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Lipka, U.

Publications and source records attributed to Lipka, U..

2 recordsLinked to original sources

A single pathogen-secreted protein reprograms plants for drought resilience

Climate change-enforced drought stress conditions and diseases caused by pathogens often co-occur and represent one of the greatest challenges in plant science1-3. Wilt pathogens that colonize water-conducting plant tissues can aggravate the problem and affect a wide range of agricultural crops4,5. However, whilst fungal infections with the vascular pathogen Verticillium dahliae are typically associated with wilt symptoms due to occlusion of xylem tissues, the related V. longisporum induces de novo formation of tracheary elements6,7. This promotes not only its virulence but also enables elevated water storage capacity of the infected host plant and resilience against drought stress conditions6,7. Here, we identified a secreted Verticillium protein, TRANSDIFFERENTIATION EFFECTOR (TRADE), which triggers cell identity switches of bundle sheath cells into tracheary elements. We show that TRADE interacts with the intracellular plant protein VARICOSE (VCS), a conserved component of the mRNA turnover machinery and ortholog of the metazoan protein ENHANCER OF DECAPPING 4 (EDC4/HEDLS/Ge-1)8. The TRADE-VCS interaction induces SUCROSE NON-FERMENTING 1 (SNF1)-related protein kinase (SRK)-dependent phosphorylation and thus dysfunction of VCS. This affects the abundance of mRNAs encoding master regulators of xylem differentiation and demonstrates how a single pathogen effector protein triggers complex tissue-specific developmental reprogramming and thus promotes abiotic stress resilience.

plant biology↗

Wax ester synthase overexpression affects stomatal development, water consumption and growth of poplars

Poplars are important fast-growing biomass crops. Their water-spending lifestyle renders them susceptible to drought and threatens plantations under global climate change with extended periods of water deprivation. The cuticle and stomatal regulation are major traits to protect plants from uncontrolled water loss. Here, we targeted the wax biosynthesis pathway of Populus x canescens by overexpressing jojoba (Simmondsia chinensis) wax ester synthase (ScWS) to improve cuticular properties. ScWS expression caused accumulation of lipid droplets inside the cells, decreased transcript levels of endogenous wax biosynthetic genes, and moderate shifts in surface wax composition but did not affect non-stomatal water loss. During short- and long-term drought scenarios under greenhouse and outdoor conditions, ScWS lines showed decreased stomatal conductance and increased water-use-efficiencies leading to a water-saving phenotype and delayed leaf shedding. This phenotype was caused by a high fraction (80%) of wax-occluded or semi-occluded stomata, and was accompanied by suppression of OCCLUDED STOMATAL PORE1 (OSP1), known to cause abberant wax accumulation at the stomatal ledges as found here. Occluded stomata limited poplar photosynthesis under high but not under low light intensities. Leaf damage and insect scores did not reveal differences compared with wild-type plants. Biomass production of ScWS lines was unaffected in short-term experiments but dropped below that of wild-type poplars at the end of two field seasons, indicating a growth trade-off. In conclusion, our study pinpoints a tight connection between wax biosynthesis and stomatal features and opens a new avenue to improve poplar water consumption by optimizing stomatal ledges with refined biotechnological approaches.

plant biology↗