Transcriptional regulation of storage protein synthesis during dicotyledon seed filling
- PMID: 18701524
- DOI: 10.1093/pcp/pcn116
Transcriptional regulation of storage protein synthesis during dicotyledon seed filling
Abstract
Seeds represent a major source of nutrients for human and animal livestock diets. The nutritive value of seeds is largely due to storage products which accumulate during a key phase of seed development, seed filling. In recent years, our understanding of the mechanisms regulating seed filling has advanced significantly due to the diversity of experimental approaches used. This review summarizes recent findings related to transcription factors that regulate seed storage protein accumulation. A framework for the regulation of storage protein synthesis is established which incorporates the events before, during and after seed storage protein synthesis. The transcriptional control of storage protein synthesis is accompanied by physiological and environmental controls, notably through the action of plant hormones and other intermediary metabolites. Finally, recent post-genomics analyses on different model plants have established the existence of a conserved seed filling process involving the master regulators (LEC1, LEC2, ABI3 and FUS3) but also revealed certain differences in fine regulation between plant families.
Similar articles
-
Deciphering gene regulatory networks that control seed development and maturation in Arabidopsis.Plant J. 2008 May;54(4):608-20. doi: 10.1111/j.1365-313X.2008.03461.x. Plant J. 2008. PMID: 18476867
-
Indirect ABA-dependent regulation of seed storage protein genes by FUSCA3 transcription factor in Arabidopsis.Plant Cell Physiol. 2005 Feb;46(2):300-11. doi: 10.1093/pcp/pci031. Epub 2005 Feb 2. Plant Cell Physiol. 2005. PMID: 15695463
-
LEAFY COTYLEDON1 controls seed storage protein genes through its regulation of FUSCA3 and ABSCISIC ACID INSENSITIVE3.Plant Cell Physiol. 2005 Mar;46(3):399-406. doi: 10.1093/pcp/pci048. Epub 2005 Feb 2. Plant Cell Physiol. 2005. PMID: 15695450
-
Arabidopsis seed secrets unravelled after a decade of genetic and omics-driven research.Plant J. 2010 Mar;61(6):971-81. doi: 10.1111/j.1365-313X.2009.04095.x. Plant J. 2010. PMID: 20409271 Review.
-
Seed maturation: developing an intrusive phase to accomplish a quiescent state.Int J Dev Biol. 2005;49(5-6):645-51. doi: 10.1387/ijdb.052046jc. Int J Dev Biol. 2005. PMID: 16096971 Review.
Cited by
-
Transcriptome wide identification and characterization of regulatory genes involved in EAA metabolism and validation through expression analysis in different developmental stages of finger millet spikes.3 Biotech. 2020 Aug;10(8):347. doi: 10.1007/s13205-020-02337-8. Epub 2020 Jul 22. 3 Biotech. 2020. PMID: 32728514 Free PMC article.
-
Nucleotide polymorphism in the wheat transcriptional activator Spa influences its pattern of expression and has pleiotropic effects on grain protein composition, dough viscoelasticity, and grain hardness.Plant Physiol. 2009 Dec;151(4):2133-44. doi: 10.1104/pp.109.146076. Epub 2009 Oct 14. Plant Physiol. 2009. PMID: 19828671 Free PMC article.
-
Complementary genetic and genomic approaches help characterize the linkage group I seed protein QTL in soybean.BMC Plant Biol. 2010 Mar 3;10:41. doi: 10.1186/1471-2229-10-41. BMC Plant Biol. 2010. PMID: 20199683 Free PMC article.
-
Effective Mechanisms for Improving Seed Oil Production in Pennycress (Thlaspi arvense L.) Highlighted by Integration of Comparative Metabolomics and Transcriptomics.Front Plant Sci. 2022 Jul 14;13:943585. doi: 10.3389/fpls.2022.943585. eCollection 2022. Front Plant Sci. 2022. PMID: 35909773 Free PMC article.
-
Gene expression and spatiotemporal localization of antifungal chitin-binding proteins during Moringa oleifera seed development and germination.Planta. 2019 May;249(5):1503-1519. doi: 10.1007/s00425-019-03103-8. Epub 2019 Jan 31. Planta. 2019. PMID: 30706136
Publication types
MeSH terms
Substances
LinkOut - more resources
Full Text Sources