人类溶质载体超家族的代谢图谱。

IF 8.5 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Molecular Systems Biology Pub Date : 2025-06-01 Epub Date: 2025-05-12 DOI:10.1038/s44320-025-00106-4
Tabea Wiedmer, Shao Thing Teoh, Eirini Christodoulaki, Gernot Wolf, Chengzhe Tian, Vitaly Sedlyarov, Abigail Jarret, Philipp Leippe, Fabian Frommelt, Alvaro Ingles-Prieto, Sabrina Lindinger, Barbara M G Barbosa, Svenja Onstein, Christoph Klimek, Julio Garcia, Iciar Serrano, Daniela Reil, Diana Santacruz, Mary Piotrowski, Stephen Noell, Christoph Bueschl, Huanyu Li, Gamma Chi, Stefan Mereiter, Tiago Oliveira, Josef M Penninger, David B Sauer, Claire M Steppan, Coralie Viollet, Kristaps Klavins, J Thomas Hannich, Ulrich Goldmann, Giulio Superti-Furga
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引用次数: 0

摘要

溶质载体(SLC)转运体控制着大多数跨细胞膜的化学交换,是代谢调节的组成部分,而代谢调节又与细胞功能和身份有关。尽管他们的关键作用,个体功能的SLC超家族成员没有被系统地评估。我们分别测定了378个SLC和441个SLC在敲除或野生型等基因细胞背景下过表达时的代谢和转录谱。靶向代谢组学提供了189种细胞内代谢物的指纹图谱,而转录组学提供了由SLC表达调节的细胞程序的见解。除了102种SLCs与其已知底物直接相关的代谢谱外,我们还鉴定了71种SLCs的推定底物或代谢途径连接,其中没有先前注释的真正底物,包括SLC45A4作为一种新的多胺转运体。通过比较分子谱,我们确定了功能相关的SLC基团,包括一些对渗透平衡和糖基化有明显影响的SLC基团。本文对功能相关人类基因的评估可以作为其他系统研究的蓝图,并支持对SLCs功能作用的未来研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Metabolic mapping of the human solute carrier superfamily.

Solute carrier (SLC) transporters govern most of the chemical exchange across cellular membranes and are integral to metabolic regulation, which in turn is linked to cellular function and identity. Despite their key role, individual functions of the SLC superfamily members were not evaluated systematically. We determined the metabolic and transcriptional profiles upon SLC overexpression in knock-out or wild-type isogenic cell backgrounds for 378 SLCs and 441 SLCs, respectively. Targeted metabolomics provided a fingerprint of 189 intracellular metabolites, while transcriptomics offered insights into cellular programs modulated by SLC expression. Beyond the metabolic profiles of 102 SLCs directly related to their known substrates, we identified putative substrates or metabolic pathway connections for 71 SLCs without previously annotated bona fide substrates, including SLC45A4 as a new polyamine transporter. By comparing the molecular profiles, we identified functionally related SLC groups, including some with distinct impacts on osmolyte balancing and glycosylation. The assessment of functionally related human genes presented here may serve as a blueprint for other systematic studies and supports future investigations into the functional roles of SLCs.

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来源期刊
Molecular Systems Biology
Molecular Systems Biology 生物-生化与分子生物学
CiteScore
18.50
自引率
1.00%
发文量
62
审稿时长
6-12 weeks
期刊介绍: Systems biology is a field that aims to understand complex biological systems by studying their components and how they interact. It is an integrative discipline that seeks to explain the properties and behavior of these systems. Molecular Systems Biology is a scholarly journal that publishes top-notch research in the areas of systems biology, synthetic biology, and systems medicine. It is an open access journal, meaning that its content is freely available to readers, and it is peer-reviewed to ensure the quality of the published work.
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