Application of Metabolic Engineering to the Production of Scopolamine
Abstract
:Introduction
- Increasing the number of producing cells
- Increasing the carbon flux through a biosynthetic pathway by overexpression of genes codifying for rate-limiting enzymes or blocking the mechanism of feedback inhibition and competitive pathways
- Decreasing catabolism
Biosynthesis of scopolamine
Solanoidae | Daturae | Datura | D. stramonium, D. ferox, D. quercifolia, D. pruinosa, D. leichahhardtii, D. inoxia, D. discolor, D. metel, D. wrightii |
Brugmansia | B. aurea, B. sanguinea, B. arborea, B. xcandida, B. xdolichocarpa, B. xinsignis, B. versicolor, B. vulcanicola | ||
Solandrae | Solandra | S. longifolia, S. grandifolia, S. guttata, S. hartvegii, S. hirsute, S. macranthe | |
Solaneae | Atropa | A. belladonna | |
Latua | L. pubiflora | ||
Acristus | A. arborea | ||
Mandragora | M. autumnale, M. vernalis | ||
Salpichroa | S. organiflora | ||
Hyoscyameae | Scopolia | S. carniolica, S. parviflora | |
Hyoscyamus | H. muticus, H. niger, H. albus, H. aureus | ||
Physochlaina | P. physaloides, P. orientalis | ||
Przewalskia | P. tangutica | ||
Cestroideae | Anthocercidae | Duboisia | D. hopwoodii, D. leichhardtii, D. myoporoides, D. arenitensis, D. hybrid |
Anthotroche | A. myoporoides, A. pannosa, A. walcottii | ||
Anthocercis | A. littorea, A. viscose, A. fasciculote, A. ilicitolia, A. genistoides | ||
Cyphanthera | C. anthocercidea, C. albicans | ||
Symonanthus | S. aromaticus | ||
Grammosolen | G. dixonii |
Hairy root cultures as a source of scopolamine
Overexpression of the pmt gene to improve scopolamine production
Overexpression of tropinone reductases
Overexpression of the h6h gene to increase the epoxidation of hyoscyamine into scopolamine
Biotransformation of hyoscyamine into scopolamine in transgenic tobacco hairy roots
Future Challenges
Acknowledgements
References
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Palazón, J.; Navarro-Ocaña, A.; Hernandez-Vazquez, L.; Mirjalili, M.H. Application of Metabolic Engineering to the Production of Scopolamine. Molecules 2008, 13, 1722-1742. https://doi.org/10.3390/molecules13081722
Palazón J, Navarro-Ocaña A, Hernandez-Vazquez L, Mirjalili MH. Application of Metabolic Engineering to the Production of Scopolamine. Molecules. 2008; 13(8):1722-1742. https://doi.org/10.3390/molecules13081722
Chicago/Turabian StylePalazón, Javier, Arturo Navarro-Ocaña, Liliana Hernandez-Vazquez, and Mohammad Hossein Mirjalili. 2008. "Application of Metabolic Engineering to the Production of Scopolamine" Molecules 13, no. 8: 1722-1742. https://doi.org/10.3390/molecules13081722
APA StylePalazón, J., Navarro-Ocaña, A., Hernandez-Vazquez, L., & Mirjalili, M. H. (2008). Application of Metabolic Engineering to the Production of Scopolamine. Molecules, 13(8), 1722-1742. https://doi.org/10.3390/molecules13081722