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Kessenbrock, T.

Publications and source records attributed to Kessenbrock, T..

3 recordsLinked to original sources

De novo synthesis of fatty acids in Archaea via an archaeal fatty acid synthase complex

Archaea synthesize membranes using isoprenoid-based ether lipids, whereas Bacteria and Eukarya use fatty acid-based ester lipids. While the factors responsible for this "lipid divide" remain unclear, this has important implications for understanding the evolutionary history of eukaryotes, which likely originated from within the Archaea and therefore changed membrane composition from isoprenoid-based to fatty acid-based lipids. Here, using 13C labelling studies, we demonstrate that the archaeal model organisms Sulfolobus acidocaldarius and Haloferax volcanii are capable of de novo fatty acid synthesis. Biochemical characterization and in vitro pathway reconstitution identify the key enzymes of a newly proposed fatty acid synthesis pathway in S. acidocaldarius and show that ketothiolase, ketoacyl-CoA reductase, and hydroxyacyl-CoA dehydratase form a stable assembly mediated by a DUF35 domain protein, which represents the first characterization of an archaeal fatty acid synthase complex. The final step is catalysed by an NADPH-dependent enoyl-CoA reductase. Deletion of the enoyl-CoA reductase demonstrate that this pathway operates in vivo in S. acidocaldarius. The presented results including phylogenetic analysis reveal that the potential to synthesize fatty acids is widespread across archaeal lineages. Collectively, our findings demonstrate that archaea are capable of synthesizing fatty acids, elucidate the molecular mechanisms involved in this process and provide additional insights into the evolutionary histories of fatty acid synthesis in archaea.

microbiology↗

Enhanced late blight resistance by engineering an EpiC2B-insensitive immune protease

Crop protection strategies relying on the improvement of the natural plant immune system via genetic engineering are sustainable solutions against the pathogen thread on food security. Here we describe a novel way to improve the plant immune system by immune protease engineering. As proof of concept, we increased resistance against the late blight pathogen Phytopththora infestans by rendering the tomato secreted immune protease Pip1 insensitive to the P. infestans-secreted inhibitor Epic2B. This concept can be applied to secreted immune proteases in crops by precision breeding.

plant biology↗

Activity-based proteomics uncovers suppressed hydrolases and a neo-functionalised antibacterial enzyme at the plant-pathogen interface

The extracellular space of plant tissues contains hundreds of hydrolases that might harm colonizing microbes. Successful pathogens may suppress these hydrolases to enable disease. Here, we report the dynamics of extracellular hydrolases in leaves upon infection with Pseudomonas syringae. Using activity-based proteomics with a cocktail of biotinylated probes we simultaneously monitored 171 active hydrolases, including 109 serine hydrolases (SHs), 49 glycosidases (GHs) and 13 cysteine proteases (CPs). The activity of 82 of these hydrolases (mostly SHs) increases during infection, whilst the activity of 60 hydrolases (mostly GHs and CPs) is suppressed during infection. Active {beta}-galactosidase-1 (BGAL1) is amongst the suppressed hydrolases, consistent with production of the BGAL1 inhibitor by P. syringae. One of the other suppressed hydrolases, the pathogenesis-related NbPR3, decreases bacterial growth when transiently overexpressed. This is dependent on its active site, revealing a role for NbPR3 activity in antibacterial immunity. Despite being annotated as a chitinase, NbPR3 does not possess chitinase activity, and contains a E112Q active site substitution that is essential for antibacterial activity and is conserved only in Nicotiana species. This study introduces a powerful approach to reveal novel components of extracellular immunity, exemplified by the discovery of the suppression of neo-functionalised Nicotiana-specific antibacterial NbPR3.

plant biology↗