bioRxiv Science⌕ Search

Biology subjects

Sartori, H. L.

Publications and source records attributed to Sartori, H. L..

2 recordsLinked to original sources

Blue light increases stomatal conductance and photosynthesis in Agave hybrid

Blue light (BL) plays an important role in stomatal opening, finely tuning plant responses to environmental conditions. While the BL signaling pathway is well understood in C3 and C4 plants, its role in crassulacean acid metabolism (CAM) plants remains uncertain. Traditionally, stomata in CAM plants were considered insensitive to BL stimulation, and as a result, studies on such interaction were overlooked for a long time. Only recently, studies have found that the BL signaling cascade is active in CAM plants. Here, we investigated the effects of BL intensity on stomatal behavior in Agave, a highly productive CAM plant, by stimulating Agave leaves with BL and taking measurements of leaf gas exchange during the morning (closed stomata) and in the afternoon (open stomata). Our findings revealed that BL had no significant effect on stomatal opening during the morning period. However, BL increased stomatal conductance (gs) by 67.3%, photosynthetic rate (A) by 109.5%, and intrinsic water use efficiency (iWUE) by 69.5% in the late afternoon. These findings suggest that Agave responded to BL similarly to C3 and C4 species when stomata were already open. We hypothesized that high CO2 levels due to C4 acid decarboxylation during the morning act as a repressive factor for stomatal opening by inhibiting the phosphorylative activity of the HT1 protein, a key protein involved in stomatal behavior. This inhibition likely prevents the activation of the signaling pathway mediated by CBC1/2 kinase, which integrates blue light (BL) signals with low intercellular CO2 levels.

plant biology↗

Exploring intra-specific variation in photosynthesis of maize and sorghum

Enhancing crop yield through improved photosynthesis is a key for feeding the global population and providing feedstock for a sustainable green economy. However, effectively linking photosynthetic performance and biomass production in C4 species requires an integrative approach at plant canopy. This study aimed to characterize photosynthesis along the canopy of five maize (BM3069-PRO2, AG8701-PRO4, K7500-VIP3, DKB355-PRO3 and B2401-PWU) and sorghum (DKB560, Enforcer, IAC 7021, Brandelisa and Santa Elisa) cultivars, focusing on leaf gas exchange and chlorophyll fluorescence evaluations in three canopy strata: top; middle and bottom. Photosynthetic responses to increasing intercellular CO2 concentration and light (A-Ci and A-PAR curves, respectively) were performed and key photosynthetic traits estimated. We found a significant variability in the maximum photosynthetic rates across the canopies. Modern maize cultivars exhibited high CO2 assimilation in the top and middle canopy leaves, demonstrating physiological adjustments for increasing canopy homogeneity in terms of photosynthesis. Such adjustments included high maximum quantum efficiency of CO2 assimilation ({phi}), stomatal conductance, carboxylation rates of PEPC and Rubisco, and leaf nitrogen content (LNC) along the canopy. In contrast, sorghum cultivars showed significant interactions between canopy strata, with DKB560 and Brandelisa standing out for their enhanced CO2 uptake and {phi} throughout the plant canopy. Our findings highlight maize as an efficient C4 crop, characterized by a high photosynthetic capacity and relative uniform photosynthesis across the canopy. This is attributed to reduced stomatal limitation and higher stomatal conductance, carboxylation of Rubisco (Vcmax) and LNC in the top and middle canopy, along with higher {phi} in middle and bottom layers. Overall, physiological adjustments such as nitrogen redistribution to upper canopy leaves and the optimization of light-use efficiency in lower layers are key for enhancing canopy-level photosynthesis in maize and sorghum cultivars.

plant biology↗