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217篇 您的检索式:作者名="Kudla"
    题名 作者 年代 出处 被引量
1Calcium-dependent modulation and plasma membrane targeting of the AKT2 potassium channel by the CBL4/ ClPK6 calcium sensor/protein kinase complex显示文摘Katrin Held Franqois Pascaud Christian Eckert Pawel Gajdanowicz Kenji Hashimoto Claire Corratge-Faillie Jan Niklas Offenborn Benoit Lacombe Ingo Dreyer Jean-Baptiste Thibaud Jorg Kudla 2011Cell Research2011,21,7:23
2The Calcineurin B-Like Ca2+ Sensors CBL1 and CBL9 Function in Pollen Germination and Pollen Tube Growth in Arabidopsis显示文摘Anette Maihs Leonie Steinhorst Jian-Pu Han Li-Ke Shen Yi Wang Jorg Kudla 2013Molecular Plant2013,6,4:20
3S-acylation-dependent association of the calcium sensor CBL2 with the vacuolar membrane is essential for proper abscisic acid responses显示文摘Calcineurin 象 B 一样(CBL ) 蛋白质贡献由与交往 CBL 蛋白质 kinases (CIPK ) 交往译码钙信号。当前,几乎仍然功能和在 vacuolar 膜是局部性的 CBL 蛋白质的特定的指向机制没有信息。在这研究,我们集中于 CBL2,丰富的 vacuolar 从 Arabidopsis thaliana 的未知功能的膜局部性的钙传感器。我们证明 CBL2 指向的 vacuolar 被三半胱氨酸残余的 S-acylation 明确地在它的 N 终点和那 CBL2 S-acylation 引起并且指向由一条 Brefeldin A 感觉迟钝的小径发生。CBL2 功能的损失在种子萌芽期间并且仅仅充分使植物变为过分敏感到植物激素 abscisic 酸(骆驼毛的织物) S-acylated 和适当地指向 vacuolar 的 CBL2 蛋白质能补充这变异的显型。这些调查结果定义为蛋白质指向小径的 S-acylation-dependent vacuolar 膜并且揭开在骆驼毛的织物回答的 vacuolar 钙传感器的一个关键角色。Oliver Batistic Marion Rehers Amir Akerman Kathrin Schlucking Leonie Steinhorst Shaul Yalovsky Jorg Kudla 2012Cell Research2012,22,7:12
4New GATEWAY vectors for High Throughput Analyses of Protein-Protein Interactions by Bimolecular Fluorescence Complementation显示文摘Christian Gehl Rainer Waadt Jorg Kudla Ralf-R. Mendel Robert Hansch 2009Molecular Plant2009,2,5:11
5Integration and channeling of calcium signaling through the CBL calcium sensor/CIPK protein kinase network显示文摘Oliver Batistic J?rg Kudla 2004Planta2004,,6:2
6Ca^(2+)signaling in plant responses to abiotic stresses显示文摘Adverse variations of abiotic environmental cues that deviate from an optimal range impose stresses to plants.Abiotic stresses severely impede plant physiology and development.Consequently,such stresses dramatically reduce crop yield and negatively impact on ecosystem stability and composition.Physical components of abiotic stresses can be,for example,suboptimal temperature and osmotic perturbations,while representative chemical facets of abiotic stresses can be toxic ions or suboptimal nutrient availability.The sheer complexity of abiotic stresses causes a multitude of diverse components and mechanisms for their sensing and signal transduction.Ca^(2+),as a versatile second messenger,plays multifaceted roles in almost all abiotic stress responses in that,for a certain abiotic stress,Ca^(2+)is not only reciprocally connected with its perception,but also multifunctionally ensures subsequent signal transduction.Here,we will focus on salt/osmotic stress and responses to altered nutrient availability as model cases to detail novel insights into the identity of components that link stress perception to Ca^(2+)signal formation as well as on new insights into mechanisms of Ca^(2+)signal implementation.Finally,we will deduce emerging conceptual consequences of these novel insights and outline arising avenues of future research on the role of Ca^(2+)signaling in abiotic stress responses in plants.Qiuyan Dong Lukas Wallrad Bader O.Almutairi Jörg Kudla 2022Journal of Integrative Plant Biology2022,64,2:2
7A New β-Estradiol-lnducible Vector Set that Facilitates Easy Construction and Efficient Expression of Transgenes Reveals CBL3-Dependent Cytoplasm to Tonoplast Translocation of CIPK5显示文摘Kathrin Schliicking Kai H. Edel Maria M. Drerupa Philipp Koster Christian Eckert Leonie Steinhorst Rainer Waadt Oliver Batistic Jorg Kudla 2013Molecular Plant2013,6,6:2
8The modification of starch by high pressure,Part Ⅰ:Air and oven dried potato starch显示文摘E Kudla P Tomasik 1992Starch/ Starke1992,,44:1
9Coding-sequence determinants of gene expression in Escherichia coli 显示文摘KUDLA G MURRAY A W TOLLERVEY D 2009Science2009,324,:1
10RNA editing in tobacco chloroplasts leads to the formation of a translatable psbL mRNA by a C to U substitution within the initiation codon显示文摘Kudla J Igloi G Metzlaff M 1992The EMBO Journal1992,11,:1
11Diagnostic accuracy of three-di- mensional sonohysterography compared with office hystcroscopy and its interrater/intrarater agreement in uterine cavity assessment after hysteroscopic metroplasty显示文摘Ludwin A Ludwin I Kudla M 2014Fertil Steril2014,101,5:1
12The Language of Calcium Signaling 显示文摘Dodd AN Kudla J Sanders D 2010Annu Rev Plant Biol2010,61,1:1
13Modification of starch by high pressure,part Ⅱ:Compresion of starch with additives显示文摘E Kudla P Tomasik 1992Starch/Starke1992,,44:1
14Calcium decoding mechanisms in plants 显示文摘Hashimoto K Kudla J 2011Biochimie2011,93,12:1
15Effectiveness, tol- erability, and safety of ziprasidone in patients with schizo- phrenia or schizoaffective disorder: results of a multi-centre observational trial显示文摘Kudla D Lambert M Domin S 2007Eur Psychiatry2007,22,3:1
16Calcium decoding mechanisms in plants 显示文摘Hashimoto K Kudla J 2011Biochimie2011,93,:1
17Concurrent signatures 显示文摘CHEN L KUDLA C PATERSON K 2004Lecture Notes in Computer Science2004,3027,:1
18Integration and channeling of calcium signaling through the CBL calcium sensor/CIPK protein kinase network 显示文摘KUDLA J BATISTI O 2004Planta2004,219,6:1
19Tissue- and stage-specific modulation of RNA editing of the psbF and psbL transcript from spinach plastids-a new regulatory mechanism?显示文摘Bock R Hagemann R K?ssel H Kudla J 1993Mol Gen Genet1993,240,2:1
20Calcium signals:the lead currency of plant information processing 显示文摘Kudla J Batistic O Hashimoto K 2010Plant Cell2010,22,3:1
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