Sahoo Swagatika, Aurich Maike K, Jonsson Jon J, Thiele Ines
Center for Systems Biology, University of Iceland Reykjavik, Iceland ; Molecular Systems Physiology Group, Luxembourg Centre for Systems Biomedicine, University of Luxembourg Belval, Luxembourg.
Department of Biochemistry and Molecular Biology, Faculty of Medicine, University of Iceland Reykjavik, Iceland ; Department of Genetics and Molecular Medicine, Landspitali, National University Hospital of Iceland Reykjavik, Iceland.
Front Physiol. 2014 Mar 11;5:91. doi: 10.3389/fphys.2014.00091. eCollection 2014.
Membrane transporters enable efficient cellular metabolism, aid in nutrient sensing, and have been associated with various diseases, such as obesity and cancer. Genome-scale metabolic network reconstructions capture genomic, physiological, and biochemical knowledge of a target organism, along with a detailed representation of the cellular metabolite transport mechanisms. Since the first reconstruction of human metabolism, Recon 1, published in 2007, progress has been made in the field of metabolite transport. Recently, we published an updated reconstruction, Recon 2, which significantly improved the metabolic coverage and functionality. Human metabolic reconstructions have been used to investigate the role of metabolism in disease and to predict biomarkers and drug targets. Given the importance of cellular transport systems in understanding human metabolism in health and disease, we analyzed the coverage of transport systems for various metabolite classes in Recon 2. We will review the current knowledge on transporters (i.e., their preferred substrates, transport mechanisms, metabolic relevance, and disease association for each metabolite class). We will assess missing coverage and propose modifications and additions through a transport module that is functional when combined with Recon 2. This information will be valuable for further refinements. These data will also provide starting points for further experiments by highlighting areas of incomplete knowledge. This review represents the first comprehensive overview of the transporters involved in central metabolism and their transport mechanisms, thus serving as a compendium of metabolite transporters specific for human metabolic reconstructions.
膜转运蛋白有助于实现高效的细胞代谢,辅助营养感知,并且与多种疾病相关,如肥胖症和癌症。基因组规模的代谢网络重建能够捕捉目标生物体的基因组、生理学和生物化学知识,以及细胞代谢物转运机制的详细表征。自2007年发表人类代谢的首次重建版本Recon 1以来,代谢物转运领域已取得进展。最近,我们发表了一个更新版本Recon 2,它显著提高了代谢覆盖范围和功能。人类代谢重建已被用于研究代谢在疾病中的作用,并预测生物标志物和药物靶点。鉴于细胞转运系统在理解健康和疾病中的人类代谢方面的重要性,我们分析了Recon 2中各种代谢物类别的转运系统覆盖范围。我们将回顾关于转运蛋白的现有知识(即它们对每种代谢物类别的首选底物、转运机制、代谢相关性和疾病关联)。我们将评估缺失的覆盖范围,并通过一个与Recon 2结合时具有功能的转运模块提出修改和补充建议。这些信息对于进一步完善将很有价值。这些数据还将通过突出知识不完整的领域为进一步实验提供起点。本综述首次全面概述了参与中心代谢的转运蛋白及其转运机制,从而成为人类代谢重建特有的代谢物转运蛋白的汇编。