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在低氮供应条件下,两种根段中铵态氮和硝态氮净通量具有显著差异的杨树的生理特性和转录组剖析。

Physiological Characteristics and Transcriptomic Dissection in Two Root Segments with Contrasting Net Fluxes of Ammonium and Nitrate of Poplar Under Low Nitrogen Availability.

机构信息

State key Laboratory of Tree Genetics and Breeding, Key Laboratory of Silviculture of the National Forestry and Grassland Administration, Research Institute of Forestry, Chinese Academy of Forestry, Beijing 100091, P. R. China.

Forest, Range and Watershed Management Department, Agriculture and Natural Resources Faculty, Chinese Academy of Forestry, Beijing 100091, P. R. China.

出版信息

Plant Cell Physiol. 2022 Jan 25;63(1):30-44. doi: 10.1093/pcp/pcab137.

DOI:10.1093/pcp/pcab137
PMID:34508646
Abstract

To investigate physiological and transcriptomic regulation mechanisms underlying the distinct net fluxes of NH4+ and NO3- in different root segments of Populus species under low nitrogen (N) conditions, we used saplings of Populus × canescens supplied with either 500 (normal N) or 50 (low N) μM NH4NO3. The net fluxes of NH4+ and NO3-, the concentrations of NH4+, amino acids and organic acids and the enzymatic activities of nitrite reductase (NiR) and glutamine synthetase (GS) in root segment II (SII, 35-70 mm to the apex) were lower than those in root segment I (SI, 0-35 mm to the apex). The net NH4+ influxes and the concentrations of organic acids were elevated, whereas the concentrations of NH4+ and NO3- and the activities of NiR and GS were reduced in SI and SII in response to low N. A number of genes were significantly differentially expressed in SII vs SI and in both segments grown under low vs normal N conditions, and these genes were mainly involved in the transport of NH4+ and NO3-, N metabolism and adenosine triphosphate synthesis. Moreover, the hub gene coexpression networks were dissected and correlated with N physiological processes in SI and SII under normal and low N conditions. These results suggest that the hub gene coexpression networks play pivotal roles in regulating N uptake and assimilation, amino acid metabolism and the levels of organic acids from the tricarboxylic acid cycle in the two root segments of poplars in acclimation to low N availability.

摘要

为了研究在低氮(N)条件下,不同种杨树根系不同部位 NH4+和 NO3-净流量差异的生理和转录组调控机制,我们用 500(正常 N)或 50(低 N)μM NH4NO3 处理美洲黑杨×欧美杨实生苗。结果表明,与根尖 0-35mm 的根段 I(SI)相比,根尖 35-70mm 的根段 II(SII)的 NH4+和 NO3-净流量、NH4+浓度、氨基酸和有机酸浓度以及亚硝酸还原酶(NiR)和谷氨酰胺合成酶(GS)的酶活性较低。低 N 处理后,SI 和 SII 的 NH4+净流入量增加,而 NH4+和 NO3-浓度以及 NiR 和 GS 的活性降低。低 N 条件下,SII 与 SI 以及两个根段之间存在大量差异表达基因,这些基因主要涉及 NH4+和 NO3-的转运、N 代谢和三羧酸循环中 ATP 的合成。此外,还对正常和低 N 条件下 SI 和 SII 中与 N 生理过程相关的枢纽基因共表达网络进行了剖析和关联。这些结果表明,枢纽基因共表达网络在调控杨树两个根段对低 N 供应的 N 吸收和同化、氨基酸代谢以及三羧酸循环中有机酸水平方面起着关键作用。

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