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1.
Planta ; 248(2): 267-277, 2018 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-29748818

RESUMEN

MAIN CONCLUSION: Genetic transformation allows for greater bixin or norbixin production in achiote. Knowledge of genes that control the biosynthesis of these important secondary metabolites will allow for targeted amplification in transgenic plants. Annatto is a natural dye or coloring agent derived from the seeds, or their arils, of achiote (Bixa orellana L.), and is commercially known as E160b. The main active component of annatto dye is water-insoluble bixin, although water-soluble norbixin also has commercial applications. Relative to other antioxidants, bixin is light- and temperature stable and is thus safe for human consumption. Bixin is, therefore, widely applied as a dye and as an antioxidant in the medico-pharmaceutical, food, cosmetic, and dye industries. Even though bixin has also been isolated from leaves and bark, yield is lower than from seeds. More biotechnology-based research of this industrial and medicinal plant is needed. Building on provisional genetic transformation studies, it would be advantageous to transform genes that could result in greater bixin or norbixin production. Reliable protocols for the extraction of bixin and norbixin, as well as deeper knowledge of the genes that control the biosynthesis of these important secondary metabolites will allow for targeted amplification in transgenic plants.


Asunto(s)
Antioxidantes/metabolismo , Biotecnología , Bixaceae/genética , Carotenoides/metabolismo , Colorantes de Alimentos/metabolismo , Bixaceae/química , Bixaceae/metabolismo , Bixaceae/fisiología , Cruzamiento , Humanos , Extractos Vegetales/metabolismo , Plantas Medicinales , Reproducción , Semillas/química , Semillas/genética , Semillas/fisiología , Transformación Genética
2.
Plant Physiol ; 131(1): 41-8, 2003 Jan.
Artículo en Inglés | MEDLINE | ID: mdl-12529513

RESUMEN

Aspects of xylem anatomy and vulnerability to water stress-induced embolism were examined in stems of two drought-deciduous species, Brachychiton australis (Schott and Endl.) A. Terracc. and Cochlospermum gillivraei Benth., and two evergreen species, Alphitonia excelsa (Fenzal) Benth. and Austromyrtus bidwillii (Benth.) Burret., growing in a seasonally dry rainforest. The deciduous species were more vulnerable to water stress-induced xylem embolism. B. australis and C. gillivraei reached a 50% loss of hydraulic conductivity at -3.17 MPa and -1.44 MPa, respectively; a 50% loss of hydraulic conductivity occurred at -5.56 MPa in A. excelsa and -5.12 MPa in A. bidwillii. To determine whether pit membrane porosity was responsible for greater vulnerability to embolism (air seeding hypothesis), pit membrane structure was examined. Expected pore sizes were calculated from vulnerability curves; however, the predicted inter-specific variation in pore sizes was not detected using scanning electron microscopy (pores were not visible to a resolution of 20 nm). Suspensions of colloidal gold particles were then perfused through branch sections. These experiments indicated that pit membrane pores were between 5 and 20 nm in diameter in all four species. The results may be explained by three possibilities: (a) the pores of the expected size range were not present, (b) larger pores, within the size range to cause air seeding, were present but were rare enough to avoid detection, or (c) pore sizes in the expected range only develop while the membrane is under mechanical stress (during air seeding) due to stretching/flexing.


Asunto(s)
Invaginaciones Cubiertas de la Membrana Celular/fisiología , Árboles/fisiología , Agua/fisiología , Algoritmos , Bixaceae/fisiología , Invaginaciones Cubiertas de la Membrana Celular/ultraestructura , Microscopía Electrónica de Rastreo , Tallos de la Planta/fisiología , Transpiración de Plantas/fisiología , Porosidad , Rhamnaceae/fisiología , Estrés Mecánico
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