Search bioRxivSearch

Biology subjects

Hajirezaei, M. R.

Publications and source records attributed to Hajirezaei, M. R..

2 recordsLinked to original sources

Integrating cyanobacterial flavodiiron proteins within the chloroplast photosynthetic electron transport chain maintains carbohydrate turnover and enhances drought stress tolerance in barley

Chloroplasts, the sites of photosynthesis in higher plants, have evolved several means to tolerate short episodes of drought stress through biosynthesis of diverse metabolites essential for plant function, but these become ineffective when the duration of the stress is prolonged. Cyanobacteria are the closest bacterial homologs of plastids with two photosystems to perform photosynthesis and to evolve oxygen as a byproduct. The presence of Flv genes encoding flavodiiron proteins has been shown to enhance stress tolerance in cyanobacteria. Here, the products of Synechocystis genes Flv1 and Flv3 were expressed in chloroplasts of barley in an attempt to support the growth of plants exposed to drought. The heterologous expression of both Flv1 and Flv3 accelerated days to heading, increased biomass, promoted the number of spikes and grains per plant, and improved grain yield of barley plants exposed to drought. Improved growth correlated with enhanced availability of soluble sugars, a higher turnover of amino acids and the accumulation of lower levels of proline in the leaf. Flv1 and Flv3 maintained the energy status of the leaves in the stressed plants by converting sucrose to glucose and fructose, immediate precursors for energy production to support plant growth under drought. The results suggest that sugars and amino acids play a fundamental role in the maintenance of the energy status and metabolic activity to ensure growth and survival under stress conditions, that is, water limitation in this particular case. Engineering chloroplasts by introducing Flv genes, therefore, has the potential to improve plant productivity wherever drought stress represents a significant production constraint.

plant biology

ITPK1 is an InsP6/ADP phosphotransferase that controls systemic phosphate homeostasis in Arabidopsis

In plants, phosphate (Pi) homeostasis is regulated by the interaction of Pi starvation response transcription factors (PHRs) with stand-alone SPX proteins, which act as sensors for inositol pyrophosphates (PP-InsPs). Recently, ITPK1 was shown to generate the PP-InsP InsP7 from InsP6 in vitro, but the importance of this activity in Pi signaling remained unknown. Here, we show that uncontrolled Pi accumulation in ITPK1-deficient plants is accompanied by impaired Pi-dependent InsP7 and InsP8 synthesis. Reciprocal grafting demonstrates that Pi starvation responses are mainly controlled by ITPK1 activity in shoots. Nuclear magnetic resonance assays and PAGE analyses with recombinant protein reveal that besides InsP6 phosphorylation, ITPK1 is also able to catalyze ATP synthesis using 5-InsP7 but not any other InsP7 isomer as a P-donor when ATP is low. Additionally, we show that the dynamic changes in InsP7 and InsP8 to cellular Pi are conserved from land plant species to human cells, suggesting that Pi-dependent PP-InsP synthesis is a common component of Pi signaling across kingdoms. Together, our study demonstrates how Pi-dependent changes in nutritional and energetic states modulate ITPK1 activities to fine-tune the synthesis of PP-InsPs.

plant biology