| Literature DB >> 23629665 |
Marek Marzec1, Aleksandra Muszynska, Damian Gruszka.
Abstract
Strigolactones (SLs) are a new group of plant hormones, which have been intensively investigated during the last few years. The wide spectrum of SLs actions, including the regulation of shoot/root architecture, and the stimulation of the interactions between roots and fungi or bacteria, as well as the stimulation of germination of parasitic plants, indicates that this group of hormones may play an important role in the mechanisms that control soil exploration, and the root-mediated uptake of nutrients. Current studies have shown that SLs might be factors that have an influence on the plant response to a deficiency of macronutrients. Experimental data from the last four years have confirmed that the biosynthesis and exudation of SLs are increased under phosphorus and nitrogen deficiency. All these data suggest that SLs may regulate the complex response to nutrient stress, which include not only the modification of the plant developmental process, but also the cooperation with other organisms in order to minimize the effects of threats. In this paper the results of studies that indicate that SLs play an important role in the response to nutrient stress are reviewed and the consequences of the higher biosynthesis and exudation of SLs in response to phosphorus and nitrogen deficiency are discussed.Entities:
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Year: 2013 PMID: 23629665 PMCID: PMC3676783 DOI: 10.3390/ijms14059286
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Figure 1The biosynthesis pathway of Strigolactones (SLs). A detailed description is given in the text. According to [21,23].
A set of the gene encoding proteins involved in the biosynthesis and signaling of SLs.
| Protein | Gene | Process | |||
|---|---|---|---|---|---|
| Arabidopsis | Rice | Pea | Petunia | ||
| Iron-containing protein | Biosynthesis | ||||
| CCD7 | |||||
| CCD8 | |||||
| cytochrome P450 | |||||
| F-box protein | Signaling | ||||
| α/β hydrolase | |||||
Production of SLs under P and N deficiency.
| Species | Low level of P | Low level of N | Ref. | ||
|---|---|---|---|---|---|
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| SL name | Change | SL name | Change | ||
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| 5-deoxystrigol | 30-fold | 5-deoxystrigol | 30-fold | [ | |
|
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| Orobanchol | ++ | Orobanchol | + | [ | |
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| Orobanchyl acetate | ++ | Orobanchyl acetate | + | ||
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| Orobanchol | ++ | Orobanchol | + | [ | |
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| Orobanchol | ++ | Orobanchol | + | [ | |
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| Orobanchyl acetate | ++ | Orobanchyl acetate | + | ||
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| Orobanchol | + | na | na | [ | |
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| Solanacol | + | na | na | ||
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| Orobanchol | 100-fold | Orobanchol | - | [ | |
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| Orobanchol | ++ | Orobanchol | ++ | [ | |
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| 2′-epi-5-deoxystrigol | ++ | 2′-epi-5-deoxystrigol | ++ | ||
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| Orobanchol | + | orobanchol | + | [ | |
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| 2′-epi-5-deoxystrigol | + | 2′-epi-5-deoxystrigol | + | ||
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| Orobanchol | 20-fold | Orobanchol | - | [ | |
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| Orobanchol | + | Orobanchol | - | [ | |
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| Orobanchyl acetate | + | Orobanchyl acetate | - | ||
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| Sorgomol | 14,000-fold | Sorgomol, | 1000-fold | [ | |
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| 5-deoxystrigol | 1000-fold | 5-deoxystrigol | 20-fold | ||
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| Pisum sativum L. | Fabacyl acetate | 10-fold | Fabacyl acetate, | 3-fold | [ |
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| Orobanchyl acetate | 10-fold | Orobanchyl acetate | 3-fold | ||
Data described in the text; na, not analyzed; +, increased in comparison to the control plant; ++, increased in comparison to the other cultivar.
Figure 2Plant responses to P and/or N starvation stress mediated by an increased production and exudation of SLs.