Department of Electrical Engineering, Laboratory of Control and Systems Biology, National Tsing Hua University, Hsinchu, Taiwan, ROC.
Bioinformatics. 2012 Jun 15;28(12):1604-11. doi: 10.1093/bioinformatics/bts159. Epub 2012 Apr 6.
The major function of signal transduction pathways in cells is to sense signals from the environment and process the information through signaling molecules in order to regulate the activity of transcription factors. On the molecular level, the information transmitted by a small number of signal molecules is amplified in the internal signaling pathway through enzyme catalysis, molecular modification and via the activation or inhibition of interactions. However, the dynamic system behavior of a signaling pathway can be complex and, despite knowledge of the pathway components and interactions, it is still a challenge to interpret the pathways behavior. Therefore, a systematic method is proposed in this study to quantify the signal transduction ability.
Based on the non-linear signal transduction system, signal transduction ability can be investigated by solving a Hamilton-Jacobi inequality (HJI)-constrained optimization problem. To avoid difficulties associated with solving a complex HJI-constrained optimization problem for signal transduction ability, the Takagi-Sugeno fuzzy model is introduced to approximate the non-linear signal transduction system by interpolating several local linear systems so that the HJI-constrained optimization problem can be replaced by a linear matrix inequality (LMI)-constrained optimization problem. The LMI problem can then be efficiently solved for measuring signal transduction ability. Finally, the signal transduction ability of two important signal transduction pathways was measured by the proposed method and confirmed using experimental data, which is useful for biotechnological and therapeutic application and drug design.
细胞中信号转导途径的主要功能是感知来自环境的信号,并通过信号分子处理信息,以调节转录因子的活性。在分子水平上,少量信号分子传递的信息通过酶催化、分子修饰以及通过激活或抑制相互作用在内部信号通路中放大。然而,信号通路的动态系统行为可能很复杂,尽管了解了通路的组成部分和相互作用,但解释通路的行为仍然是一个挑战。因此,本研究提出了一种系统的方法来量化信号转导能力。
基于非线性信号转导系统,可以通过求解哈密顿-雅可比不等式(HJI)约束优化问题来研究信号转导能力。为了避免求解复杂的 HJI 约束优化问题来计算信号转导能力所带来的困难,引入了 Takagi-Sugeno 模糊模型,通过插值几个局部线性系统来近似非线性信号转导系统,从而将 HJI 约束优化问题替换为线性矩阵不等式(LMI)约束优化问题。然后可以有效地解决 LMI 问题来测量信号转导能力。最后,通过所提出的方法测量了两种重要信号转导途径的信号转导能力,并通过实验数据进行了验证,这对于生物技术和治疗应用以及药物设计非常有用。