Department of Agronomy, Purdue University, West Lafayette, IN, 47907, USA.
Biost Technology Co., Ltd, Beijing, 102206, China.
Mol Genet Genomics. 2019 Feb;294(1):159-175. doi: 10.1007/s00438-018-1496-4. Epub 2018 Sep 28.
The vasculature of higher plants is important with transport of both nutrient and information molecules. To understand the correspondence of this tissue in molecular responses under phosphate (Pi) deficiency, Plantago major, a model plant for vasculature biology study, was chosen in our analysis. After RNA-Seq and de novo transcriptome assembly of 24 libraries prepared from the vasculature of P. major, 37,309 unigenes with a mean length of 1571 base pairs were obtained. Upon 24 h of Pi deficiency, 237 genes were shown to be differentially expressed in the vasculature of P. major. Among these genes, only 27 have been previously identified to be specifically expressed in the vasculature tissues in other plant species. Temporal expression of several marker genes associated with Pi deficiency showed that the time period of first 24 h is at the beginning stage of more dynamic expression patterns. In this study, we found several physiological processes, e.g., "phosphate metabolism and remobilization", "sucrose metabolism, loading and synthesis", "plant hormone metabolism and signal transduction", "transcription factors", and "metabolism of other minerals", were mainly involved in early responses to Pi deficiency in the vasculature. A number of vasculature genes with promising roles in Pi deficiency adaptation have been identified and deserve further functional characterization. This study clearly demonstrated that plant vasculature is actively involved in Pi deficiency responses and understanding of this process may help to create plants proficient to offset Pi deficiency.
高等植物的脉管系统对于营养物质和信息分子的运输非常重要。为了了解在磷(Pi)缺乏下这种组织在分子响应中的对应关系,我们选择车前草(Plantago major)作为脉管生物学研究的模式植物进行分析。在对 24 个车前草脉管组织文库进行 RNA-Seq 和从头转录组组装后,获得了 37309 个平均长度为 1571 个碱基的非编码基因。在 Pi 缺乏 24 小时后,车前草脉管组织中有 237 个基因显示出差异表达。在这些基因中,只有 27 个之前被鉴定为在其他植物物种的脉管组织中特异性表达。与 Pi 缺乏相关的几个标记基因的时间表达表明,最初的 24 小时是更动态表达模式的开始阶段。在这项研究中,我们发现了几个生理过程,例如“磷酸盐代谢和再利用”、“蔗糖代谢、装载和合成”、“植物激素代谢和信号转导”、“转录因子”和“其他矿物质代谢”,主要参与了 Pi 缺乏对脉管系统的早期响应。已经鉴定出一些在 Pi 缺乏适应中具有重要作用的脉管基因,值得进一步的功能表征。这项研究清楚地表明,植物脉管系统积极参与 Pi 缺乏反应,对这一过程的理解可能有助于创造能够缓解 Pi 缺乏的植物。