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Kerchev, P.

Publications and source records attributed to Kerchev, P..

2 recordsLinked to original sources

GCN5 negatively regulates class III peroxidases PRX71 and PRX33 to promote lignin deposition in Arabidopsis

Histone acetylation shapes transcriptional programs during environmental stress. The Arabidopsis histone acetyltransferase GCN5/HAG1, a catalytic subunit of the SAGA complex, has been implicated in salt stress responses and cell wall integrity. Here, we show that loss of GCN5 enhances reactive oxygen species (ROS) accumulation under NaCl stress and is accompanied by altered expression of class III peroxidase genes, with strong salt-induced upregulation of PRX71 and elevated basal PRX33 transcript abundance. Consistent with a role for these peroxidases in stress-associated cell wall remodeling, overexpression of PRX71 or PRX33 in the wild-type is sufficient to promote ectopic lignin deposition in roots. Conversely, prx71 and prx33 mutants show improved growth under salt stress and on the cellulose biosynthesis inhibitor isoxaben, and they lack the pronounced ectopic root lignification observed in gcn5 under salt stress. Chromatin immunoprecipitation followed by qPCR (ChIP-qPCR) reveals reduced H3K9 acetylation at PRX71 and PRX33 promoter regions in gcn5 compared with the wild-type, and reduced transcript abundance of candidate upstream transcription factors (TFs), including GATA21 and MYBS2, accompanied by reduced H3K9ac at their loci. Together, our results support a model in which GCN5 constrains PRX71/PRX33-mediated lignification during stress, likely through an indirect regulatory route that integrates chromatin state and transcription factor activity to limit stress-associated lignification while maintaining root growth under salt stress.

plant biology↗

Lack of Purple Acid Phosphatase SlPAP26b compromises the phosphorous starvation response in tomato independent of SlPHR1 and SlPHL1

The scarcity of soil phosphorus (P), an essential macronutrient, often limits plant growth and development. Enhanced secretion of intracellular and secretory acid phosphatases is essential to maintain cellular inorganic P (Pi) homeostasis in plants. Herein, using transcriptomics and proteomics approach, we observed upregulation of several purple acid phosphatases (PAPs), including SlPAP1, SlPAP10b, SlPAP12, SlPAP15, SlPAP17b, SlPAP26a, and SlPAP26b in Pi-deficient tomato seedlings. Higher transcript levels of SlPAP17b and SlPAP26b in the older senescing leaves than the younger leaves indicated active involvement of these PAPs in Pi remobilization. Subsequent detailed characterization of SlPAP17b, SlPAP26a, and SlPAP26b revealed a prominent role of SlPAP26b in Pi homeostasis. Silencing of SlPAP26b led to an exacerbated P starvation response as these plants exhibited smaller shoots, lower soluble Pi, total P levels, and higher sucrose than their EV controls under Pi deprivation. SlPAP26b-silenced plants also showed misregulation of P starvation inducible genes such as phosphate transporters and glycerolipid remodellers, even under Pi-sufficient conditions. Whereas SlPAP26b levels were induced by external sucrose, its expression was found to be independent of the Myb class master regulators of P starvation response, SlPHR1 and SlPHL1. Altogether, this study identifies a prominent role of SlPAP26b in the Pi compensation network in tomato seedlings.

plant biology↗