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Dive into the research topics where Debabrata Laha is active.

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Featured researches published by Debabrata Laha.


The Plant Cell | 2015

VIH2 Regulates the Synthesis of Inositol Pyrophosphate InsP 8 and Jasmonate-Dependent Defenses in Arabidopsis

Debabrata Laha; Philipp Johnen; Cristina Azevedo; Marek Dynowski; Michael Weiß; Samanta Capolicchio; Haibin Mao; Tim Iven; Merel Steenbergen; Marc Freyer; Philipp Gaugler; Marília K. F. de Campos; Ning Zheng; Ivo Feussner; Henning J. Jessen; Saskia C. M. Van Wees; Adolfo Saiardi; Gabriel Schaaf

The inositol pyrophosphate InsP8 plays an important role in plant defenses against herbivorous insects and necrotrophic fungi and is a key cofactor of the jasmonate receptor complex. Diphosphorylated inositol polyphosphates, also referred to as inositol pyrophosphates, are important signaling molecules that regulate critical cellular activities in many eukaryotic organisms, such as membrane trafficking, telomere maintenance, ribosome biogenesis, and apoptosis. In mammals and fungi, two distinct classes of inositol phosphate kinases mediate biosynthesis of inositol pyrophosphates: Kcs1/IP6K- and Vip1/PPIP5K-like proteins. Here, we report that PPIP5K homologs are widely distributed in plants and that Arabidopsis thaliana VIH1 and VIH2 are functional PPIP5K enzymes. We show a specific induction of inositol pyrophosphate InsP8 by jasmonate and demonstrate that steady state and jasmonate-induced pools of InsP8 in Arabidopsis seedlings depend on VIH2. We identify a role of VIH2 in regulating jasmonate perception and plant defenses against herbivorous insects and necrotrophic fungi. In silico docking experiments and radioligand binding-based reconstitution assays show high-affinity binding of inositol pyrophosphates to the F-box protein COI1-JAZ jasmonate coreceptor complex and suggest that coincidence detection of jasmonate and InsP8 by COI1-JAZ is a critical component in jasmonate-regulated defenses.


Angewandte Chemie | 2015

Prometabolites of 5‐Diphospho‐myo‐inositol Pentakisphosphate

Igor Pavlovic; Divyeshsinh T. Thakor; Laurent Bigler; Miranda S. C. Wilson; Debabrata Laha; Gabriel Schaaf; Adolfo Saiardi; Henning J. Jessen

Diphospho-myo-inositol phosphates (PP-InsP(y)) are an important class of cellular messengers. Thus far, no method for the transport of PP-InsP(y) into living cells is available. Owing to their high negative charge density, PP-InsP(y) will not cross the cell membrane. A strategy to circumvent this issue involves the generation of precursors in which the negative charges are masked with biolabile groups. A PP-InsP(y) prometabolite would require twelve to thirteen biolabile groups, which need to be cleaved by cellular enzymes to release the parent molecules. Such densely modified prometabolites of phosphate esters and anhydrides have never been reported to date. This study discloses the synthesis of such agents and an analysis of their metabolism in tissue homogenates by gel electrophoresis. The acetoxybenzyl-protected system is capable of releasing 5-PP-InsP5 in mammalian cell/tissue homogenates within a few minutes and can be used to release 5-PP-InsP5 inside cells. These molecules will serve as a platform for the development of fundamental tools required to study PP-InsP(y) physiology.


Plant Physiology | 2016

Inositol polyphosphate binding specificity of the jasmonate receptor complex

Debabrata Laha; Nargis Parvin; Marek Dynowski; Philipp Johnen; Haibin Mao; Sven T. Bitters; Ning Zheng; Gabriel Schaaf

Inositol polyphosphate binding specificity of the jasmonate receptor is largely determined by the F-box protein COI1.


Nature Communications | 2017

A 1-phytase type III effector interferes with plant hormone signaling

Doreen Blüher; Debabrata Laha; Sabine Thieme; Alexandre Hofer; Lennart Eschen-Lippold; Antonia Masch; Gerd Ulrich Balcke; Igor Pavlovic; Oliver Nagel; Antje Schonsky; Rahel Hinkelmann; Jakob Wörner; Nargis Parvin; Ralf Greiner; Stefan Weber; Alain Tissier; Mike Schutkowski; Justin Lee; Henning J. Jessen; Gabriel Schaaf; Ulla Bonas

