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Biology subjects

Almagro, G.

Publications and source records attributed to Almagro, G..

2 recordsLinked to original sources

CLPC2 plays specific roles in CLP complex-mediated regulation of growth, photosynthesis, embryogenesis and response to growth-promoting microbial compounds

In Arabidopsis, exposure to growth-promoting microbial volatile compounds (VCs) enhances CLPC2 levels. This chaperone forms part of the CLP protease complex, which ensures the correct functioning of essential processes in plastids. Previous studies indicated considerable functional redundancy of CLPC2 with its dominant paralogue CLPC1. However, the function and action mechanism of CLPC2 still remain unknown. Here we found that CLPC2-lacking clpc2-2 mutants were unresponsive to microbial VCs, whereas clpc1-1 knockout mutants exhibited a WT-like response to VCs when grown on sucrose-containing medium. Unlike clpc1-1, clpc2-2 plants presented a fully functional photosystem II and lower than WT stomatal conductance. Furthermore, clpc2-2 plants, but not clpc1-1 plants, produced wrinkled seeds with delayed embryonic development and reduced postgerminative establishment rates that resembled those of mutants lacking P and R components of the CLP proteolytic core. Proteomic analyses revealed that knocking out of CLPC2 enhanced the levels of chloroplastic proteins that are essential for growth, embryo development and seedling establishment. These changes differed from those promoted by the lack of CLPC1, but partially resembled those promoted by CLPPR core inactivation. Nearly 40% of the proteins differentially accumulated by the lack of CLPC2 were VC-responsive. Notably, 35S promoter-driven CLPC2 expression promoted changes in the proteome similar to those promoted by the lack of CLPC1. Collectively, our findings highlighted contrasting functional and molecular specificities for CLPC1 and CLPC2, and provided strong evidence that CLPC2 plays specific roles in CLP complex-mediated regulation of plant growth, photosynthesis, embryogenesis, postgerminative seedling establishment and microbial VC responsiveness.

plant biology↗

Tomato leaf transcriptomic changes promoted by long-term water scarcity stress can be largely prevented by a fungal-based biostimulant

Water availability is by far the leading environmental factor limiting crop productivity worldwide. The use of cell-free microbial culture filtrates (CF) as biostimulant is gaining ground as a safe and ecologically sound approach to improving crop yields while reducing anthropogenic pressure. However, their action mechanisms remain unknown. Here we found that foliar application of Trichoderma harzianum CF enhanced fruit yield, root growth and photosynthesis in plants of a commercial tomato cultivar grown under long-term water deficit in Mediterranean greenhouse conditions. To investigate the biochemical and molecular mechanisms underlying this phenomenon, we adopted an integrative and systems biology approach to characterize plants grown under optimal and suboptimal irrigation conditions (OIC and SOIC, respectively) with or without the fungal CF treatment. Water shortage promoted changes in the levels of drought stress-related signalling molecules, and in the transcriptome of leaves that potentially accounted for the physiochemical differences recorded between OIC- and SOIC-grown plants. Notably, many of these changes were largely prevented by the foliar application of fungal CF to SOIC-grown plants, including the expression of ca. 50% of the expression of water scarcity-responsive genes. These genes did not respond to CF in OIC-grown plants, indicating that the transcriptomic response to CF is strongly determined by the water status of the plant. Taken together, the data provided evidence that foliar application of fungal CF improves yield and long-term water scarcity tolerance by preventing a large portion of the stress-induced transcriptional response, rendering plants "blind", or less sensitive to water stress.

plant biology↗