Jürg Schmid
École Polytechnique Fédérale de Lausanne
37 Papers
728 Citations
Jürg Schmid is an academic researcher from École Polytechnique Fédérale de Lausanne. The author has contributed to research in topics: Shikimate pathway & Complementary DNA. The author has an hindex of 26, co-authored 37 publications. Previous affiliations of Jürg Schmid include ETH Zurich & Research Triangle Park.
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Papers
The transcriptome of Arabidopsis thaliana during systemic acquired resistance.
Klaus Maleck,Aaron D. Levine,Thomas Eulgem,Allen Morgan,Jürg Schmid,Kay A. Lawton,Jeffery L. Dangl,Robert A. Dietrich +7 more
TL;DR: This work monitored gene-expression changes in Arabidopsis thaliana under 14 different SAR-inducing or SAR-repressing conditions using a DNA microarray and derived groups of genes with common regulation patterns, or regulons.
Molecular organization of the shikimate pathway in higher plants
Jürg Schmid,Nikolaus Amrhein +1 more
TL;DR: The recent isolation and characterization of cDNAs and genes coding for enzymes of the shikimate pathway in higher plants have confirmed that plastids are the major, if not only site of aromatic amino acid biosynthesis in plants.
235
Structural and catalytic properties of the four phenylalanine ammonia-lyase isoenzymes from parsley (Petroselinum crispum Nym.)
TL;DR: The results suggest that the occurrence of multiple gene copies has a function other than encoding isoenzymes with different enzyme kinetic properties, as opposed to a certain degree of differential expression in various parts of parsley plants.
143
Developmental and environmental regulation of a bean chalcone synthase promoter in transgenic tobacco.
TL;DR: It is concluded that the CHS8 promoter contains cis-elements required to establish temporal and spatial control of flavonoid biosynthesis during development and in response to diverse environmental stimuli.
143
A unique reaction in a common pathway: mechanism and function of chorismate synthase in the shikimate pathway.
TL;DR: This review summarizes recent developments in the biochemical and genetic arena and identifies future aims in this field of understanding, suggesting an initial electron transfer from tightly bound reduced flavin to the substrate, a process which results in C—O bond cleavage.
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