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Haberland, J.

Publications and source records attributed to Haberland, J..

2 recordsLinked to original sources

Remodelling of cytoskeleton and plasma membrane proteins contributes to drought sensitivity of Arabidopsis rhd2 mutant

NADPH oxidases are enzymes localised in the plasma membrane and emitting superoxide to the extracellular space. By production of superoxide as one type of reactive oxygen species (ROS), they exert pleiotropic functions in plant development and various stress responses. Arabidopsis thaliana RESPIRATORY BURST OXIDASE HOMOLOG PROTEIN C/ROOT HAIR DEFECTIVE 2 (AtRBOHC/RHD2) is an NADPH oxidase with preferential gene expression in roots. Polar localisation and ROS production by this enzyme are essential for root hair elongation. However, the proteome-wide and physiological consequences of RBOHC/RHD2 mutations are unknown. To find out potential new functions of AtRBOHC/RHD2, we employed a differential proteomic analysis of Arabidopsis rhd2-1 mutant, carrying a loss-of-function mutation in RBOHC/RHD2. Proteomic analyses that were validated with independent biochemical, phenotypical and advanced microscopy methods, showed quantitative deregulation of proteins involved in abiotic and biotic stress response, metabolism, vesicular transport and cell wall modification. Considerable differences in the differential proteomes between roots and above-ground parts were found in the mutant. The altered abundance of aquaporins and homeostasis of transmembrane pumps and transporters most likely determine the higher sensitivity of Arabidopsis rhd2-1 mutant to drought. HighlightProteomics and advanced microscopy reveal that the drought sensitivity of Arabidopsis mutant in ROOT HAIR DEFECTIVE 2 is linked to altered homeostasis of plasma membrane proteins and cytoskeleton remodelling.

plant biology↗

Spatiotemporal distribution of ROS production, delivery and utilization in Arabidopsis root hairs

Fluorescent selective probes for reactive oxygen species (ROS) detection in living cells are versatile tools for the documentation of ROS production in plant developmental or stress reactions. We employed high-resolution live-cell imaging and semi-quantitative analysis of Arabidopsis thaliana stained with CM-H2DCFDA, CellROXTM Deep Red and AmplexTM Red for functional characterization of spatiotemporal mode of ROS production, delivery and utilization during root hair formation. Cell viability marker fluorescein diacetate served as a positive control for dye-loading and undisturbed tip growth after staining. Colocalization analysis with subcellular molecular markers and utilization of two root hair mutants with similar phenotype of non-elongating root hairs, but with contrast reasons for this impairment, we found that: i) CM-H2DCFDA is a sensitive probe for ROS generation in cytoplasm, ii) CellROXTM Deep Red labels ROS in mitochondria, iii) AmplexTM Red labels apoplastic ROS and mitochondria, and shows high selectivity to root hairs, iv) rhd2-1 mutant with nonfunctional AtRBOHC/RHD2 has a low level of CM-H2DCFDA-reactive ROS in cytoplasm and lacks AmplexTM Red-reactive ROS in apoplast, v) ACTIN2-deficient der1-3 mutant is not altered in these aspects. The sensitivity of CellROXTM Deep Red was documented by discrimination between larger ROS-containing mitochondria and small, yet ROS-free pre-mature mitochondria in the growing tip of root hairs. We characterized spatial changes in ROS production and compartmentalization induced by external ROS modulators, ethylene precursor 1-aminocyclopropane-1-carboxylic acid and ionophore valinomycin. This dynamic and high-resolution study of ROS production and utilization opens new opportunities for precise speciation of particular ROS involved in the root hair formation. One sentence summary: High-resolution live-cell imaging of ROS production and subcellular localization in bulges and growing root hairs of Arabidopsis using CM-H2DCFDA, CellROXTM Deep Red and AmplexTM Red selective probes.

plant biology↗