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首页> 外文期刊>Journal of biomedical optics >Temporal metabolic partitioning of the yeast and protist cellular networks: the cell is a global scale-invariant (fractal or self-similar) multioscillator
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Temporal metabolic partitioning of the yeast and protist cellular networks: the cell is a global scale-invariant (fractal or self-similar) multioscillator

机译:酵母和原生细胞网络的时间代谢分区:该细胞是全局尺度不变的(分形或自相似)多振荡子

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摘要

Britton Chance, electronics expert when a teenager, became an enthusiastic student of biological oscillations, passing on this enthusiasm to many students and colleagues, including one of us (DL). This historical essay traces BC's influence through the accumulated work of DL to DL's many collaborators. The overall temporal organization of mass-energy, information, and signaling networks in yeast in self-synchronized continuous cultures represents, until now, the most characterized example of in vivo elucidation of time structure. Continuous online monitoring of dissolved gases by direct measurement (membrane-inlet mass spectrometry, together with NAD(P)H and flavin fluorescence) gives strain-specific dynamic information from timescales of minutes to hours as does two-photon imaging. The predominantly oscillatory behavior of network components becomes evident, with spontaneously synchronized cellular respiration cycles between discrete periods of increased oxygen consumption (oxidative phase) and decreased oxygen consumption (reductive phase). This temperature-compensated ultradian clock provides coordination, linking temporally partitioned functions by direct feedback loops between the energetic and redox state of the cell and its growing ultrastructure. Multioscillatory outputs in dissolved gases with 13 h, 40 min, and 4 min periods gave statistical self-similarity in power spectral and relative dispersional analyses: i.e., complex nonlinear (chaotic) behavior and a functional scale-free (fractal) network operating simultaneously over several timescales.
机译:十几岁的电子专家Britton Chance成为了一个热衷于生物振荡的学生,并将这种热情传递给了许多学生和同事,包括我们当中的一个人。这篇历史性论文通过DL的积累工作追溯了BC对DL众多合作者的影响。到目前为止,自同步连续培养物中酵母中能量,信息和信号网络的总体时间结构代表了体内阐明时间结构的最典型例子。通过直接测量(膜入口质谱,以及NAD(P)H和黄素荧光)连续在线监测溶解气体,与双光子成像一样,可在几分钟到几小时的时间内提供特定于应变的动态信息。网络组件的主要振荡行为变得很明显,在氧气消耗增加(氧化阶段)和氧气消耗减少(还原阶段)的离散时间段之间自发地同步了细胞呼吸周期。这种经过温度补偿的超电子钟提供协调,通过细胞的高能态和氧化还原态与其不断增长的超微结构之间的直接反馈回路,将时间分割的功能联系起来。在13小时,40分钟和4分钟的时间里,溶解气体中的多振荡输出在功率谱和相对色散分析中给出了统计自相似性:即复杂的非线性(混沌)行为和功能性无标度(分形)网络同时运行几个时间尺度。

著录项

  • 来源
    《Journal of biomedical optics 》 |2019年第5期| 051404.1-051404.17| 共17页
  • 作者单位

    Cardiff University, School of Biosciences, Cardiff, Wales, United Kingdom;

    Keio University, Institute for Advanced Biosciences, Tsuruoka, Japan;

    National Institutes of Health, National Institute on Aging, Laboratory of Cardiovascular Science, Baltimore, Maryland, United States;

    National Institutes of Health, National Institute on Aging, Laboratory of Cardiovascular Science, Baltimore, Maryland, United States;

    University of Lethbridge, Alberta RNA Research and Training Institute and Department of Chemistry and Biochemistry, Alberta, Canada;

    Institute of Biological, Environmental and Rural, Sciences, Aberystwyth, Wales, United Kingdom;

    University of Sheffield, Department of Molecular Biology and Biotechnology, Firth Court, Western Bank, Sheffield, United Kingdom;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    oscillations; rhythms; respiration; redox; mitochondria; metabolism;

    机译:振荡;节奏呼吸;氧化还原线粒体代谢;

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