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系统生物学中的概念建模促进了经验发现:mRNA 生命周期。

Conceptual modeling in systems biology fosters empirical findings: the mRNA lifecycle.

机构信息

Faculty of Industrial Engineering and Management, Technion, Israel Institute of Technology, Haifa, Israel.

出版信息

PLoS One. 2007 Sep 12;2(9):e872. doi: 10.1371/journal.pone.0000872.

Abstract

One of the main obstacles to understanding complex biological systems is the extent and rapid evolution of information, way beyond the capacity individuals to manage and comprehend. Current modeling approaches and tools lack adequate capacity to model concurrently structure and behavior of biological systems. Here we propose Object-Process Methodology (OPM), a holistic conceptual modeling paradigm, as a means to model both diagrammatically and textually biological systems formally and intuitively at any desired number of levels of detail. OPM combines objects, e.g., proteins, and processes, e.g., transcription, in a way that is simple and easily comprehensible to researchers and scholars. As a case in point, we modeled the yeast mRNA lifecycle. The mRNA lifecycle involves mRNA synthesis in the nucleus, mRNA transport to the cytoplasm, and its subsequent translation and degradation therein. Recent studies have identified specific cytoplasmic foci, termed processing bodies that contain large complexes of mRNAs and decay factors. Our OPM model of this cellular subsystem, presented here, led to the discovery of a new constituent of these complexes, the translation termination factor eRF3. Association of eRF3 with processing bodies is observed after a long-term starvation period. We suggest that OPM can eventually serve as a comprehensive evolvable model of the entire living cell system. The model would serve as a research and communication platform, highlighting unknown and uncertain aspects that can be addressed empirically and updated consequently while maintaining consistency.

摘要

理解复杂生物系统的主要障碍之一是信息的广泛和快速演变,远远超出了个体管理和理解的能力。当前的建模方法和工具缺乏足够的能力来同时对生物系统的结构和行为进行建模。在这里,我们提出了对象-过程方法(OPM),这是一种整体概念建模范例,可用于以直观的方式对生物系统进行图形和文本形式的建模,并且可以在任意数量的细节级别上进行建模。OPM 将对象(例如蛋白质)和过程(例如转录)结合在一起,对于研究人员和学者来说,这种方式简单易懂。作为一个例子,我们对酵母 mRNA 生命周期进行了建模。mRNA 生命周期涉及核内的 mRNA 合成、mRNA 向细胞质的运输以及随后在细胞质中的翻译和降解。最近的研究已经确定了特定的细胞质焦点,称为处理体,其中包含大量的 mRNA 和降解因子复合物。我们在此介绍的这个细胞子系统的 OPM 模型导致了这些复合物的一个新成分的发现,即翻译终止因子 eRF3。在长期饥饿后观察到 eRF3 与处理体的关联。我们认为,OPM 最终可以作为整个活细胞系统的综合可进化模型。该模型将作为一个研究和交流平台,突出显示未知和不确定的方面,这些方面可以通过经验解决,并相应地进行更新,同时保持一致性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/18fa/1964809/b527b4533802/pone.0000872.g001.jpg

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