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Biology subjects

Dreni, L.

Publications and source records attributed to Dreni, L..

2 recordsLinked to original sources

The proximal proteome of FLOWERING LOCUS T LIKE 1 during rice panicle development suggests cell-to-cell mobility features

Flowering is promoted by perception of favorable environmental stimuli. In rice, exposure of leaves to short days induces the differentiation of a branched inflorescence called panicle at the shoot apical meristem (SAM). Systemic communication from the leaves to the SAM is mediated by members of the phosphatidylethanolamine-binding protein (PEBP) family, including HEADING DATE 3a (Hd3a) and RICE FLOWERING LOCUS T 1 (RFT1), commonly referred to as florigens. Florigens are [~]20kDa proteins translated in leaf companion cells and loaded into the phloematic stream, through which they reach the SAM. Once in meristematic cells, they are translocated to the nucleus, where they form higher-order protein complexes that include transcription factors and drive transcriptional reprogramming of meristematic cells. The activity of Hd3a and RFT1 at the SAM is partly mediated by FLOWERING LOCUS T LIKE 1 (FTL1) encoding a florigen-like protein required to accelerate flowering and establish the branching pattern of the panicle. The photoperiodic regulatory network is largely based on protein-protein interactions (PPIs), that take place in different tissues and in response to environmental variation. Capturing the full extent of these interactions for a specific protein and in vivo is a challenging task. Here, we developed a protocol of Proximity Labeling (PL) to study the interactome of FTL1 in developing panicles. We show that FTL1 associates with, or is proximal to, several proteins implicated in vesicular trafficking, microtubule binding and transcriptional regulation. Using a transient system, we demonstrate that FTL1 can actively move between cells, similarly to Hd3a and RFT1. This study establishes a protocol to implement PL for the study of a dynamic process during rice reproductive development, identifies interactors of FTL1, and suggests novel features possibly linked to its function.

developmental biology↗

The tea plant (Camellia sinensis) FLOWERING LOCUS C-like gene CsFLC1 is correlated with bud dormancy and triggers early flowering in Arabidopsis

Flowering and bud dormancy are crucial stages in the life cycle of perennial angiosperms in temperate climates. MADS-box family genes are involved in many plant growth and development processes. Here, we identified 3 MADS-box genes in tea plant belonging to the FLOWERING LOCUS C (CsFLC) family. We monitored CsFLC1 transcription throughout the year and found that CsFLC1 was expressed at a higher level during the winter bud dormancy and flowering phases. To clarify the function of CsFLC1, we developed transgenic Arabidopsis thaliana plants heterologously expressing 35S::CsFLC1. These lines bolted and bloomed earlier than the WT (Col-0), and the seed germination rate was inversely proportional to the increased CsFLC1 expression level. RNA-seq of 35S::CsFLC1 transgenic Arabidopsis showed that many genes responding to ageing, flower development and leaf senescence were affected, and phytohormone-related pathways were especially enriched. According to the results of hormone content detection and RNA transcript level analysis, CsFLC1 controls flowering time possibly by regulating SOC1, AGL42, SEP3 and AP3 and hormone signalling, accumulation and metabolism. Our results suggest that CsFLC1 might play dual roles in flowering and winter bud dormancy and provide new insight into the molecular mechanisms of FLC in tea plants as well as other plant species. HighlightThree FLOWERING LOCUS C-like genes were identified in tea plants, among them CsFLC1 played dual roles in flowering and winter bud dormancy.

plant biology↗