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Kralova, M.

Publications and source records attributed to Kralova, M..

3 recordsLinked to original sources

Conjugation of cis-OPDA with amino acids is a conserved pathway affecting cis-OPDA homeostasis upon stress responses

Jasmonates (JAs) are a family of oxylipin phytohormones regulating plant development and growth and mediating defense versus growth responses. The upstream JA biosynthetic precursor cis-(+)-12-oxo-phytodienoic acid (cis-OPDA) has been reported to act independently of the COI1-mediated JA signaling in several stress-induced and developmental processes. However, its means of perception and metabolism are only partially understood. Furthermore, cis-OPDA, but not JA, occurs in non-vascular plant species, such as bryophytes, exhibiting specific functions in defense and development. A few years ago, a low abundant isoleucine analog of the biologically active JA-Ile, OPDA-Ile, was detected in wounded leaves of flowering plants, opening up to the possibility that conjugation of cis-OPDA to amino acids might be a relevant mechanism for cis-OPDA regulation. Here, we extended the analysis of amino acid conjugates of cis-OPDA and identified naturally occurring OPDA-Val, OPDA-Phe, OPDA-Ala, OPDA-Glu, and OPDA-Asp in response to biotic and abiotic stress in Arabidopsis. The newly identified OPDA-amino acid conjugates show cis-OPDA-related plant responses in a JAR1-dependent manner. We also discovered that the synthesis and hydrolysis of cis-OPDA amino acid conjugates are regulated by members of the amidosynthetase GH3 and the amidohydrolase ILR1/ILL families. Finally, we found that the cis-OPDA conjugative pathway already functions in non-vascular plants and gymnosperms. Thus, one level of regulation by which plants modulate cis-OPDA homeostasis is the synthesis and hydrolysis of OPDA-amino acid conjugates, which temporarily store cis-OPDA in stress responses.

plant biology↗

Decoy Receptor Fine-tunes Cytokinin Signaling

Hormone perception and signaling pathways play a fundamental regulatory function in cell growth, developmental, and physiological processes in both plant and animal systems. Those pathways are activated by hormone binding to the receptor to trigger cellular responses. Equally important are mechanisms that suppress activated transduction cascades to reset the system. Different mechanisms at the level of hormone biosynthesis and deactivation through degradation, conjugation, and production of repressors that attenuate transduction cascades downstream of receptors are known. In animal systems, decoy receptors have been identified as another important mechanism for fine-tuning the activity of the signaling pathways in processes like inflammatory responses, apoptosis, and blood vessel formation. Decoy receptors recognize and bind specific signaling molecules, but they cannot activate downstream signaling pathways thus providing competitive inhibition. Here we describe the first decoy receptor in plants. We show that the splicing variant of CRE1/AHK4 receptor of cytokinin, a hormone with a key role in the regulation of cell division and meristem maintenance in plants, acts as a decoy receptor to attenuate cytokinin signaling. We propose that this novel mechanism of signaling control applies in processes when modulation of CK signaling is needed.

plant biology↗

Knockout of mitogen-activated protein kinase 3 causes barley root resistance against Fusarium graminearum.

The roles of mitogen-activated protein kinases (MAPKs) in plant-fungal pathogenic interactions are less understood in crops. Here, microscopic, phenotyping, proteomic and biochemical analyses revealed that independent TALEN-based knockout lines of Hordeum vulgare MITOGEN-ACTIVATED PROTEIN KINASE 3 (HvMPK3 KO) were resistant against Fusarium graminearum infection. When co-cultured with roots of the HvMPK3 KO lines, F. graminearum hyphae were excluded to the extracellular space, the growth pattern of hyphae was considerably deregulated, mycelia development was less efficient and number of appressoria and their penetration potential were significantly reduced. Intracellular penetration of hyphae was preceded by the massive production of reactive oxygen species (ROS) in attacked cells of the wild type, but it was mitigated in the HvMPK3 KO lines. Suppression of ROS production in these lines coincided with the elevated abundances of catalase and ascorbate peroxidase. Moreover, differential proteomic analysis revealed downregulation of defense-related proteins in wild type, and the upregulation of peroxidases, lipid transfer proteins, and cysteine proteases in HvMPK3 KO lines after 24h of F. graminearum inoculation. Consistently with proteomic analysis, microscopic observations showed an enhanced suberin accumulation in roots of HvMPK3 KO lines, most likely contributing to the arrested infection by F. graminearum. These results suggest that TALEN-based knockout of HvMPK3 leads to the barley root resistance against Fusarium root rot.

plant biology↗