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Both legume model plants have relatively large EST collections (over 150,000 sequences).
Molecular studies of angiosperm model plants have identified large numbers of genes that are expressed during stamen and pollen development.
Several studies in model plants have evaluated the importance of this hormone in crosstalk signaling with different metabolic pathways, in addition to responses to biotic stresses.
Studies in model plants have shown that the plant genomes contain a great diversity of gene sequences predicted to be involved in glycosylation [ 12, 13].
In the last decade, model plants have been the subject of rapid advances in genomics, including the completion of the sequence of both Arabidopsis thaliana [ 1] and rice [ 2, 3].
Extensive transcriptomic data mining and experimental validation in different model plants have shown that the reliability of these endogenous controls can be influenced by the plant species, growth conditions and organs/tissues examined.
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However, the development of microarrays for emerging model plants has enabled global studies elsewhere in the angiosperm tree, e.g., in the eudicot Gerbera hybrida [11], [12] and, most recently, the basal angiosperm Persea americana [8].
Similar studies in non-model plants have been neglected, despite the existence of sequence data assembled from RNA-Seq.
The genome of this model plant has been sequenced and its wound response is well characterized [ 20, 24].
Although sequencing technologies have advanced rapidly in terms of higher throughput and longer read lengths, analysis of the complex and huge genome of the onion, a non-model plant, has remained a Herculean task.
The four phase model emphasizes that plants have four sub-phenological phases during dormancy, which are the prerest, true-rest, postrest, and quiescence phases.
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