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利用基因表达数据进行代谢通量的表型特异性估计。

Phenotype-specific estimation of metabolic fluxes using gene expression data.

作者信息

González-Arrué Nicolás, Inostroza Isidora, Conejeros Raúl, Rivas-Astroza Marcelo

机构信息

Universidad Tecnológica Metropolitana, Departamento de Biotecnología, Ñuñoa, Santiago 7800003, Chile.

Pontificia Universidad Católica de Valparaíso, Escuela de Ingeniería Bioquímica, Valparaíso, 2362803, Chile.

出版信息

iScience. 2023 Feb 15;26(3):106201. doi: 10.1016/j.isci.2023.106201. eCollection 2023 Mar 17.

Abstract

A cell's genome influences its metabolism via the expression of enzyme-related genes, but transcriptome and fluxome are not perfectly correlated as post-transcriptional mechanisms also regulate reaction's kinetics. Here, we addressed the question: given a transcriptome, how unobserved mechanisms of reaction kinetics should be systematically accounted for when inferring the fluxome? To infer the most likely and least biased fluxome, we present Pheflux, a constraint-based model maximizing Shannon's entropy of fluxes per mRNA. Benchmarked against C fluxes of yeast and bacteria, Pheflux accurately estimates the carbon core metabolism. We applied Pheflux to thousands of normal and tumor cell transcriptomes obtained from The Cancer Genome Atlas. Pheflux showed statistically significantly higher glucose yields on lactate in breast, kidney, and bronchus-lung tumoral cells than their normal counterparts. Results are consistent with the Warburg effect, a hallmark of cancer metabolism, suggesting that Pheflux can be efficiently used to study the metabolism of eukaryotic cells.

摘要

细胞的基因组通过与酶相关基因的表达影响其代谢,但转录组和通量组并非完全相关,因为转录后机制也会调节反应动力学。在此,我们解决了这样一个问题:给定一个转录组,在推断通量组时,应如何系统地考虑未观察到的反应动力学机制?为了推断最可能且偏差最小的通量组,我们提出了Pheflux,这是一种基于约束的模型,可使每个mRNA通量的香农熵最大化。与酵母和细菌的C通量进行基准测试后,Pheflux能够准确估计碳核心代谢。我们将Pheflux应用于从癌症基因组图谱获得的数千个正常和肿瘤细胞转录组。Pheflux显示,乳腺癌、肾癌和支气管肺癌肿瘤细胞中乳酸的葡萄糖产量在统计学上显著高于其正常对应细胞。结果与癌症代谢的标志——瓦氏效应一致,这表明Pheflux可有效地用于研究真核细胞的代谢。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dd90/10006673/19fa5fa04257/fx1.jpg

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