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Martins, A. O.

Publications and source records attributed to Martins, A. O..

2 recordsLinked to original sources

Lysine biosynthesis impairment shapes heat-stress acclimation through metabolic and transcriptional reprogramming in Arabidopsis thaliana

Global warming is increasing the frequency and intensity of high-temperature episodes, limiting plant productivity. However, the molecular mechanisms integrating primary metabolism with the heat stress response remains poorly understood. Here, we show that lysine biosynthesis contributes to the coordination of physiological, metabolic and transcriptional responses to heat stress in Arabidopsis thaliana. We compared wild-type, the lysine-biosynthesis mutant dapat, and the salicylic acid (SA)-biosynthesis and signaling mutants sid2-1 and npr1-3 under prolonged warming (6C above control for 7 days) and heat shock (38C for 6 h), followed by recovery. We assessed growth, gas exchange, photosynthetic performance, free SA, salicylic acid glucoside (SAG), salicylic acid glucose ester (SGE), and total SA content, primary metabolite profiles, heat-stress-responsive gene expression and transcriptome-wide changes by RNA sequencing. Before heat stress, dapat mutant presented a distinct metabolic state, marked by amino-acid accumulation, altered organic-acid profiles, reduced soluble sugars and elevated endogenous SA. This metabolic configuration persisted during prolonged warming, whereas WT and SA-pathway mutants underwent more dynamic reprogramming. Heat shock, by contrast, elicited a more convergent response across genotypes. Despite reduced basal PSII efficiency, dapat maintained photosynthetic performance during prolonged warming and recovered. Its transcriptional response, however, differed from that of WT and SA-pathway mutants: selected heat-responsive genes were constitutively or more strongly expressed, whereas some canonical heat-stress regulators showed weaker induction after heat shock. RNA-seq further revealed a largely conserved core heat-shock response but genotype-dependent regulation of defense, hormone and amino-acid-metabolism programs, particularly during recovery. Together, these findings indicate that impaired DAPAT activity establishes a metabolically primed but energetically constrained state that reshapes gas exchange, photosynthetic acclimation and heat-responsive transcription. Lysine homeostasis therefore emerges as a regulatory node linking primary metabolism and SA accumulation with SA-dependent and SA-independent components of heat-stress acclimation.

plant biology↗

Cell-specific regulation of TCA cycle and cell division related genes at roots following aluminium exposure

Aluminium (Al) toxicity is a critical factor that limits plant growth in acidic soils (pH < 5.5) worldwide. Intracellular Al can bind to various biomolecules and significantly affect gene expression, protein biosynthesis, and cell membrane integrity, ultimately inhibiting nutrients and water uptake. This leads to the arrest of root cell divisions and growth. Organic acids (OAs) produced in mitochondrial-related reactions are strongly linked to Al tolerance, as they bind to Al and neutralize its toxic effects. Recently, the manipulation of root cell divisions through DNA checkpoints has been proposed as an alternative to increase Al tolerance. In this context, molecular interactions between these two mechanisms could potentially enhance plant tolerance to Al toxicity. Here, we investigate this topic using a translatome approach, which enables specific analyses of root cell types (namely, whole root, the quiescent centre region, and the cortical region). This approach offers a promising tool for unravelling how mitochondrial metabolism, particularly the TCA cycle, and the DNA damage response (DDR) pathway are interconnected in Al-mitigation process. Our results revealed that the TCA cycle is induced in differentiated cells, with no significant alteration in meristematic cells, while genes associated with cell cycle progression and DNA checkpoints show differential expression across the distinct cell types. Collectively, our data contribute to understand cell-specific internal detoxification mechanism related to Al tolerance in plants. This knowledge could assist crop breeding by providing a better understanding of the cellular physiological responses to Al toxicity.

plant biology↗