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Medicinas Complementárias
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1.
Appl Environ Microbiol ; 84(17)2018 09 01.
Artículo en Inglés | MEDLINE | ID: mdl-29934332

RESUMEN

Muconic acid (MA) is a chemical building block and precursor to adipic and terephthalic acids used in the production of nylon and polyethylene terephthalate polymer families. Global demand for these important materials, coupled to their dependence on petrochemical resources, provides substantial motivation for the microbial synthesis of MA and its derivatives. In this context, the Saccharomyces cerevisiae yeast shikimate pathway can be sourced as a precursor for the formation of MA. Here we report a novel strategy to balance MA pathway performance with aromatic amino acid prototrophy by destabilizing Aro1 through C-terminal degron tagging. Coupling of a composite MA production pathway to degron-tagged Aro1 in an aro3Δ aro4Δ mutant background led to the accumulation of 5.6 g/liter protocatechuic acid (PCA). However, metabolites downstream of PCA were not detected, despite the inclusion of genes mediating their biosynthesis. Because CEN.PK family strains of S. cerevisiae lack the activity of Pad1, a key enzyme supporting PCA decarboxylase activity, chromosomal expression of intact PAD1 alleviated this bottleneck, resulting in nearly stoichiometric conversion (95%) of PCA to downstream products. In a fed-batch bioreactor, the resulting strain produced 1.2 g/liter MA under prototrophic conditions and 5.1 g/liter MA when supplemented with amino acids, corresponding to a yield of 58 mg/g sugar.IMPORTANCE Previous efforts to engineer a heterologous MA pathway in Saccharomyces cerevisiae have been hindered by a bottleneck at the PCA decarboxylation step and the creation of aromatic amino acid auxotrophy through deleterious manipulation of the pentafunctional Aro1 protein. In light of these studies, this work was undertaken with the central objective of preserving amino acid prototrophy, which we achieved by employing an Aro1 degradation strategy. Moreover, resolution of the key PCA decarboxylase bottleneck, as detailed herein, advances our understanding of yeast MA biosynthesis and will guide future strain engineering efforts. These strategies resulted in the highest titer reported to date for muconic acid produced in yeast. Overall, our study showcases the effectiveness of careful tuning of yeast Aro1 activity and the importance of host-pathway dynamics.


Asunto(s)
Reactores Biológicos/microbiología , Carboxiliasas/metabolismo , Ingeniería Metabólica/métodos , Saccharomyces cerevisiae/metabolismo , Ácido Shikímico/metabolismo , Ácido Sórbico/análogos & derivados , Adipatos/metabolismo , Carboxiliasas/genética , Ácidos Ftálicos/metabolismo , Proteolisis , Saccharomyces cerevisiae/genética , Ácido Sórbico/metabolismo
2.
J Biol Chem ; 287(51): 42972-83, 2012 Dec 14.
Artículo en Inglés | MEDLINE | ID: mdl-23118227

RESUMEN

Benzylisoquinoline alkaloids are a diverse class of plant specialized metabolites that includes the analgesic morphine, the antimicrobials sanguinarine and berberine, and the vasodilator papaverine. The two-electron oxidation of dihydrosanguinarine catalyzed by dihydrobenzophenanthridine oxidase (DBOX) is the final step in sanguinarine biosynthesis. The formation of the fully conjugated ring system in sanguinarine is similar to the four-electron oxidations of (S)-canadine to berberine and (S)-tetrahydropapaverine to papaverine. We report the isolation and functional characterization of an opium poppy (Papaver somniferum) cDNA encoding DBOX, a flavoprotein oxidase with homology to (S)-tetrahydroprotoberberine oxidase and the berberine bridge enzyme. A query of translated opium poppy stem transcriptome databases using berberine bridge enzyme yielded several candidate genes, including an (S)-tetrahydroprotoberberine oxidase-like sequence selected for heterologous expression in Pichia pastoris. The recombinant enzyme preferentially catalyzed the oxidation of dihydrosanguinarine to sanguinarine but also converted (RS)-tetrahydropapaverine to papaverine and several protoberberine alkaloids to oxidized forms, including (RS)-canadine to berberine. The K(m) values of 201 and 146 µm for dihydrosanguinarine and the protoberberine alkaloid (S)-scoulerine, respectively, suggested high concentrations of these substrates in the plant. Virus-induced gene silencing to reduce DBOX transcript levels resulted in a corresponding reduction in sanguinarine, dihydrosanguinarine, and papaverine accumulation in opium poppy roots in support of DBOX as a multifunctional oxidative enzyme in BIA metabolism.


Asunto(s)
Benzofenantridinas/biosíntesis , Biocatálisis , Flavoproteínas/metabolismo , Opio/metabolismo , Oxidorreductasas/metabolismo , Papaver/enzimología , Papaverina/biosíntesis , Benzofenantridinas/química , Pruebas de Enzimas , Regulación de la Expresión Génica de las Plantas , Silenciador del Gen , Genes de Plantas/genética , Estudios de Asociación Genética , Isoquinolinas/química , Oxidorreductasas/genética , Papaver/genética , Papaverina/química , Filogenia , Virus de Plantas/metabolismo , ARN Mensajero/genética , ARN Mensajero/metabolismo , Especificidad por Sustrato
3.
Biochim Biophys Acta ; 1760(7): 1115-24, 2006 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-16730127

RESUMEN

Flavonoid compounds are ubiquitous in nature. They constitute an important part of the human diet and act as active principles of many medicinal plants. Their O-methylation increases their lipophilicity and hence, their compartmentation and functional diversity. We have isolated and characterized a full-length flavonoid O-methyltransferase cDNA (TaOMT2) from a wheat leaf cDNA library. The recombinant TaOMT2 protein was purified to near homogeneity and tested for its substrate preference against a number of phenolic compounds. Enzyme assays and kinetic analyses indicate that TaOMT2 exhibits a pronounced preference for the flavone, tricetin and gives rise to three methylated enzyme reaction products that were identified by TLC, HPLC and ESI-MS/MS as its mono-, di- and trimethyl ether derivatives. The sequential order of tricetin methylation by TaOMT2 is envisaged to proceed via its 3'-mono--->3',5'-di--->3',4',5'-trimethyl ether derivatives. To our knowledge, this is the first report of a gene product that catalyzes three sequential O-methylations of a flavonoid substrate.


Asunto(s)
Cromonas/química , Metiltransferasas/química , Proteínas de Plantas/fisiología , Triticum/metabolismo , ADN Complementario/metabolismo , Escherichia coli/metabolismo , Biblioteca de Genes , Metilación , Datos de Secuencia Molecular , Fenol/química , Filogenia , Hojas de la Planta , Proteínas Recombinantes/química , Especificidad por Sustrato
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