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Van Beirs, C.

Publications and source records attributed to Van Beirs, C..

2 recordsLinked to original sources

The Arabidopsis PAL3 is a carboxy-tyrosine ammonia lyase

Phenylalanine ammonia lyase (PAL) catalyses the deamination of L-phenylalanine, which is the first step of the plant-specific phenylpropanoid pathway. Its position at the intersection of primary and specialized metabolism, combined with its important role in plant growth and adaptive stress response, has made it a subject of extensive studies. We identified key amino acids in the catalytic pocket of several PAL enzymes, including PAL3 of Arabidopsis, that are different from the canonical PAL sites, suggesting these enzymes have a different substrate specificity and have been miscategorised for decades. By combining untargeted metabolomics with enzyme assays, we discovered that PAL3 converts 3-carboxy-tyrosine into carboxy-p-coumaric acid. Based on this specific function, we propose to denote it as a 3-carboxy-tyrosine ammonia lyase (CAL). In addition to its discovery as a novel enzyme class, paving the way for biotechnological applications, we introduce the carboxy-phenylpropanoids as a new class of specialised metabolites.

biochemistry↗

Metabolic engineering of a tyrosine-specific phenylpropanoid pathway in plants

While all plants use L-phenylalanine for phenylpropanoid biosynthesis, grasses can also initiate the pathway from L-tyrosine. Curiously, no plant has evolved an exclusive tyrosine-derived route. We generate plants with phenylpropanoid biosynthesis initiated from phenylalanine, tyrosine, or both by expressing a Brachypodium phenylalanine/tyrosine ammonia-lyase (PTAL) in Arabidopsis WT and c4h mutants. Engineering a bifunctional phenylpropanoid pathway in WT plants did not negatively impact growth, while introducing a tyrosine-specific pathway in the c4h mutant could overcome the seedling-lethal phenotype. Interestingly, restored c4h mutants relying solely on the tyrosine route displayed developmental defects linked to the strong overaccumulation of the auxin transport inhibitor cis-cinnamic acid. Our findings suggest that the requirement of this widely overlooked plant metabolite could be the crucial factor for the evolutionary retention of the canonical phenylpropanoid biosynthesis route via L-phenylalanine in plants.

plant biology↗