Seed Dormancy : Molecular Control of Its Induction and Alleviation

The appearance of the new generation in higher plants is ensured by the presence of viable seeds in the mother plant. A good number of signaling networks is necessary to provoke germination. Phytohormones play a key role in all stages of seed development, maturation, and dormancy acquisition. The do...

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Year of Publication:2020
Language:English
Physical Description:1 electronic resource (124 p.)
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100 1 |a Matilla, Angel J.  |4 edt 
245 1 0 |a Seed Dormancy  |b Molecular Control of Its Induction and Alleviation 
246 |a Seed Dormancy  
260 |a Basel, Switzerland  |b MDPI - Multidisciplinary Digital Publishing Institute  |c 2020 
300 |a 1 electronic resource (124 p.) 
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520 |a The appearance of the new generation in higher plants is ensured by the presence of viable seeds in the mother plant. A good number of signaling networks is necessary to provoke germination. Phytohormones play a key role in all stages of seed development, maturation, and dormancy acquisition. The dormancy of some seeds can be relieved through a tightly regulated process called after-ripening (AR) that occurs in viable seeds stored in a dry environment. Although ABA is directly involved in dormancy, recent data suggest that auxin also plays a preponderant role. On the other hand, the participation of reactive oxygen species (ROS) in the life of the seed is becoming increasingly confirmed. ROS accumulate at different stages of the seed’s life and are correlated with a low degree of dormancy. Thus, ROS increase upon AR and dormancy release. In the last decade, the advances in the knowledge of seed life have been noteworthy. In this Special Issue, those processes regulated by DOG1, auxin, and nucleic acid modifications are updated. Likewise, new data on the effect of alternating temperatures (AT) on dormancy release are here present. On the one hand, the transcriptome patterns stimulated at AT that encompasses ethylene and ROS signaling and metabolism together with ABA degradation were also discussed. Finally, it was also suggested that changes in endogenous γ-aminobutyric acid (GABA) may prevent seed germination. 
546 |a English 
650 7 |a Research & information: general  |2 bicssc 
650 7 |a Biology, life sciences  |2 bicssc 
653 |a chestnut 
653 |a GABA 
653 |a seed germination 
653 |a carbon metabolism 
653 |a nitrogen metabolism 
653 |a DOG1 
653 |a seed dormancy 
653 |a ABA 
653 |a ethylene 
653 |a clade-A PP2C phosphatase (AHG1 
653 |a AHG3) 
653 |a after-ripening 
653 |a asDOG1 
653 |a heme-group 
653 |a association mapping 
653 |a climate adaptation 
653 |a germination 
653 |a genomics 
653 |a legumes 
653 |a Medicago 
653 |a plasticity 
653 |a physical dormancy 
653 |a DNA methylation 
653 |a oxidation 
653 |a RNA stability 
653 |a seed vigour 
653 |a ROS 
653 |a primary dormancy 
653 |a ABI3 
653 |a auxin 
653 |a YUC 
653 |a PIN 
653 |a ARF 
653 |a endosperm 
653 |a integuments 
653 |a AGL62 
653 |a PRC2 
653 |a RNA-Seq 
653 |a dormancy termination 
653 |a gene expression 
653 |a antioxidants 
653 |a ethylene signaling 
653 |a environmental signals 
653 |a long-lived mRNA 
653 |a monosomes 
653 |a auxin and ABA 
653 |a alternating temperatures 
776 |z 3-03943-653-8 
776 |z 3-03943-654-6 
700 1 |a Matilla, Angel J.  |4 oth 
906 |a BOOK 
ADM |b 2023-12-15 05:38:18 Europe/Vienna  |f system  |c marc21  |a 2022-04-04 09:22:53 Europe/Vienna  |g false 
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