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Systems and synthetic biology approaches in understanding biological oscillators

机译:了解生物振荡器的系统和合成生物学方法

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摘要

Background: Self-sustained oscillations are a ubiquitous and vital phenomenon in living systems. From primitive single-cellular bacteria to the most sophisticated organisms, periodicities have been observed in a broad spectrum of biological processes such as neuron firing, heart beats, cell cycles, circadian rhythms, etc. Defects in these oscillators can cause diseases from insomnia to cancer. Elucidating their fundamental mechanisms is of great significance to diseases, and yet challenging, due to the complexity and diversity of these oscillators. Results: Approaches in quantitative systems biology and synthetic biology have been most effective by simplifying the systems to contain only the most essential regulators. Here, we will review major progress that has been made in understanding biological oscillators using these approaches. The quantitative systems biology approach allows for identification of the essential components of an oscillator in an endogenous system. The synthetic biology approach makes use of the knowledge to design the simplest, de novo oscillators in both live cells and cell-free systems. These synthetic oscillators are tractable to further detailed analysis and manipulations. Conclusion: With the recent development of biological and computational tools, both approaches have made significant achievements.
机译:背景:自持振荡是生命系统中普遍存在的重要现象。从原始的单细胞细菌到最复杂的生物,已在广泛的生物学过程中观察到周期性,例如神经元放电,心跳,细胞周期,昼夜节律等。这些振荡器的缺陷会导致疾病,从失眠到癌症。由于这些振荡器的复杂性和多样性,阐明它们的基本机制对疾病具有重要意义,但具有挑战性。结果:通过简化系统以仅包含最基本的调节剂,量化系统生物学和合成生物学的方法最为有效。在这里,我们将回顾使用这些方法在理解生物振荡器方面取得的重大进展。定量系统生物学方法允许识别内生系统中振荡器的基本成分。合成生物学方法利用这些知识来设计活细胞和无细胞系统中最简单的从头振荡器。这些合成振荡器易于进行进一步的详细分析和处理。结论:随着生物学和计算工具的最新发展,这两种方法都取得了重大成就。

著录项

  • 来源
    《Quantitative biology》 |2018年第1期|1-14|共14页
  • 作者

    Zhengda Li; Qiong Yang;

  • 作者单位

    Department of Biophysics, University of Michigan, Ann Arbor, Ml 48109, USA,Department of Computational Medicine & Bioinformatics, University of Michigan, Ann Arbor, Ml 48109, USA;

    Department of Biophysics, University of Michigan, Ann Arbor, Ml 48109, USA,Department of Computational Medicine & Bioinformatics, University of Michigan, Ann Arbor, Ml 48109, USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    biological oscillators; synthetic oscillators; circuit design principles;

    机译:生物振荡器合成振荡器;电路设计原理;
  • 入库时间 2022-08-17 23:18:13

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