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TOR 协调植物中核苷酸可用性与核糖体生物发生。

TOR coordinates nucleotide availability with ribosome biogenesis in plants.

机构信息

Department of Plant and Microbial Biology, University of California, Berkeley, CA 94720, USA.

Plant Gene Expression Center, USDA Agricultural Research Service, Albany, CA 94710, USA.

出版信息

Plant Cell. 2021 Jul 2;33(5):1615-1632. doi: 10.1093/plcell/koab043.

Abstract

TARGET OF RAPAMYCIN (TOR) is a conserved eukaryotic Ser/Thr protein kinase that coordinates growth and metabolism with nutrient availability. We conducted a medium-throughput functional genetic screen to discover essential genes that promote TOR activity in plants, and identified a critical regulatory enzyme, cytosolic phosphoribosyl pyrophosphate (PRPP) synthetase (PRS4). PRS4 synthesizes cytosolic PRPP, a key upstream metabolite in nucleotide synthesis and salvage pathways. We found that prs4 knockouts are embryo-lethal in Arabidopsis thaliana, and that silencing PRS4 expression in Nicotiana benthamiana causes pleiotropic developmental phenotypes, including dwarfism, aberrant leaf shape, and delayed flowering. Transcriptomic analysis revealed that ribosome biogenesis is among the most strongly repressed processes in prs4 knockdowns. Building on these results, we discovered that TOR activity is inhibited by chemical or genetic disruption of nucleotide biosynthesis, but that this effect can be reversed by supplying plants with nucleobases. Finally, we show that TOR transcriptionally promotes nucleotide biosynthesis to support the demands of ribosomal RNA synthesis. We propose that TOR coordinates ribosome biogenesis with nucleotide availability in plants to maintain metabolic homeostasis and support growth.

摘要

雷帕霉素靶蛋白(TOR)是一种保守的真核丝氨酸/苏氨酸蛋白激酶,它协调生长和代谢与营养供应。我们进行了高通量的功能遗传筛选,以发现促进植物 TOR 活性的必需基因,并鉴定出一种关键的调节酶,胞质磷酸核糖焦磷酸(PRPP)合成酶(PRS4)。PRS4 合成胞质 PRPP,这是核苷酸合成和补救途径中的关键上游代谢物。我们发现 Arabidopsis thaliana 中的 prs4 敲除体是胚胎致死的,并且在 Nicotiana benthamiana 中沉默 PRS4 的表达会导致多种发育表型,包括矮化、叶片形状异常和开花延迟。转录组分析显示,核糖体生物发生是 prs4 敲低中受抑制最强的过程之一。基于这些结果,我们发现核苷酸生物合成的化学或遗传破坏会抑制 TOR 活性,但通过向植物提供核碱基可以逆转这种效应。最后,我们表明 TOR 通过转录促进核苷酸生物合成来支持核糖体 RNA 合成的需求。我们提出 TOR 在植物中协调核糖体生物发生与核苷酸可用性,以维持代谢平衡并支持生长。

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