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Bridging the Gap between Fluxomics and Industrial Biotechnology

Metabolic flux analysis is a vital tool used to determine the ultimate output of cellular metabolism and thus detect biotechnologically relevant bottlenecks in productivity. (13)C-based metabolic flux analysis ((13)C-MFA) and flux balance analysis (FBA) have many potential applications in biotechnol...

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Detalles Bibliográficos
Autores principales: Feng, Xueyang, Page, Lawrence, Rubens, Jacob, Chircus, Lauren, Colletti, Peter, Pakrasi, Himadri B., Tang, Yinjie J.
Formato: Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3022177/
https://www.ncbi.nlm.nih.gov/pubmed/21274256
http://dx.doi.org/10.1155/2010/460717
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author Feng, Xueyang
Page, Lawrence
Rubens, Jacob
Chircus, Lauren
Colletti, Peter
Pakrasi, Himadri B.
Tang, Yinjie J.
author_facet Feng, Xueyang
Page, Lawrence
Rubens, Jacob
Chircus, Lauren
Colletti, Peter
Pakrasi, Himadri B.
Tang, Yinjie J.
author_sort Feng, Xueyang
collection PubMed
description Metabolic flux analysis is a vital tool used to determine the ultimate output of cellular metabolism and thus detect biotechnologically relevant bottlenecks in productivity. (13)C-based metabolic flux analysis ((13)C-MFA) and flux balance analysis (FBA) have many potential applications in biotechnology. However, noteworthy hurdles in fluxomics study are still present. First, several technical difficulties in both (13)C-MFA and FBA severely limit the scope of fluxomics findings and the applicability of obtained metabolic information. Second, the complexity of metabolic regulation poses a great challenge for precise prediction and analysis of metabolic networks, as there are gaps between fluxomics results and other omics studies. Third, despite identified metabolic bottlenecks or sources of host stress from product synthesis, it remains difficult to overcome inherent metabolic robustness or to efficiently import and express nonnative pathways. Fourth, product yields often decrease as the number of enzymatic steps increases. Such decrease in yield may not be caused by rate-limiting enzymes, but rather is accumulated through each enzymatic reaction. Fifth, a high-throughput fluxomics tool hasnot been developed for characterizing nonmodel microorganisms and maximizing their application in industrial biotechnology. Refining fluxomics tools and understanding these obstacles will improve our ability to engineer highlyefficient metabolic pathways in microbial hosts.
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spelling pubmed-30221772011-01-27 Bridging the Gap between Fluxomics and Industrial Biotechnology Feng, Xueyang Page, Lawrence Rubens, Jacob Chircus, Lauren Colletti, Peter Pakrasi, Himadri B. Tang, Yinjie J. J Biomed Biotechnol Review Article Metabolic flux analysis is a vital tool used to determine the ultimate output of cellular metabolism and thus detect biotechnologically relevant bottlenecks in productivity. (13)C-based metabolic flux analysis ((13)C-MFA) and flux balance analysis (FBA) have many potential applications in biotechnology. However, noteworthy hurdles in fluxomics study are still present. First, several technical difficulties in both (13)C-MFA and FBA severely limit the scope of fluxomics findings and the applicability of obtained metabolic information. Second, the complexity of metabolic regulation poses a great challenge for precise prediction and analysis of metabolic networks, as there are gaps between fluxomics results and other omics studies. Third, despite identified metabolic bottlenecks or sources of host stress from product synthesis, it remains difficult to overcome inherent metabolic robustness or to efficiently import and express nonnative pathways. Fourth, product yields often decrease as the number of enzymatic steps increases. Such decrease in yield may not be caused by rate-limiting enzymes, but rather is accumulated through each enzymatic reaction. Fifth, a high-throughput fluxomics tool hasnot been developed for characterizing nonmodel microorganisms and maximizing their application in industrial biotechnology. Refining fluxomics tools and understanding these obstacles will improve our ability to engineer highlyefficient metabolic pathways in microbial hosts. Hindawi Publishing Corporation 2010 2011-01-02 /pmc/articles/PMC3022177/ /pubmed/21274256 http://dx.doi.org/10.1155/2010/460717 Text en Copyright © 2010 Xueyang Feng et al. This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Review Article
Feng, Xueyang
Page, Lawrence
Rubens, Jacob
Chircus, Lauren
Colletti, Peter
Pakrasi, Himadri B.
Tang, Yinjie J.
Bridging the Gap between Fluxomics and Industrial Biotechnology
title Bridging the Gap between Fluxomics and Industrial Biotechnology
title_full Bridging the Gap between Fluxomics and Industrial Biotechnology
title_fullStr Bridging the Gap between Fluxomics and Industrial Biotechnology
title_full_unstemmed Bridging the Gap between Fluxomics and Industrial Biotechnology
title_short Bridging the Gap between Fluxomics and Industrial Biotechnology
title_sort bridging the gap between fluxomics and industrial biotechnology
topic Review Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3022177/
https://www.ncbi.nlm.nih.gov/pubmed/21274256
http://dx.doi.org/10.1155/2010/460717
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