Eliška Nejedlá
Masaryk University
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Featured researches published by Eliška Nejedlá.
Proceedings of the National Academy of Sciences of the United States of America | 2010
Kamil Růžička; Lucia C. Strader; Aurélien Bailly; Haibing Yang; Joshua J. Blakeslee; Łukasz Łangowski; Eliška Nejedlá; Hironori Fujita; Hironori Itoh; Kunihiko Syōno; Jan Hejátko; William M. Gray; Enrico Martinoia; Markus Geisler; Bonnie Bartel; Angus S. Murphy; Jiří Friml
Differential distribution of the plant hormone auxin within tissues mediates a variety of developmental processes. Cellular auxin levels are determined by metabolic processes including synthesis, degradation, and (de)conjugation, as well as by auxin transport across the plasma membrane. Whereas transport of free auxins such as naturally occurring indole-3-acetic acid (IAA) is well characterized, little is known about the transport of auxin precursors and metabolites. Here, we identify a mutation in the ABCG37 gene of Arabidopsis that causes the polar auxin transport inhibitor sensitive1 (pis1) phenotype manifested by hypersensitivity to auxinic compounds. ABCG37 encodes the pleiotropic drug resistance transporter that transports a range of synthetic auxinic compounds as well as the endogenous auxin precursor indole-3-butyric acid (IBA), but not free IAA. ABCG37 and its homolog ABCG36 act redundantly at outermost root plasma membranes and, unlike established IAA transporters from the PIN and ABCB families, transport IBA out of the cells. Our findings explore possible novel modes of regulating auxin homeostasis and plant development by means of directional transport of the auxin precursor IBA and presumably also other auxin metabolites.
Plant Journal | 2011
Blanka Pekárová; Tomáš Klumpler; Olga Třísková; Jakub Horák; Séverine Jansen; Radka Dopitová; Petra Borkovcová; Veronika Papoušková; Eliška Nejedlá; Vladimír Sklenář; Jaromír Marek; Lukáš Žídek; Jan Hejátko; Lubomír Janda
Multistep phosphorelay (MSP) signaling mediates responses to a variety of important stimuli in plants. In Arabidopsis MSP, the signal is transferred from sensor histidine kinase (HK) via histidine phosphotransfer proteins (AHP1-AHP5) to nuclear response regulators. In contrast to ancestral two-component signaling in bacteria, protein interactions in plant MSP are supposed to be rather nonspecific. Here, we show that the C-terminal receiver domain of HK CKI1 (CKI1(RD) ) is responsible for the recognition of CKI1 downstream signaling partners, and specifically interacts with AHP2, AHP3 and AHP5 with different affinities. We studied the effects of Mg²⁺, the co-factor necessary for signal transduction via MSP, and phosphorylation-mimicking BeF₃⁻ on CKI1(RD) in solution, and determined the crystal structure of free CKI1(RD) and CKI1(RD) in a complex with Mg²⁺. We found that the structure of CKI1(RD) shares similarities with the only known structure of plant HK, ETR1(RD) , with the main differences being in loop L3. Magnesium binding induces the rearrangement of some residues around the active site of CKI1(RD) , as was determined by both X-ray crystallography and NMR spectroscopy. Collectively, these results provide initial insights into the nature of molecular mechanisms determining the specificity of MSP signaling and MSP catalysis in plants.
