Literature DB >> 9176148

In vivo brain phosphocreatine and ATP regulation in mice fed a creatine analog.

D Holtzman1, R Meyers, E O'Gorman, I Khait, T Wallimann, E Allred, F Jensen.   

Abstract

Mitochondrial and cytosolic creatine kinase (CK) isozymes are active in cells with high and variable ATP metabolic rates. beta-Guanidinopropionic acid (GPA), a competitive inhibitor of creatine transport, was used to study the hypothesis that the creatine-CK-phosphocreatine (PCr) system is important in regulating brain ATP metabolism. The CK-catalyzed reaction rate and reactant concentrations were measured in vivo with 31P nuclear magnetic resonance spectroscopy during energy deficit (hypoxia) or high-energy turnover (seizures) states in urethane-anesthetized mice fed GPA, creatine, or standard chow (controls). Brain phosphagen (i.e., cellular energy reserves) or PCr plus phosphorylated GPA (GPAP) concentrations were equal. The phosphagen-to-NTP ratio was lower than in controls. In vivo CK reaction rate decreased fourfold, whereas ex vivo CK activity that was biochemically measured was doubled. During seizures, CK-catalyzed fluxes increased only in GPA-fed mice. Phosphagen increased in GPA-fed mice, whereas PCr decreased in controls. Survival was higher and brain phosphagen and ATP losses were less for hypoxic GPA-fed mice than for controls. In contrast to mice fed GPA, hypoxic survival and CK reactant concentrations during hypoxia and seizures were the same in creatine-fed mice and controls. Thus GPA, GPAP, or adaptive changes in ATP metabolism stabilize brain ATP and enhance survival during hypoxia in mice.

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Year:  1997        PMID: 9176148     DOI: 10.1152/ajpcell.1997.272.5.C1567

Source DB:  PubMed          Journal:  Am J Physiol        ISSN: 0002-9513


  8 in total

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2.  Restricted neuronal expression of ubiquitous mitochondrial creatine kinase: changing patterns in development and with increased activity.

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Review 3.  A guide to the metabolic pathways and function of metabolites observed in human brain 1H magnetic resonance spectra.

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Authors:  M Valtonen; K Näntö-Salonen; S Jääskeläinen; K Heinänen; A Alanen; O J Heinonen; N Lundbom; M Erkintalo; O Simell
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5.  Effects of creatine and β-guanidinopropionic acid and alterations in creatine transporter and creatine kinases expression in acute seizure and chronic epilepsy models.

Authors:  Dae Won Kim; Seong-Il Yeo; Hea Jin Ryu; Ji-Eun Kim; Hong-Ki Song; Oh-Shin Kwon; Soo Young Choi; Tae-Cheon Kang
Journal:  BMC Neurosci       Date:  2010-10-28       Impact factor: 3.288

6.  Creatine supplementation in health and disease. Effects of chronic creatine ingestion in vivo: down-regulation of the expression of creatine transporter isoforms in skeletal muscle.

Authors:  M L Guerrero-Ontiveros; T Wallimann
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Review 7.  The effect of the creatine analogue beta-guanidinopropionic acid on energy metabolism: a systematic review.

Authors:  Inge Oudman; Joseph F Clark; Lizzy M Brewster
Journal:  PLoS One       Date:  2013-01-09       Impact factor: 3.240

8.  Differences in the hippocampal frequency of creatine inclusions between the acute and latent phases of pilocarpine model defined using synchrotron radiation-based FTIR microspectroscopy.

Authors:  J Kutorasinska; Z Setkowicz; K Janeczko; C Sandt; P Dumas; J Chwiej
Journal:  Anal Bioanal Chem       Date:  2013-07-23       Impact factor: 4.142

  8 in total

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