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Hornero-Mendez, D.

Publications and source records attributed to Hornero-Mendez, D..

2 recordsLinked to original sources

Biosynthesis and apoplast accumulation of the apocarotenoid pigment azafrin in parasitizing roots of Escobedia grandiflora

O_LIThe herbaceous hemiparasite Escobedia grandiflora (Orobanchaceae) is used in traditional medicine in the Andean region. Their roots accumulate an orange pigment with a significant relevance as a cooking dye that exhibits antioxidant and cardioprotective properties. C_LIO_LIThe present work combined metabolic and cytological analyses with de novo transcriptome assembly, gene expression studies, and phylogenetic analyses to confirm the chemical identity of the pigment and investigate its biosynthesis and function in Escobedia roots. C_LIO_LIThe pigment was conclusively shown to be azafrin, an apocarotenoid likely derived from the cleavage of {beta}-carotene. Candidate genes for the production of azafrin in Escobedia roots are proposed based on RNA-seq supported by RT-qPCR and phylogeny reconstruction analyses. In particular, our data suggest that azafrin production relies a carotenoid cleavage dioxygenase (CCD) different from CCD7 and similar to CCD4 enzymes. We also show that azafrin is delivered to the root apoplast and that it accumulates in the area where the Escobedia haustorium contacts the hosts root, suggesting a role of azafrin in the parasitization process. C_LIO_LIAltogether, our work represents an unprecedented step forward in our understanding of the Escobedia parasitization system, but it also provides vital information towards the eventual domestication of this valuable medicinal plant. C_LI

plant biology↗

The 'squalene route' to carotenoid biosynthesis is widespread in Bacteria.

Squalene is mostly associated with the biosynthesis of polycyclic triterpenes. Although there have been suggestions that squalene could be involved in the biosynthesis of carotenoids, functionally and evolutionarily related to polycyclic triterpenes, evidence of this squalene route in nature was lacking. We demonstrate that planctomycetes synthesize C30 carotenoids via squalene and that this squalene route is widely distributed in Bacteria. We also investigated the functional roles of hopanoids and carotenoids in Planctomycetes and show that their protective functions under stress conditions are complementary. Our evolutionary analyses suggest that the C30 carotenoid biosynthetic pathway is the most ancestral, with a potential origin in Firmicutes or Planctomycetes. In addition, we propose an evolutionary scenario to explain the diversification of the different carotenoid and squalene pathways. Together, these results improve the evolutionary contextualization of these molecules. Likewise, the widespread occurrence of the squalene route in bacteria increases the functional repertoire of squalene.

microbiology↗