Lehár Joseph, Stockwell Brent R, Giaever Guri, Nislow Corey
CombinatoRx Incorporated, 245 First Street, Cambridge, Massachusetts 02142, USA.
Nat Chem Biol. 2008 Nov;4(11):674-81. doi: 10.1038/nchembio.120.
Predicting the behavior of living organisms is an enormous challenge given their vast complexity. Efforts to model biological systems require large datasets generated by physical binding experiments and perturbation studies. Genetic perturbations have proven important and are greatly facilitated by the advent of comprehensive mutant libraries in model organisms. Small-molecule chemical perturbagens provide a complementary approach, especially for systems that lack mutant libraries, and can easily probe the function of essential genes. Though single chemical or genetic perturbations provide crucial information associating individual components (for example, genes, proteins or small molecules) with pathways or phenotypes, functional relationships between pathways and modules of components are most effectively obtained from combined perturbation experiments. Here we review the current state of and discuss some future directions for 'combination chemical genetics', the systematic application of multiple chemical or mixed chemical and genetic perturbations, both to gain insight into biological systems and to facilitate medical discoveries.
鉴于生物体极其复杂,预测其行为是一项巨大的挑战。对生物系统进行建模的工作需要通过物理结合实验和扰动研究生成的大型数据集。基因扰动已被证明很重要,而模式生物中全面突变体文库的出现极大地推动了这一研究。小分子化学扰动剂提供了一种补充方法,特别是对于缺乏突变体文库的系统,并且可以轻松探究必需基因的功能。虽然单一的化学或基因扰动提供了将单个成分(例如基因、蛋白质或小分子)与信号通路或表型相关联的关键信息,但成分信号通路和模块之间的功能关系最有效地来自组合扰动实验。在这里,我们综述了“组合化学遗传学”(即系统应用多种化学或化学与基因混合扰动)的现状,并讨论了一些未来的发展方向,以便深入了解生物系统并促进医学发现。