Analysis of pea mutants reveals the conserved role of <i>FRUITFULL</i> controlling the end of flowering and its potential to boost yield.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 38557190.
- Also identified by DOI 10.1073/pnas.2321975121 and PMC identifier 11009629.
- Licence recorded as CC BY-NC-ND.
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Abstract
Monocarpic plants have a single reproductive phase in their life. Therefore, flower and fruit production are restricted to the length of this period. This reproductive strategy involves the regulation of flowering cessation by a coordinated arrest of the growth of the inflorescence meristems, optimizing resource allocation to ensure seed filling. Flowering cessation appears to be a regulated phenomenon in all monocarpic plants. Early studies in several species identified seed production as a major factor triggering inflorescence proliferative arrest. Recently, genetic factors controlling inflorescence arrest, in parallel to the putative signals elicited by seed production, have started to be uncovered in Arabidopsis, with the MADS-box gene <i>FRUITFULL (FUL)</i> playing a central role in the process. However, whether the genetic network regulating arrest is also at play in other species is completely unknown. Here, we show that this role of <i>FUL</i> is not restricted to Arabidopsis but is conserved in another monocarpic species with a different inflorescence structure, field pea, strongly suggesting that the network controlling the end of flowering is common to other plants. Moreover, field trials with lines carrying mutations in pea <i>FUL</i> genes show that they could be used to boost crop yield.
Medical subject headings
- Flowers
- Pisum sativum
- MADS Domain Proteins