Hall Benjamin A, Jackson Ethan, Hajnal Alex, Fisher Jasmin
Microsoft Research, 21 Station Road, Cambridge CB1 2FB, UK
Microsoft Research, One Microsoft Way, Redmond, WA 98052, USA.
J R Soc Interface. 2014 Sep 6;11(98):20140245. doi: 10.1098/rsif.2014.0245.
Caenorhabditis elegans vulval development is a paradigm system for understanding cell differentiation in the process of organogenesis. Through temporal and spatial controls, the fate pattern of six cells is determined by the competition of the LET-23 and the Notch signalling pathways. Modelling cell fate determination in vulval development using state-based models, coupled with formal analysis techniques, has been established as a powerful approach in predicting the outcome of combinations of mutations. However, computing the outcomes of complex and highly concurrent models can become prohibitive. Here, we show how logic programs derived from state machines describing the differentiation of C. elegans vulval precursor cells can increase the speed of prediction by four orders of magnitude relative to previous approaches. Moreover, this increase in speed allows us to infer, or 'retrodict', compatible genomes from cell fate patterns. We exploit this technique to predict highly variable cell fate patterns resulting from dig-1 reduced-function mutations and let-23 mosaics. In addition to the new insights offered, we propose our technique as a platform for aiding the design and analysis of experimental data.
秀丽隐杆线虫的外阴发育是理解器官发生过程中细胞分化的一个典范系统。通过时间和空间控制,六个细胞的命运模式由LET - 23和Notch信号通路的竞争决定。使用基于状态的模型以及形式分析技术来模拟外阴发育中的细胞命运决定,已成为预测突变组合结果的一种强大方法。然而,计算复杂且高度并发的模型结果可能会变得令人望而却步。在这里,我们展示了从描述秀丽隐杆线虫外阴前体细胞分化的状态机派生而来的逻辑程序如何相对于以前的方法将预测速度提高四个数量级。此外,速度的提高使我们能够从细胞命运模式推断或“反推”兼容的基因组。我们利用这项技术预测由dig - 1功能降低突变和let - 23镶嵌体产生的高度可变的细胞命运模式。除了提供的新见解之外,我们还将我们的技术作为一个辅助实验数据设计和分析的平台提出。