Kinetic data for modeling the dynamics of the enzymes involved in animal fatty acid synthesis

Author:

Foko Kuate Chilperic Armel123ORCID,Ebenhöh Oliver13,Bakker Barbara M.4ORCID,Raguin Adélaïde23

Affiliation:

1. 1Institute for Quantitative and Theoretical Biology, Biology department, Heinrich Heine University, Düsseldorf, Germany

2. 2Institute for Computational Cell Biology, Computer Science department, Heinrich Heine University, Düsseldorf, Germany

3. 3Cluster of Excellence on Plant Sciences (CEPLAS), Heinrich Heine University, Düsseldorf, Germany

4. 4Institute for Systems Medicine of Metabolism and Signaling, Pediatrics department, University of Groningen, University Medical Center Groningen, Groningen, The Netherlands

Abstract

Abstract The synthesis and modification of fatty acids (FAs) from carbohydrates are paramount for the production of lipids. Simultaneously, lipids are pivotal energy storage in human health. They are associated with various metabolic diseases and their production pathways are for instance candidate therapeutic targets for cancer treatments. The fatty acid de novo synthesis (FADNS) occurs in the cytoplasm, while the microsomal modification of fatty acids (MMFA) happens at the surface of the endoplasmic reticulum (ER). The kinetics and regulation of these complex processes involve several enzymes. In mammals, the main ones are the acetyl-CoA carboxylase (ACC), the fatty acid synthase (FAS), the very-long-chain fatty acid elongases (ELOVL 1–7), and the desaturases (delta family). Their mechanisms and expression in different organs have been studied for more than 50 years. However, modeling them in the context of complex metabolic pathways is still a challenge. Distinct modeling approaches can be implemented. Here, we focus on dynamic modeling using ordinary differential equations (ODEs) based on kinetic rate laws. This requires a combination of knowledge on the enzymatic mechanisms and their kinetics, as well as the interactions between the metabolites, and between enzymes and metabolites. In the present review, after recalling the modeling framework, we support the development of such a mathematical approach by reviewing the available kinetic information of the enzymes involved.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry,Biophysics

Reference149 articles.

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