The temperature dependence of biological processes has been studied at the levels of individual biochemical reactions and organism physiology (e.g. basal metabolic rates) but has not been examined at the metabolic network level. Here, we used a systems biology approach to characterize the temperature dependence of the human red blood cell (RBC) metabolic network between 4 and 37 °C through absolutely quantified exo- and endometabolomics data. We used an Arrhenius-type model (Q10) to describe how the rate of a biochemical process changes with every 10 °C change in temperature. Multivariate statistical analysis of the metabolomics data revealed that the same metabolic network-level trends previously reported for RBCs at 4 °C were conserved bu...
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A transition in hemoglobin behavior at close to body temperature has been discovered recently by mic...
AbstractThe development of high-throughput technologies and the resulting large-scale data sets have...
To access publisher's full text version of this article click on the hyperlink belowThe temperature ...
The human red blood cell (RBC) is a logical starting point for the development and application of sy...
AbstractThe human red blood cell (hRBC) metabolic network is relatively simple compared with other w...
Efst á síðunni er hægt að nálgast greinina í heild sinni með því að smella á hlekkinn ...
The increasing availability of metabolomics data necessitates novel methods for deeper data analysis...
Background: Integrative analysis between dynamical modeling of metabolic networks and data obtained ...
Integrative analysis between dynamical modeling of metabolic networks and data obtained from high th...
Integrative analysis between dynamical modeling of metabolic networks and data obtained from high th...
The experimental investigation of the red cell over last three decades has accumulated an extensive ...
The rate of change in resting metabolic rate (RMR) as a result of a temperature increase\ua0of 10\ua...
Deep-coverage metabolomic profiling has revealed a well-defined development of metabolic decay in hu...
Deep-coverage metabolomic profiling has revealed a well-defined development of metabolic decay in hu...
To access publisher's full text version of this article, please click on the hyperlink in Additional...
A transition in hemoglobin behavior at close to body temperature has been discovered recently by mic...
AbstractThe development of high-throughput technologies and the resulting large-scale data sets have...
To access publisher's full text version of this article click on the hyperlink belowThe temperature ...
The human red blood cell (RBC) is a logical starting point for the development and application of sy...
AbstractThe human red blood cell (hRBC) metabolic network is relatively simple compared with other w...
Efst á síðunni er hægt að nálgast greinina í heild sinni með því að smella á hlekkinn ...
The increasing availability of metabolomics data necessitates novel methods for deeper data analysis...
Background: Integrative analysis between dynamical modeling of metabolic networks and data obtained ...
Integrative analysis between dynamical modeling of metabolic networks and data obtained from high th...
Integrative analysis between dynamical modeling of metabolic networks and data obtained from high th...
The experimental investigation of the red cell over last three decades has accumulated an extensive ...
The rate of change in resting metabolic rate (RMR) as a result of a temperature increase\ua0of 10\ua...
Deep-coverage metabolomic profiling has revealed a well-defined development of metabolic decay in hu...
Deep-coverage metabolomic profiling has revealed a well-defined development of metabolic decay in hu...
To access publisher's full text version of this article, please click on the hyperlink in Additional...
A transition in hemoglobin behavior at close to body temperature has been discovered recently by mic...
AbstractThe development of high-throughput technologies and the resulting large-scale data sets have...