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尽管存在预测的核糖开关,但硅藻中的硫胺素代谢基因不受硫胺素调控。

Thiamine metabolism genes in diatoms are not regulated by thiamine despite the presence of predicted riboswitches.

机构信息

Department of Plant Sciences, University of Cambridge, Downing Street, Cambridge, CB2 3EA, UK.

Scottish Association of Marine Sciences, Oban, PA37 1QA, UK.

出版信息

New Phytol. 2022 Sep;235(5):1853-1867. doi: 10.1111/nph.18296. Epub 2022 Jul 1.

Abstract

Thiamine pyrophosphate (TPP), an essential co-factor for all species, is biosynthesised through a metabolically expensive pathway regulated by TPP riboswitches in bacteria, fungi, plants and green algae. Diatoms are microalgae responsible for c. 20% of global primary production. They have been predicted to contain TPP aptamers in the 3'UTR of some thiamine metabolism-related genes, but little information is known about their function and regulation. We used bioinformatics, antimetabolite growth assays, RT-qPCR, targeted mutagenesis and reporter constructs to test whether the predicted TPP riboswitches respond to thiamine supplementation in diatoms. Gene editing was used to investigate the functions of the genes with associated TPP riboswitches in Phaeodactylum tricornutum. We found that thiamine-related genes with putative TPP aptamers are not responsive to supplementation with thiamine or its precursor 4-amino-5-hydroxymethyl-2-methylpyrimidine (HMP), and targeted mutation of the TPP aptamer in the THIC gene encoding HMP-P synthase does not deregulate thiamine biosynthesis in P. tricornutum. Through genome editing we established that PtTHIC is essential for thiamine biosynthesis and another gene, PtSSSP, is necessary for thiamine uptake. Our results highlight the importance of experimentally testing bioinformatic aptamer predictions and provide new insights into the thiamine metabolism shaping the structure of marine microbial communities with global biogeochemical importance.

摘要

焦磷酸硫胺素(TPP)是所有物种必需的辅因子,通过细菌、真菌、植物和绿藻中 TPP 核糖开关调控的代谢代价高昂的途径生物合成。硅藻是负责全球初级生产力约 20%的微藻。据预测,它们在一些与硫胺素代谢相关的基因的 3'UTR 中含有 TPP 适体,但对其功能和调控知之甚少。我们使用生物信息学、代谢物生长测定、RT-qPCR、靶向诱变和报告构建体来测试预测的 TPP 核糖开关是否对硅藻中的硫胺素补充有反应。基因编辑用于研究与相关 TPP 核糖开关相关的基因在三角褐指藻中的功能。我们发现,具有推定 TPP 适体的硫胺素相关基因对硫胺素或其前体 4-氨基-5-羟甲基-2-甲基嘧啶(HMP)的补充没有反应,并且靶向突变编码 HMP-P 合酶的 THIC 基因中的 TPP 适体不会使三角褐指藻中的硫胺素生物合成失控。通过基因组编辑,我们确定 PtTHIC 是硫胺素生物合成所必需的,另一个基因 PtSSSP 是硫胺素摄取所必需的。我们的结果强调了实验测试生物信息适体预测的重要性,并为硫胺素代谢如何塑造具有全球生物地球化学重要性的海洋微生物群落结构提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2005/9544697/9457c02044e9/NPH-235-1853-g008.jpg

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