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利用分泌组的 NMR 分析,在细胞自主系统中解析时钟和生长代谢的二元性。

Deciphering the Duality of Clock and Growth Metabolism in a Cell Autonomous System Using NMR Profiling of the Secretome.

机构信息

Department of Systems Pharmacology and Translational Therapeutics, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA 19104, USA.

Institute of Translational Medicine and Therapeutics, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA 19104, USA.

出版信息

Metabolites. 2016 Jul 27;6(3):23. doi: 10.3390/metabo6030023.

Abstract

Oscillations in circadian metabolism are crucial to the well being of organism. Our understanding of metabolic rhythms has been greatly enhanced by recent advances in high-throughput systems biology experimental techniques and data analysis. In an in vitro setting, metabolite rhythms can be measured by time-dependent sampling over an experimental period spanning one or more days at sufficent resolution to elucidate rhythms. We hypothesized that cellular metabolic effects over such a time course would be influenced by both oscillatory and circadian-independent cell metabolic effects. Here we use nuclear magnetic resonance (NMR) spectroscopy-based metabolic profiling of mammalian cell culture media of synchronized U2 OS cells containing an intact transcriptional clock. The experiment was conducted over 48 h, typical for circadian biology studies, and samples collected at 2 h resolution to unravel such non-oscillatory effects. Our data suggest specific metabolic activities exist that change continuously over time in this settting and we demonstrate that the non-oscillatory effects are generally monotonic and possible to model with multivariate regression. Deconvolution of such non-circadian persistent changes are of paramount importance to consider while studying circadian metabolic oscillations.

摘要

昼夜代谢波动对生物体的健康至关重要。近年来,高通量系统生物学实验技术和数据分析的进步极大地促进了我们对代谢节律的理解。在体外环境中,可以通过在足以阐明节律的实验期间内进行时间依赖性采样来测量代谢物节律。我们假设,在这样的时间过程中,细胞代谢的影响将受到振荡和非昼夜依赖的细胞代谢影响的共同作用。在这里,我们使用基于核磁共振(NMR)光谱的代谢组学方法对含有完整转录钟的同步 U2 OS 细胞的哺乳动物细胞培养物的培养基进行了分析。该实验进行了 48 小时,这是典型的昼夜生物学研究时间,并且以 2 小时的分辨率采集样本,以揭示这种非振荡效应。我们的数据表明,在这种设置下,随着时间的推移存在特定的代谢活性会不断变化,并且我们证明,非振荡效应通常是单调的,可以用多元回归进行建模。在研究昼夜代谢波动时,考虑这种非昼夜持续变化的解卷积至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f029/5041122/cb8ac7d07dfc/metabolites-06-00023-g001.jpg

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