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Impact of kinetic isotope effects in isotopic studies of metabolic systems

Millard, Pierre; Portais, Jean-Charles; Mendes, Pedro

B M C Systems Biology. 2015;9.

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Abstract

Background Isotope labeling experiments (ILEs) are increasingly used to investigate the functioning of metabolic systems. Some enzymes are subject to kinetic isotope effects (KIEs) which modulate reaction rates depending on the isotopic composition of their substrate(s). KIEs may therefore affect both the propagation of isotopes through metabolic networks and their operation, and ultimately jeopardize the biological value of ILEs. However, the actual impact of KIEs on metabolism has never been investigated at the system level. Results First, we developed a framework which integrates KIEs into kinetic and isotopic models of metabolism, thereby accounting for their system-wide effects on metabolite concentrations, metabolic fluxes, and isotopic patterns. Then, we applied this framework to assess the impact of KIEs on the central carbon metabolism of Escherichia coli in the context of 13 C-ILEs, under different situations commonly encountered in laboratories. Results showed that the impact of KIEs strongly depends on the label input and on the variable considered but is significantly lower than expected intuitively from measurements on isolated enzymes. The global robustness of both the metabolic operation and isotopic patterns largely emerge from intrinsic properties of metabolic networks, such as the distribution of control across the network and bidirectional isotope exchange. Conclusions These results demonstrate the necessity of investigating the impact of KIEs at the level of the entire system, contradict previous hypotheses that KIEs would have a strong effect on isotopic distributions and on flux determination, and strengthen the biological value of 13 C-ILEs. The proposed modeling framework is generic and can be used to investigate the impact of all the isotopic tracers ( 2 H, 13 C, 15 N, 18 O, etc.) on different isotopic datasets and metabolic systems. By allowing the integration of isotopic and metabolomics data collected under stationary and/or non-stationary conditions, it may also assist interpretations of ILEs and facilitate the development of more accurate kinetic models with improved explicative and predictive capabilities.

Bibliographic metadata

Type of resource:
Content type:
Publication status:
Published
Publication type:
Publication form:
Author list:
Published date:
Accepted date:
2015-09-19
Submitted date:
2015-04-10
Language:
eng
Journal title:
Abbreviated journal title:
ISSN:
Publisher:
Volume:
9
Article number:
64
Digital Object Identifier:
10.1186/s12918-015-0213-8
Funding awarded to University:
  • European Commission - GOV30
  • BBSRC - RESBBSRC
  • BBSRC - RESBBSRC
Funder(s) acknowledged in this article?:
Yes
Research data access statement included:
Not applicable
Attached files Open Access licence:
Creative Commons Attribution (CC BY)
Attached files embargo period:
Immediate release
Attached files release date:
1st October, 2015
Access state:
Active

Institutional metadata

University researcher(s):

Record metadata

Manchester eScholar ID:
uk-ac-man-scw:274868
Created by:
Pedrosa Mendes, Pedro
Created:
1st October, 2015, 18:27:10
Last modified by:
Pedrosa Mendes, Pedro
Last modified:
16th December, 2015, 08:54:32

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