Introduction to Systems Biology

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课程主页: https://www.coursera.org/archive/systems-biology

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Icahn School of Medicine at Mount Sinai

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This course will introduce the student to contemporary Systems Biology focused on mammalian cells, their constituents and their functions. Biology is moving from molecular to modular. As our knowledge of our genome and gene expression deepens and we develop lists of molecules (proteins, lipids, ions) involved in cellular processes, we need to understand how these molecules interact with each other to form modules that act as discrete functional systems. These systems underlie core subcellular processes such as signal transduction, transcription, motility and electrical excitability. In turn these processes come together to exhibit cellular behaviors such as secretion, proliferation and action potentials. What are the properties of such subcellular and cellular systems? What are the mechanisms by which emergent behaviors of systems arise? What types of experiments inform systems-level thinking? Why do we need computation and simulations to understand these systems? The course will develop multiple lines of reasoning to answer the questions listed above. Two major reasoning threads are: the design, execution and interpretation of multivariable experiments that produce large data sets; quantitative reasoning, models and simulations. Examples will be discussed to demonstrate “how” cell- level functions arise and “why” mechanistic knowledge allows us to predict cellular behaviors leading to disease states and drug responses.

系统生物学简介:本课程将向学生介绍当代系统生物学,重点是哺乳动物细胞,它们的成分和功能。生物学正在从分子学转向模块学。随着我们对基因组和基因表达的了解加深,并且我们开发了参与细胞过程的分子(蛋白质,脂质,离子)列表,我们需要了解这些分子如何相互作用以形成充当离散功能系统的模块。这些系统是核心亚细胞过程的基础,例如信号转导,转录,运动性和电兴奋性。这些过程反过来又一起表现出细胞行为,例如分泌,增殖和动作电位。这种亚细胞和细胞系统的特性是什么?系统出现紧急行为的机制是什么?哪些类型的实验可指导系统级思考?为什么我们需要计算和仿真来理解这些系统? 本课程将开发多条推理路线来回答上述问题。两个主要的推理线程是:产生大量数据集的多变量实验的设计,执行和解释;定量推理,模型和模拟。我们将讨论一些例子,以证明“细胞水平的功能是如何产生的”以及“为什么”的机械知识使我们能够预测导致疾病状态和药物反应的细胞行为。

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