Most Gram-negative phytopathogenic bacteria inject type III effector (T3E) proteins into plant cells to manipulate signaling pathways to the pathogen’s benefit. In resistant plants, specialized immune receptors recognize single T3Es or their biochemical activities, thus halting pathogen ingress. However, molecular function and mode of recognition for most T3Es remains elusive. Here, we show that the Xanthomonas T3E XopH possesses phytase activity, i.e., dephosphorylates phytate (myo-inositol-hexakisphosphate, InsP6), the major phosphate storage compound in plants, which is also involved in pathogen defense. A combination of biochemical approaches, including a new NMR-based method to discriminate inositol polyphosphate enantiomers, identifies XopH as a naturally occurring 1-phytase that dephosphorylates InsP6 at C1. Infection of Nicotiana benthamiana and pepper by Xanthomonas results in a XopH-dependent conversion of InsP6 to InsP5. 1-phytase activity is required for XopH-mediated immunity of plants carrying the Bs7 resistance gene, and for induction of jasmonate- and ethylene-responsive genes in N. benthamiana.Plant pathogens translocate type III effector (T3E) proteins that may be recognized by plants to trigger immunity. Here, the authors show that the Xanthomonas T3E XopH possesses a novel 1-phytase activity that is required for XopH-mediated immunity of plants carrying the Bs7 resistance gene.


Plant and Cell Physiology | 2018

Arabidopsis Phospholipase C3 is Involved in Lateral Root Initiation and ABA Responses in Seed Germination and Stomatal Closure

Qianqian Zhang; Ringo van Wijk; Muhammad Shahbaz; Wendy Roels; Schooten, Van, Bas; Joop E. M. Vermeer; Xavier Zarza; Aisha Guardia; Denise Scuffi; Carlos García-Mata; Debabrata Laha; Phoebe Williams; Leo A. J. Willems; Wilco Ligterink; Susanne Hoffmann-Benning; Glenda E. Gillaspy; Gabriel Schaaf; Michel A. Haring; Ana M. Laxalt; Teun Munnik

Phospholipase C (PLC) is well known for its role in animal signaling, where it generates the second messengers, inositol 1,4,5-trisphosphate (IP3) and diacylglycerol (DAG), by hydrolyzing the minor phospholipid, phosphatidylinositol 4,5-bisphosphate (PIP2), upon receptor stimulation. In plants, PLCs role is still unclear, especially because the primary targets of both second messengers are lacking, i.e. the ligand-gated Ca2+ channel and protein kinase C, and because PIP2 levels are extremely low. Nonetheless, the Arabidopsis genome encodes nine PLCs. We used a reversed-genetic approach to explore PLCs function in Arabidopsis, and report here that PLC3 is required for proper root development, seed germination and stomatal opening. Two independent knock-down mutants, plc3-2 and plc3-3, were found to exhibit reduced lateral root densities by 10-20%. Mutant seeds germinated more slowly but were less sensitive to ABA to prevent germination. Guard cells of plc3 were also compromised in ABA-dependent stomatal closure. Promoter-β-glucuronidase (GUS) analyses confirmed PLC3 expression in guard cells and germinating seeds, and revealed that the majority is expressed in vascular tissue, most probably phloem companion cells, in roots, leaves and flowers. In vivo 32Pi labeling revealed that ABA stimulated the formation of PIP2 in germinating seeds and guard cell-enriched leaf peels, which was significantly reduced in plc3 mutants. Overexpression of PLC3 had no effect on root system architecture or seed germination, but increased the plants tolerance to drought. Our results provide genetic evidence for PLCs involvement in plant development and ABA signaling, and confirm earlier observations that overexpression increases drought tolerance. Potential molecular mechanisms for the above observations are discussed.


Archive | 2017

PLANTS HAVING INCREASED RESISTANCE TO PLANT PATHOGENS, AND METHOD FOR CREATING INCREASED PATHOGEN RESISTANCE IN PLANTS

Gabriel Schaaf; Debabrata Laha; Marc Freyer; Marília K. F. de Campos; Philipp Johnen; Saskia C. M. van Wees


Molecular Plant | 2017

TOM9.2 Is a Calmodulin-Binding Protein Critical for TOM Complex Assembly but Not for Mitochondrial Protein Import in Arabidopsis thaliana

Nargis Parvin; Chris Carrie; Isabelle Pabst; Antonia Läßer; Debabrata Laha; Melanie Verena Paul; Peter Geigenberger; Ralf Heermann; Kirsten Jung; Ute C. Vothknecht; Fatima Chigri


Archive | 2016

Pflanzen mit erhöhter Resistenz gegen Pflanzenpathogene sowie Verfahren zur Erzeugung erhöhter Pathogenresistenz in Pflanzen

Gabriel Schaaf; Debabrata Laha; Marc Freyer; Marília K. F. de Campos; Philipp Johnen; Saskia C. M. van Wees


Archive | 2014

Plants with increased resistance against plant pathogens, and methods for producing increased pathogen resistance in plants

Gabriel Schaaf; Debabrata Laha; Marc Freyer; Marília K. F. de Campos; Philipp Johnen; Saskia C. M. Van Wees


Pakistan Journal of Biological Sciences | 2013

Differential role of ethylene and hydrogen peroxide in dark-induced stomatal closure.

R. K. Kar; Nargis Parvin; Debabrata Laha

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Marc Freyer

University of Tübingen

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Haibin Mao

University of Washington

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Ning Zheng

University of Washington

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