| Literature DB >> 27293103 |
Lin-Hui Yu1, Jie Wu1, Hui Tang1, Yang Yuan1, Shi-Mei Wang2, Yu-Ping Wang3, Qi-Sheng Zhu2, Shi-Gui Li3, Cheng-Bin Xiang1.
Abstract
Nitrogen is essential for plant survival and growth. Excessive application ofEntities:
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Year: 2016 PMID: 27293103 PMCID: PMC4904239 DOI: 10.1038/srep27795
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1NLP7 improves plant growth under both nitrate-rich and -poor conditions.
(a) The phenotypes of the 16-day-old WT, nlp7-1 and NLP7-overexpressing plants grown on medium plates containing different concentrations of nitrate with a density of 80 plants per plate. Diameter of the plate is 14.5 cm. Bar = 1.7 cm. (b) Shoot fresh weight of the 16-day-old plants grown under different nitrate conditions. Values are the mean ± standard deviation (SD) of three independent replications each containing 20 plants per genotype (*P < 0.05, **P < 0.01). (c–d) The chlorophyll a (c) and b (d) contents of the 16-day-old plants. Values are the mean ± SD of three independent replications (*P < 0.05, **P < 0.01). (e) The phenotypes of the 10-day-old plants grown with a density of 28 plants per plate under different nitrate conditions. Bar = 0.5 cm. (f) Fresh weight of the 10-day-old plants under different nitrate conditions. Values are the mean ± SD of three independent replications each containing 20 plants per genotype (*P < 0.05, **P < 0.01, ***P < 0.001).
Figure 2Root architecture and shoot/root ratio of NLP7-overexpressing, WT and nlp7-1 plants.
(a) The phenotypes of the 14-day-old plants on vertical plates containing different concentrations of nitrate. Diameter of the plate is 14.5 cm. Bar = 1.5 cm. (b–f) Shoot fresh weight (b), root fresh weight (c), shoot/root ratio (d), primary root length (e) and lateral root density (f) of the plants under different nitrate conditions. Values are the mean ± SD of six independent replications each containing 5 plants per genotype (*P < 0.05, **P < 0.01).
Figure 3Enhanced N assimilation and nitrate uptake in NLP7-overexpressing plants.
16-day-old seedlings grown on agar medium with different concentrations of nitrate were used for metabolite analyses and enzymatic assays as described in Material and Methods. Values are the mean ± SD of three replications (*P < 0.05, **P < 0.01, ***P < 0.001). (a,b) Contents of glutamate (a), glutamine (b) in the plants grown under 1 mM, 3 mM and 10 mM nitrate conditions. (c) Enzyme activities of glutamine synthetase in the plants under different nitrate conditions. (d,e) Content of total protein (d) and nitrate (e) in the plants under different nitrate conditions. (f) Enzyme activities of nitrate reductase in the plants under different nitrate conditions. (g) Nitrate uptake activity assay. 10-day-old seedlings were labeled with 5 mM 15NO3−for 30 min and the amount of 15NO3− taken into the plants was measured. Values are the mean ± SD of three replications (**P < 0.01). DW, dry weight.
Figure 4NLP7 broadly regulates the genes related to N utilization and signaling.
7-day-old plants grown on MS medium were transferred to N-free nutrient solution for 3 days, and then harvested for qRT-PCR analysis after re-supplied with 3 mM NO3− for 0, 0.5 and 1 h. UBQ5 was used as an internal control. NRT, nitrate transporter; GS2, glutamine synthetase 2; NIA, nitrate reductase; NIR1, nitrite reductase 1; NLA, nitrogen limitation adaptation; LBD, lateral organ boundary domain; AFB3, auxin signaling F-box 3. Values are the mean ± SD of three replications (*P < 0.05, **P < 0.01, ***P < 0.001).
Figure 5NLP7 enhances photosynthesis and affects C assimilation.
