HFSP Journal
- Vol. 1 (2) , 104-114
- https://doi.org/10.2976/1.2752600
Abstract
To understand biological processes, biologists typically study how perturbations of protein functions affect the phenotype. Protein activity in living cells can be influenced in many different ways: by manipulation of the genomic information, by injecting inhibitory antibodies, or, more recently, by the use of ribonucleic acid‐medicated interference (RNAi). All these methods have proven to be extremely helpful, as they possess a high degree of specificity. However, they are less suitable for experiments requiring precise timing and fast reversibility of the perturbation. The advantage of small molecules is that they specifically interact with their target on a fast time scale and often in a reversible manner. In the last 15 years, this approach, termed “chemical genetics,” has received a lot of attention. The term genetics pays tribute to the analogy between chemical genetics and the classic genetic approach, where manipulations at the gene level are used to draw conclusions about the function of the corresponding protein. Chemical genetics has only recently been used as a systematic approach in biology. The term was coined in the 1990's, when combinatorial chemistry was developed as a fast method to synthesize large compound libraries [Mitchison (1994) “Towards a pharmacological genetics,” Chem. Biol. 1, 3–6; Schreiber (1998)"Chemical genetics resulting from a passion for synthetic organic chemistry,” Bioorg. Med. Chem. 6, 1127–1152].Keywords
This publication has 71 references indexed in Scilit:
- Chemical genetics suggests a critical role for lysyl oxidase in zebrafish notochord morphogenesisMolecular BioSystems, 2006
- Discovery of protein phosphatase inhibitor classes by biology-oriented synthesisProceedings of the National Academy of Sciences, 2006
- Biochemical Suppression of Small-Molecule Inhibitors: A Strategy to Identify Inhibitor Targets and Signaling Pathway ComponentsChemistry & Biology, 2006
- Synthetic small molecules that control stem cell fateProceedings of the National Academy of Sciences, 2003
- Specificity and mechanism of action of some commonly used protein kinase inhibitorsBiochemical Journal, 2000
- Small Molecule Inhibitor of Mitotic Spindle Bipolarity Identified in a Phenotype-Based ScreenScience, 1999
- Target of rapamycin in yeast, TOR2, is an essential phosphatidylinositol kinase homolog required for G1 progressionCell, 1993
- Feedback control of mitosis in budding yeastCell, 1991
- S. cerevisiae genes required for cell cycle arrest in response to loss of microtubule functionCell, 1991
- Two distinct signal transmission pathways in T lymphocytes are inhibited by complexes formed between an immunophilin and either FK506 or rapamycin.Proceedings of the National Academy of Sciences, 1990