Journal of Experimental Botany | 2015
Alena Kuderová; Lucia Gallová; Katarína Kuricová; Eliška Nejedlá; Anna Čurdová; Lenka Micenková; Ondřej Plíhal; David Šmajs; Lukáš Spíchal; Jan Hejátko
Cytokinin (CK) signalling is known to play key roles in the regulation of plant growth and development, crop yields, and tolerance to both abiotic stress and pathogen defences, but the mechanisms involved are poorly characterized in dicotyledonous crops. Here the identification and functional characterization of sensor histidine kinases homologous to Arabidopsis CK receptors AHK2 and AHK3 in winter oilseed rape are presented. Five CHASE-containing His kinases were identified in Brassica napus var. Tapidor (BnCHK1-BnCHK5) by heterologous hybridization of its genomic library with gene-specific probes from Arabidopsis. The identified bacterial artificial chromosome (BAC) clones were fingerprinted and representative clones in five distinct groups were sequenced. Using a bioinformatic approach and cDNA cloning, the precise gene and putative protein domain structures were determined. Based on phylogenetic analysis, four AHK2 (BnCHK1-BnCHK4) homologues and one AHK3 (BnCHK5) homologue were defined. It is further suggested that BnCHK1 and BnCHK3, and BnCHK5 are orthologues of AHK2 and AHK3, originally from the B. rapa A genome, respectively. BnCHK1, BnCHK3, and BnCHK5 displayed high affinity for trans-zeatin (1-3nM) in a live-cell competitive receptor assay, but not with other plant hormones (indole acetic acid, GA3, and abscisic acid), confirming the prediction that they are genuine CK receptors. It is shown that BnCHK1 and BnCHK3, and BnCHK5 display distinct preferences for various CK bases and metabolites, characteristic of their AHK counterparts, AHK2 and AHK3, respectively. Interestingly, the AHK2 homologues could be divided into two subfamilies (BnCHK1/BnCK2 and BnCHK3/BnCHK4) that differ in putative transmembrane domain topology and CK binding specificity, thus implying potential functional divergence.
Acta Crystallographica Section F-structural Biology and Crystallization Communications | 2013
Oksana Degtjarik; Radka Dopitová; Sandra Puehringer; Eliška Nejedlá; Michal Kuty; Manfred S. Weiss; Jan Hejátko; Lubomír Janda; Ivana Kuta Smatanova
Histidine-containing phosphotransfer proteins from Arabidopsis thaliana (AHP1-5) act as intermediates between sensor histidine kinases and response regulators in a signalling system called multi-step phosphorelay (MSP). AHP proteins mediate and potentially integrate various MSP-based signalling pathways (e.g. cytokinin or osmosensing). However, structural information about AHP proteins and their importance in MSP signalling is still lacking. To obtain a deeper insight into the structural basis of AHP-mediated signal transduction, the three-dimensional structure of AHP2 was determined. The AHP2 coding sequence was cloned into pRSET B expression vector, enabling production of AHP2 fused to an N-terminal His tag. AHP2 was expressed in soluble form in Escherichia coli strain BL21 (DE3) pLysS and then purified to homogeneity using metal chelate affinity chromatography and anion-exchange chromatography under reducing conditions. Successful crystallization in a buffer which was optimized for thermal stability yielded crystals that diffracted to 2.5 Å resolution.
Journal of Veterinary Medicine Series B-infectious Diseases and Veterinary Public Health | 2000
V. Celer; Eliška Nejedlá; G. Bertoni; E. Peterhans; R. G. Zanoni
FEBS Journal | 1999
Vladimír Rotrekl; Eliška Nejedlá; Igor Kučera; Fuad Abdallah; Klaus Palme; Břetislav Brzobohatý
Archive | 2002
Břetislav Brzobohatý; Todor Nikolaev Genkov; Eliška Nejedlá; Jan Nejedlík; Jaroslava Dubová; Jiří Malbeck; Martin Vágner; Ian Moore
Archive | 2014
Oksana Degtjarik; Radka Dopitová; Blanka Pekárová; Tomáš Klumpler; Jakub Horák; Petra Borkovcová; Eliška Nejedlá; David Řeha; Sandra Puehringer; Olga Otrusinová; Séverine Jansen; Michal Kutý; Manfred S. Weiss; Vladimír Sklenář; Jaromír Marek; Veronika Papoušková; Lukáš Žídek; Ivana Kutá-Smatanová; Lubomír Janda; Jan Hejátko
Acta Crystalographica Section F | 2013
Oksana Degtjarik; Radka Dopitová; Sandra Puehringer; Eliška Nejedlá; Michal Kutý; Manfred S. Weiss; Jan Hejátko; Lubomír Janda; Ivana Kutá-Smatanová
Archive | 2012
Alena Kuderová; Katarína Kuricová; Eliška Nejedlá; Anna Čurdová; Lenka Micenková; David Šmajs; Jan Hejátko