(a) Image of 5-week-old NLP7-overexpressing, nlp7-1 and WT plants grew in N rich soil. Bar = 2.5 cm. (b) Chlorophyll contents of the rosette leaves of the 5-week-old plants. Values are the mean ± SD of three replications (*P < 0.05). (c) Comparisons of photosynthesis rate in the 5-week-old NLP7-overexpressing, nlp7-1 and WT plants. Photosynthesis rate was measured as described in Experimental procedures. Two measurements were made for each plant, and eight plants were used for each line. Values are the mean ± SD (**P < 0.01, ***P < 0.001). (d–f) C content (d), N content (e) and C/N ratio (f) of the NLP7-overexpressing, nlp7-1 and WT plants. 16-day-old seedlings grown under different nitrate conditions were used for C and N content measurements using the NC analyzer. Values are the mean ± SD of three replications (*P < 0.05, **P < 0.01). (g–i) Expression levels of the PEPC genes AtPPC1 (AT1G53310) (g), AtPPC2 (AT2G42600) (h), AtPPC3 (At3G14940) (i). 7-day-old plants grown on MS medium were transferred to N-free nutrient solution for 3 days, and then harvested for qRT-PCR analysis after re-supplied with 3 mM NO3− for 0, 0.5 and 1 h. UBQ5 was used as an internal control. Values are the mean ± SD of three replications (*P < 0.05, **P < 0.01, ***P < 0.001). (j) PEPC activities in the plants grown under 1 mM, 3 mM and 10 mM nitrate conditions. 16-day-old seedlings grown under different nitrate conditions were used for enzymatic assays. Values are the mean ± SD of three replications (*P < 0.05, **P < 0.01).
Carbohydrate contents of 16-day-old WT, nlp7-1 mutant and NLP7-overexpressing plants grown under different nitrate conditions.
| Nutrient medium | Line | Carbohydrate content (μmol g−1 FW) | |||
|---|---|---|---|---|---|
| Sucrose | Fructose | Glucose | Starch | ||
| 10 mM | WT | 16.13 ± 2.85 | 5.46 ± 0.61 | 2.03 ± 0.11 | 6.12 ± 0.20 |
| 12.31 ± 2.61 | 4.89 ± 0.63 | 3.55 ± 0.05*** | 5.89 ± 0.23 | ||
| OX-4 | 25.19 ± 3.85* | 9.56 ± 0.30** | 2.99 ± 0.09*** | 6.31 ± 0.26 | |
| OX-7 | 24.28 ± 3.43* | 7.46 ± 0.01* | 3.24 ± 0.10*** | 5.87 ± 0.07 | |
| 1 mM | WT | 28.12 ± 4.05 | 10.97 ± 0.63 | 13.19 ± 0.09 | 47.14 ± 0.09 |
| 33.12 ± 1.42 | 14.53 ± 0.80* | 16.12 ± 0.10*** | 49.01 ± 0.30 | ||
| OX-4 | 20.39 ± 2.14* | 12.98 ± 0.53* | 9.87 ± 0.16*** | 38.96 ± 0.30** | |
| OX-7 | 19.05 ± 0.90* | 12.22 ± 0.36 | 11.16 ± 0.24*** | 41.89 ± 1.01* | |
Data are means ± SD of three independent replications (*P < 0.05, **P < 0.01, ***P < 0.001).
Figure 6NLP7 enhances N assimilation and growth of transgenic tobacco plants.
(a) Identification of the NLP7 transgenic tobacco by qRT-PCR. 15-day-old seedlings grown on medium containing 10 mM nitrate were used for RNA extraction and qRT-PCR. Ubiquitin-conjugating enzyme E2 (NtUbc2, accession number AB026056) was used as an internal control62. Values are the mean ± SD of three replications. (b) Images of the 15-day-old WT and NLP7 transgenic tobacco plants grown on medium with different concentrations of nitrate. Bar = 0.5 cm. (c,d) FW (c) and PR length (d) of the 15-day-old WT and transgenic tobacco plants. Values are the mean ± SD of three replications each containing 10 plants per genotype (*P < 0.05, **P < 0.01, ***P < 0.001). (e–h) Tobacco plants grown hydroponically under 1 mM nitrate condition (e), shoot FW (f), root FW (g) and shoot/root FW ratio (h) of the tobacco plants. 20-day-old tobacco seedlings grown on MS medium were used for hydroponic culture for 28 days. Values are the mean ± SD of 6 plants (*P < 0.05, **P < 0.01). Bar = 7 cm. (i–n) NLP7 up-regulated the expression levels of N assimilation related genes in tobacco. 15-day-old seedlings grown on medium containing 10 mM nitrate were used for RNA extraction and qRT-PCR. Expression levels of six tobacco genes were quantified by qRT-PCR: nitrate transporter (NtNRT2.1, accession number AJ557583), cytosolic glutamine synthetase (NtGln1-5, accession number X95932), plastidic glutamine synthetase (NtGS2, accession number X95932S39536), nitrite reductase (NtNii1, accession number X66145; NtNii2, accession number AB103507; NtNii4, accession number AB093534). NtUbc2 was used as an internal control. Values are the mean ± SD of three replications (*P < 0.05, **P < 0.01, ***P < 0.001).