Teun Munnik
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Recent Grants
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Release and Catch! Using a light-controlled probe to uncover the signaling interactome of phosphatidic acid in the plant cold response
Open Date: 2021-11-01
Close Date: 2025-10-01
Grant: Close
Boosting Crop Growth using Natural Product and Synthesis Enabled Solar Harvesting (BoostCrop)
Open Date: 2019-01-01
Close Date: 2022-12-01
Grant: Close
Molecular Heaters
Open Date: 2018-10-01
Close Date: 2019-03-01
Grant: Close
The plant PIP2 interactome – Shedding Light onto the Plant's Response to Heat- and Osmotic Stress
Open Date: 2017-11-01
Close Date: 2020-10-01
Grant: Close
Unraveling the role of PLC in plant drought and heat stress tolerance: Exploring the potential of PI metabolism to improve crop yield
Open Date: 2015-10-01
Close Date: 2019-09-01
Articles (15)
Ectopic Expression of Distinct <i>PLC</i> Genes Identifies ‘Compactness’ as a Possible Architectural Shoot Strategy to Cope with Drought Stress
Phospholipase C (PLC) has been implicated in several stress responses, including drought. Overexpression (OE) of PLC has been shown to improve drought tolerance in various plant species. Arabidopsis contains nine PLC genes, which are subdivided into four clades. Earlier, OE of PLC3, PLC5 or PLC7 was found to increase Arabidopsis’ drought tolerance. Here, we confirm this for three other PLCs: PLC2, the only constitutively expressed AtPLC; PLC4, reported to have reduced salt tolerance and PLC9, of which the encoded enzyme was presumed to be catalytically inactive. To compare each PLC and to discover any other potential phenotype, two independent OE lines of six AtPLC genes, representing all four clades, were simultaneously monitored with the GROWSCREEN-FLUORO phenotyping platform, under both control- and mild-drought conditions. To investigate which tissues were most relevant to achieving drought survival, we additionally expressed AtPLC5 using 13 different cell- or tissue-specific promoters. While no significant differences in plant size, biomass or photosynthesis were found between PLC lines and wild-type (WT) plants, all PLC-OE lines, as well as those tissue-specific lines that promoted drought survival, exhibited a stronger decrease in ‘convex hull perimeter’ (= increase in ‘compactness’) under water deprivation compared to WT. Increased compactness has not been associated with drought or decreased water loss before although a hyponastic decrease in compactness in response to increased temperatures has been associated with water loss. We propose that the increased compactness could lead to decreased water loss and potentially provide a new breeding trait to select for drought tolerance.
Year:
2023
Collaborators (6)
Roman Pleskot
Institute of Experimental Botany
Yvon Jaillais
CNRS Délégation Rhône-Auvergne
Dominique Van Der Straeten
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Till Ischebeck
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Marie-Cécile Caillaud
Université Claude Bernard Lyon 1
Olivier Hamant
Université Claude Bernard Lyon 1

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