Fig. 8. IGMT phylogenetic tree is incongruent with the phylogeny of the investigated species. A neighbor-joining phylogenetic tree of IGMT proteins from the investigated species. A. thaliana O-methyltransferase 1 (AtOMT1) was used as an outgroup. The bar represents 10% sequence divergence.Published as part of Czerniawski, Paweł, Piasecka, Anna & Bednarek, Paweł, 2021, Evolutionary changes in the glucosinolate biosynthetic capacity in species representing Capsella, Camelina and Neslia genera, pp. 1-14 in Phytochemistry (112571) 181 on page 10, DOI: 10.1016/j.phytochem.2020.112571, http://zenodo.org/record/829110
Fig. 1. An archetypic glucosinolate-myrosinase system, leading to an isothiocyanate (A) and an oxazo...
Fig. 3. All glucosinolates (GSLs) derived from aromatic amino acids known from the tribe Cardamineae...
<p>Phylogenetic analysis was conducted in MEGA5 [56] using the Neighbor-Joining method [57]. Accessi...
Fig. 6. Diversification of CYP81F enzymes in the Camelineae species.A neighbor-joining tree of CYP81...
Fig. 7. Divergence of the IGMT1-4 locus in the Camelineae species. Graphical representation of genom...
Czerniawski, Paweł, Piasecka, Anna, Bednarek, Paweł (2021): Evolutionary changes in the glucosinolat...
Fig. 2. Total accumulation of glucosinolates varies strongly between particular organs and between i...
Fig. 5. Divergence of the CYP81F1/3/4 locus in the Camelineae species.Graphical representation of ge...
Fig. 1. General scheme of aliphatic and indolic glucosinolate biosynthesis. Dashed arrows represent ...
Fig. 4. The investigated Camelineae species differ from A. thaliana in their glucosinolate modificat...
Fig. 6. Aspects of glucosinolate (GSL) evolution in the order Brassicales with focus on the tribe Ca...
Fig. 4. All glucosinolates (GSLs) derived from aliphatic amino acids known from the tribe Cardaminea...
Fig. 3. Expression of genes encoding glucosinolate biosynthetic enzymes correlates with product accu...
Fig. 7. Stages in the biosynthesis of parent glucosinolates (GSLs) without (A) or with (B) chain elo...
Fig. 5. Structural redundancy and innovation in glucosinolate (GSL) biodiversity. A. Representative ...
Fig. 1. An archetypic glucosinolate-myrosinase system, leading to an isothiocyanate (A) and an oxazo...
Fig. 3. All glucosinolates (GSLs) derived from aromatic amino acids known from the tribe Cardamineae...
<p>Phylogenetic analysis was conducted in MEGA5 [56] using the Neighbor-Joining method [57]. Accessi...
Fig. 6. Diversification of CYP81F enzymes in the Camelineae species.A neighbor-joining tree of CYP81...
Fig. 7. Divergence of the IGMT1-4 locus in the Camelineae species. Graphical representation of genom...
Czerniawski, Paweł, Piasecka, Anna, Bednarek, Paweł (2021): Evolutionary changes in the glucosinolat...
Fig. 2. Total accumulation of glucosinolates varies strongly between particular organs and between i...
Fig. 5. Divergence of the CYP81F1/3/4 locus in the Camelineae species.Graphical representation of ge...
Fig. 1. General scheme of aliphatic and indolic glucosinolate biosynthesis. Dashed arrows represent ...
Fig. 4. The investigated Camelineae species differ from A. thaliana in their glucosinolate modificat...
Fig. 6. Aspects of glucosinolate (GSL) evolution in the order Brassicales with focus on the tribe Ca...
Fig. 4. All glucosinolates (GSLs) derived from aliphatic amino acids known from the tribe Cardaminea...
Fig. 3. Expression of genes encoding glucosinolate biosynthetic enzymes correlates with product accu...
Fig. 7. Stages in the biosynthesis of parent glucosinolates (GSLs) without (A) or with (B) chain elo...
Fig. 5. Structural redundancy and innovation in glucosinolate (GSL) biodiversity. A. Representative ...
Fig. 1. An archetypic glucosinolate-myrosinase system, leading to an isothiocyanate (A) and an oxazo...
Fig. 3. All glucosinolates (GSLs) derived from aromatic amino acids known from the tribe Cardamineae...
<p>Phylogenetic analysis was conducted in MEGA5 [56] using the Neighbor-Joining method [57]. Accessi...