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Biosynthesis of Orthogonal Molecules Using Ferredoxin and Ferredoxin-NADP(+) Reductase Systems Enables Genetically Encoded PhyB Optogenetics

[Image: see text] Transplanting metabolic reactions from one species into another has many uses as a research tool with applications ranging from optogenetics to crop production. Ferredoxin (Fd), the enzyme that most often supplies electrons to these reactions, is often overlooked when transplanting...

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Autores principales: Kyriakakis, Phillip, Catanho, Marianne, Hoffner, Nicole, Thavarajah, Walter, Hu, Vincent J., Chao, Syh-Shiuan, Hsu, Athena, Pham, Vivian, Naghavian, Ladan, Dozier, Lara E., Patrick, Gentry N., Coleman, Todd P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2018
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5820651/
https://www.ncbi.nlm.nih.gov/pubmed/29301067
http://dx.doi.org/10.1021/acssynbio.7b00413
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author Kyriakakis, Phillip
Catanho, Marianne
Hoffner, Nicole
Thavarajah, Walter
Hu, Vincent J.
Chao, Syh-Shiuan
Hsu, Athena
Pham, Vivian
Naghavian, Ladan
Dozier, Lara E.
Patrick, Gentry N.
Coleman, Todd P.
author_facet Kyriakakis, Phillip
Catanho, Marianne
Hoffner, Nicole
Thavarajah, Walter
Hu, Vincent J.
Chao, Syh-Shiuan
Hsu, Athena
Pham, Vivian
Naghavian, Ladan
Dozier, Lara E.
Patrick, Gentry N.
Coleman, Todd P.
author_sort Kyriakakis, Phillip
collection PubMed
description [Image: see text] Transplanting metabolic reactions from one species into another has many uses as a research tool with applications ranging from optogenetics to crop production. Ferredoxin (Fd), the enzyme that most often supplies electrons to these reactions, is often overlooked when transplanting enzymes from one species to another because most cells already contain endogenous Fd. However, we have shown that the production of chromophores used in Phytochrome B (PhyB) optogenetics is greatly enhanced in mammalian cells by expressing bacterial and plant Fds with ferredoxin-NADP+ reductases (FNR). We delineated the rate limiting factors and found that the main metabolic precursor, heme, was not the primary limiting factor for producing either the cyanobacterial or plant chromophores, phycocyanobilin or phytochromobilin, respectively. In fact, Fd is limiting, followed by Fd+FNR and finally heme. Using these findings, we optimized the PCB production system and combined it with a tissue penetrating red/far-red sensing PhyB optogenetic gene switch in animal cells. We further characterized this system in several mammalian cell lines using red and far-red light. Importantly, we found that the light-switchable gene system remains active for several hours upon illumination, even with a short light pulse, and requires very small amounts of light for maximal activation. Boosting chromophore production by matching metabolic pathways with specific ferredoxin systems will enable the unparalleled use of the many PhyB optogenetic tools and has broader implications for optimizing synthetic metabolic pathways.
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spelling pubmed-58206512018-02-26 Biosynthesis of Orthogonal Molecules Using Ferredoxin and Ferredoxin-NADP(+) Reductase Systems Enables Genetically Encoded PhyB Optogenetics Kyriakakis, Phillip Catanho, Marianne Hoffner, Nicole Thavarajah, Walter Hu, Vincent J. Chao, Syh-Shiuan Hsu, Athena Pham, Vivian Naghavian, Ladan Dozier, Lara E. Patrick, Gentry N. Coleman, Todd P. ACS Synth Biol [Image: see text] Transplanting metabolic reactions from one species into another has many uses as a research tool with applications ranging from optogenetics to crop production. Ferredoxin (Fd), the enzyme that most often supplies electrons to these reactions, is often overlooked when transplanting enzymes from one species to another because most cells already contain endogenous Fd. However, we have shown that the production of chromophores used in Phytochrome B (PhyB) optogenetics is greatly enhanced in mammalian cells by expressing bacterial and plant Fds with ferredoxin-NADP+ reductases (FNR). We delineated the rate limiting factors and found that the main metabolic precursor, heme, was not the primary limiting factor for producing either the cyanobacterial or plant chromophores, phycocyanobilin or phytochromobilin, respectively. In fact, Fd is limiting, followed by Fd+FNR and finally heme. Using these findings, we optimized the PCB production system and combined it with a tissue penetrating red/far-red sensing PhyB optogenetic gene switch in animal cells. We further characterized this system in several mammalian cell lines using red and far-red light. Importantly, we found that the light-switchable gene system remains active for several hours upon illumination, even with a short light pulse, and requires very small amounts of light for maximal activation. Boosting chromophore production by matching metabolic pathways with specific ferredoxin systems will enable the unparalleled use of the many PhyB optogenetic tools and has broader implications for optimizing synthetic metabolic pathways. American Chemical Society 2018-01-04 2018-02-16 /pmc/articles/PMC5820651/ /pubmed/29301067 http://dx.doi.org/10.1021/acssynbio.7b00413 Text en Copyright © 2018 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Kyriakakis, Phillip
Catanho, Marianne
Hoffner, Nicole
Thavarajah, Walter
Hu, Vincent J.
Chao, Syh-Shiuan
Hsu, Athena
Pham, Vivian
Naghavian, Ladan
Dozier, Lara E.
Patrick, Gentry N.
Coleman, Todd P.
Biosynthesis of Orthogonal Molecules Using Ferredoxin and Ferredoxin-NADP(+) Reductase Systems Enables Genetically Encoded PhyB Optogenetics
title Biosynthesis of Orthogonal Molecules Using Ferredoxin and Ferredoxin-NADP(+) Reductase Systems Enables Genetically Encoded PhyB Optogenetics
title_full Biosynthesis of Orthogonal Molecules Using Ferredoxin and Ferredoxin-NADP(+) Reductase Systems Enables Genetically Encoded PhyB Optogenetics
title_fullStr Biosynthesis of Orthogonal Molecules Using Ferredoxin and Ferredoxin-NADP(+) Reductase Systems Enables Genetically Encoded PhyB Optogenetics
title_full_unstemmed Biosynthesis of Orthogonal Molecules Using Ferredoxin and Ferredoxin-NADP(+) Reductase Systems Enables Genetically Encoded PhyB Optogenetics
title_short Biosynthesis of Orthogonal Molecules Using Ferredoxin and Ferredoxin-NADP(+) Reductase Systems Enables Genetically Encoded PhyB Optogenetics
title_sort biosynthesis of orthogonal molecules using ferredoxin and ferredoxin-nadp(+) reductase systems enables genetically encoded phyb optogenetics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5820651/
https://www.ncbi.nlm.nih.gov/pubmed/29301067
http://dx.doi.org/10.1021/acssynbio.7b00413
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