Temporal variations of adenosine metabolism in human blood

被引:18
作者
deSanchez, VC
HernandezMunoz, R
Suarez, J
Vidrio, S
Yanez, L
AguilarRoblero, R
Oksenberg, A
VegaGonzalez, A
Villalobos, L
Rosenthal, L
FernandezCancino, F
DruckerColin, R
DiazMunoz, M
机构
[1] NATL AUTONOMOUS UNIV MEXICO,DEPT BIOENERGET,FAC MED,MEXICO CITY 04510,DF,MEXICO
[2] NATL AUTONOMOUS UNIV MEXICO,DEPT NEUROCIENCIAS,FAC MED,MEXICO CITY 04510,DF,MEXICO
[3] NATL AUTONOMOUS UNIV MEXICO,DEPT FISIOL,FAC MED,MEXICO CITY 04510,DF,MEXICO
关键词
adenosine; adenine nucleotides; purines; biological rhythm; human blood;
D O I
10.3109/07420529609012650
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Eight diurnally active (06:00-23:00 h) subjects were adapted for 2 days to the room conditions where the experiments were performed. Blood sampling for adenosine metabolites and metabolizing enzymes was done hourly during the activity span and every 30 min during sleep. The results showed that adenosine and its catabolites (inosine, hypoxanthine, and uric acid), adenosine synthesizing (S-adenosylhomocysteine hydrolase and 5'-nucleotidase), degrading (adenosine deaminase) and nucleotide-forming (adenosine kinase) enzymes as well as adenine nucleotides (AMP, ADP, and ATP) undergo statistically significant fluctuations (ANOVA) during the 24 h. However, energy charge was invariable. Glucose and lactate chronograms were determined as metabolic indicators. The same data analyzed by the chi-square periodogram and Fourier series indicated ultradian oscillatory periods for all the metabolites and enzymatic activities determined, and 24-h oscillatory components for inosine, hypoxanthine, adenine nucleotides, glucose, and the activities of SAH-hydrolase, 5'-nucleotidase, and adenosine kinase. The single cosinor method showed significant oscillatory components exclusively for lactate. As a whole, these results suggest that adenosine metabolism may play a role as a biological oscillator coordinating and/or modulating the energy homeostasis and physiological status of erythrocytes in vivo and could be an important factor in the distribution of purine rings for the rest of the organism.
引用
收藏
页码:163 / 177
页数:15
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