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1.
J Biol Chem ; 300(2): 105598, 2024 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-38159859

RESUMO

Cofactor imbalance obstructs the productivities of metabolically engineered cells. Herein, we employed a minimally perturbing system, xylose reductase and lactose (XR/lactose), to increase the levels of a pool of sugar phosphates which are connected to the biosynthesis of NAD(P)H, FAD, FMN, and ATP in Escherichia coli. The XR/lactose system could increase the amounts of the precursors of these cofactors and was tested with three different metabolically engineered cell systems (fatty alcohol biosynthesis, bioluminescence light generation, and alkane biosynthesis) with different cofactor demands. Productivities of these cells were increased 2-4-fold by the XR/lactose system. Untargeted metabolomic analysis revealed different metabolite patterns among these cells, demonstrating that only metabolites involved in relevant cofactor biosynthesis were altered. The results were also confirmed by transcriptomic analysis. Another sugar reducing system (glucose dehydrogenase) could also be used to increase fatty alcohol production but resulted in less yield enhancement than XR. This work demonstrates that the approach of increasing cellular sugar phosphates can be a generic tool to increase in vivo cofactor generation upon cellular demand for synthetic biology.


Assuntos
Engenharia Metabólica , Redes e Vias Metabólicas , Aldeído Redutase/metabolismo , Escherichia coli/genética , Escherichia coli/metabolismo , Álcoois Graxos/metabolismo , Fermentação , Lactose/metabolismo , Engenharia Metabólica/métodos , Fosfatos Açúcares/metabolismo , Xilose/metabolismo
2.
FEBS J ; 288(10): 3246-3260, 2021 05.
Artigo em Inglês | MEDLINE | ID: mdl-33289305

RESUMO

Bacterial luciferase catalyzes a bioluminescent reaction by oxidizing long-chain aldehydes to acids using reduced FMN and oxygen as co-substrates. Although a flavin C4a-peroxide anion is postulated to be the intermediate reacting with aldehyde prior to light liberation, no clear identification of the protonation status of this intermediate has been reported. Here, transient kinetics, pH variation, and site-directed mutagenesis were employed to probe the protonation state of the flavin C4a-hydroperoxide in bacterial luciferase. The first observed intermediate, with a λmax of 385 nm, transformed to an intermediate with a λmax of 375 nm. Spectra of the first observed intermediate were pH-dependent, with a λmax of 385 nm at pH < 8.5 and 375 at pH > 9, correlating with a pKa of 7.7-8.1. These data are consistent with the first observed flavin C4a intermediate at pH < 8.5 being the protonated flavin C4a-hydroperoxide, which loses a proton to become an active flavin C4a-peroxide. Stopped-flow studies of His44Ala, His44Asp, and His44Asn variants showed only a single intermediate with a λmax of 385 nm at all pH values, and none of these variants generate light. These data indicate that His44 variants only form a flavin C4a-hydroperoxide, but not an active flavin C4a-peroxide, indicating an essential role for His44 in deprotonating the flavin C4a-hydroperoxide and initiating chemical catalysis. We also investigated the function of the adjacent His45; stopped-flow data and molecular dynamics simulations identify the role of this residue in binding reduced FMN.


Assuntos
Mononucleotídeo de Flavina/química , Flavina-Adenina Dinucleotídeo/química , Peróxido de Hidrogênio/química , Luciferases Bacterianas/química , Oxigênio/química , Vibrio/química , Sítios de Ligação , Biocatálise , Cristalografia por Raios X , Escherichia coli/genética , Escherichia coli/metabolismo , Mononucleotídeo de Flavina/metabolismo , Flavina-Adenina Dinucleotídeo/metabolismo , Expressão Gênica , Peróxido de Hidrogênio/metabolismo , Concentração de Íons de Hidrogênio , Cinética , Luciferases Bacterianas/genética , Luciferases Bacterianas/metabolismo , Modelos Moleculares , Mutagênese Sítio-Dirigida , Oxirredução , Oxigênio/metabolismo , Ligação Proteica , Conformação Proteica em alfa-Hélice , Conformação Proteica em Folha beta , Domínios e Motivos de Interação entre Proteínas , Prótons , Proteínas Recombinantes/química , Proteínas Recombinantes/genética , Proteínas Recombinantes/metabolismo , Especificidade por Substrato , Termodinâmica , Vibrio/enzimologia
3.
J Biotechnol ; 309: 1-19, 2020 Feb 10.
Artigo em Inglês | MEDLINE | ID: mdl-31866428

RESUMO

Hydrocarbons such as alkanes and alkenes are extensively used as organic compounds for combustion reactions and as building block components for the synthesis of numerous materials. Various synthetic enzymatic cascades and engineered metabolic pathways can be used to produce alkanes and alkenes from bio-based materials. An understanding of the native reactions and pathways used by various organisms to synthesize these compounds together with novel approaches in biocatalysis and synthetic biology have been instrumental in the development of methods to produce alkanes and alkenes with reasonable yield. This article discusses the present state of knowledge regarding hydrocarbon biosynthetic pathways and discusses current mechanistic understanding of relevant enzymatic reactions in cyanobacteria, aerobic bacteria, insects, algae, and plants. Recent advancements in metabolic engineering and process scale up for production of hydrocarbons from fatty acids are also discussed. This technology is important for sustainability, as it provides a clean and eco-friendly method for the future production of fuels and industrial materials. Further development towards whole cell biocatalysts that are able to provide good yield with a low production cost may allow countries without big oil reserves to be capable of producing precursors for the materials industries in the future.


Assuntos
Hidrocarbonetos/metabolismo , Engenharia Metabólica/métodos , Biologia Sintética/métodos , Alcanos/metabolismo , Animais , Bactérias/enzimologia , Bactérias/metabolismo , Biocatálise , Biocombustíveis/microbiologia , Vias Biossintéticas , Cianobactérias/enzimologia , Cianobactérias/metabolismo , Enzimas/metabolismo , Ácidos Graxos/metabolismo , Insetos/metabolismo , Redes e Vias Metabólicas , Compostos Orgânicos/metabolismo , Plantas
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