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Falcao, T. C. d. A.

Publications and source records attributed to Falcao, T. C. d. A..

2 recordsLinked to original sources

Age-dependent miR156-targeted SPLs are required for extrafloral nectary development in Passiflora spp.

- Passion flower extrafloral nectaries (EFNs) protrude from adult leaves and facilitate mutualistic interactions with insects, but how age cues control EFN establishment remains poorly understood. - Here, we combined genetic and molecular studies to investigate how leaf development and EFN patterning are regulated through the age-dependent miR156-SQUAMOSA PROMOTER BINDING PROTEIN LIKE (SPL) module in two EFN-containing Passiflora species with distinct leaf shapes. - Low levels of miR156 correlate with leaf maturation and EFN formation in Passiflora edulis and P. cincinnata. Consistently, overexpression of miR156 (miR156-OE), which leads to low levels of SPLs, affected leaf ontogeny and EFN development in both species. Laminar EFNs were underdeveloped and less abundant in both P. edulis and P. cincinnata miR156-OE leaves. Importantly, the ecological relationships established by EFNs and their sugar profiles were negatively regulated by high levels of miR156. Moreover, transcriptome analysis of young leaf primordia revealed that miR156-targeted SPLs may be required for proper expression of leaf and EFN development- associated genes in P. edulis and P. cincinnata. - Our work provides the first evidence that the highly conserved miR156/SPL module regulates EFN development in an age-dependent manner and that the program responsible for EFN development is closely associated with the heteroblastic developmental program of the EFN-bearing leaves.

plant biology↗

Plant age-dependent dynamics of annatto pigment (bixin) biosynthesis in Bixa orellana L.

Age affects the production of secondary metabolites, but how developmental cues regulate secondary metabolism remains poorly understood. Annatto (Bixa orellana L.) is a source of bixin, an apocarotenoid used in the worlds food industry worldwide. Understanding how age-dependent mechanisms control bixin biosynthesis is of great interest for plant biology and for pharmaceutical, cosmetic, and textile industries. Here, we used genetic and molecular tools to unravel the role of the annatto age regulated miRNA156 (miR156) targeted SQUAMOSA PROMOTER BINDING PROTEIN LIKE (BoSPL) genes in secondary metabolism. Low expression of several BoSPL genes in miR156 overexpressing annatto plants (OE::156) impacted leaf ontogeny, reducing bixin production and increasing abscisic acid (ABA) levels. Modulation of BoCCD4;4 and BoCCD1 expression, key genes in lycopene cleavage, was associated with diverting the carbon flux from bixin to ABA, whereas upregulation of lycopene {beta} cyclase genes implies the xanthophyll biosynthetic pathway acted as a carbon sink in OE::156 plants. Proteomic analyses revealed low accumulation of most secondary metabolite-related enzymes in OE::156 plants, suggesting that miR156 targeted BoSPLs are required to activate several annatto secondary metabolic pathways. Our findings suggest that carbon flux in B. orellana OE::156 leaves was redirected from bixin to ABA production, indicating an age-dependent leaf dynamics of bixin biosynthesis. Importantly, our study opened a new venue to future annatto breeding programs aiming to improve bixin output.

plant biology↗