On the Dynamics of the Adenylate Energy System: Homeorhesis vs Homeostasis


Autoria(s): Martínez de la Fuente, Ildefonso; Cortés Díaz, Jesús María; Valero, Edelmira; Desroches, Mathieu; Rodrigues, Serafim; Malaina Celada, Iker; Martínez Fernández, Luis
Data(s)

22/10/2015

22/10/2015

10/10/2014

Resumo

Biochemical energy is the fundamental element that maintains both the adequate turnover of the biomolecular structures and the functional metabolic viability of unicellular organisms. The levels of ATP, ADP and AMP reflect roughly the energetic status of the cell, and a precise ratio relating them was proposed by Atkinson as the adenylate energy charge (AEC). Under growth-phase conditions, cells maintain the AEC within narrow physiological values, despite extremely large fluctuations in the adenine nucleotides concentration. Intensive experimental studies have shown that these AEC values are preserved in a wide variety of organisms, both eukaryotes and prokaryotes. Here, to understand some of the functional elements involved in the cellular energy status, we present a computational model conformed by some key essential parts of the adenylate energy system. Specifically, we have considered (I) the main synthesis process of ATP from ADP, (II) the main catalyzed phosphotransfer reaction for interconversion of ATP, ADP and AMP, (III) the enzymatic hydrolysis of ATP yielding ADP, and (IV) the enzymatic hydrolysis of ATP providing AMP. This leads to a dynamic metabolic model (with the form of a delayed differential system) in which the enzymatic rate equations and all the physiological kinetic parameters have been explicitly considered and experimentally tested in vitro. Our central hypothesis is that cells are characterized by changing energy dynamics (homeorhesis). The results show that the AEC presents stable transitions between steady states and periodic oscillations and, in agreement with experimental data these oscillations range within the narrow AEC window. Furthermore, the model shows sustained oscillations in the Gibbs free energy and in the total nucleotide pool. The present study provides a step forward towards the understanding of the fundamental principles and quantitative laws governing the adenylate energy system, which is a fundamental element for unveiling the dynamics of cellular life.

Identificador

PLOS ONE 9 (10) : (2014) // Article ID e108676

1932-6203

http://hdl.handle.net/10810/15963

10.1371/journal.pone.0108676

Idioma(s)

eng

Publicador

Public Library Science

Relação

http://journals.plos.org/plosone/article?id=10.1371/journal.pone.0108676#abstract0

Direitos

2014 De la Fuente et al. This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.

info:eu-repo/semantics/openAccess

Palavras-Chave #yeast sacchcromyces-cerevisiae #adenine-nucleotide concentrations #intracellular ATP concentration #cellular metabolic structure #long-range correlations #pancreatic beta-cell #tobacco BY-2 cells #escherichia-coli #biochemical oscillations #physarum polycephalum
Tipo

info:eu-repo/semantics/article