Literature DB >> 6331847

Calculation of free-Mg2+ concentration in adenosine 5'-triphosphate containing solutions in vitro and in vivo.

L Garfinkel, D Garfinkel.   

Abstract

We have attempted to resolve the differences between the levels of free Mg2+ in muscle calculated by Wu et al. [Wu, S. T., Pieper, G. M., Salhany, J. M., & Eliot, R. S. (1981) Biochemistry 20, 7399-7403] (2.5 mM in guinea pig heart) and by Gupta and Moore [Gupta, R. K., & Moore, R. D. (1980) J. Biol. Chem. 255, 3987-3993] (0.6 mM in frog skeletal muscle) on the basis of substantially identical measurements by 31P NMR of the phosphate peaks in the spectrum of MgATP2-. The differences depend on the methods of calculation, including which reactions in which multiple equilibria are being considered. Biochemists and physical chemists customarily use different working definitions of the stability constant for MgATP2- in particular. Wu et al. used in their calculations, without reconciliation, methods involving three different operational definitions of the chelation equilibria involved. An algorithm for calculating Mg2+ and total ATP, which can be carried out with a hand calculator, is described here. With it, we calculated Mg2+ levels that agree with those determined by Gupta et al. [Gupta, R. K., Benkovic, J. L., & Rose, Z. B. (1978) J. Biol. Chem. 253, 6165-6171] with their in vitro systems. We therefore agree with the finding of Gupta and Moore that the Mg2+ level in skeletal and cardiac muscle is 0.6 mM.

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Year:  1984        PMID: 6331847     DOI: 10.1021/bi00310a025

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  14 in total

1.  Interrelations of ATP synthesis and proton handling in ischaemically exercising human forearm muscle studied by 31P magnetic resonance spectroscopy.

Authors:  G J Kemp; M Roussel; D Bendahan; Y Le Fur; P J Cozzone
Journal:  J Physiol       Date:  2001-09-15       Impact factor: 5.182

Review 2.  Magnesium Handling in the Kidney.

Authors:  Joshua N Curry; Alan S L Yu
Journal:  Adv Chronic Kidney Dis       Date:  2018-05       Impact factor: 3.620

3.  Theoretical modelling of some spatial and temporal aspects of the mitochondrion/creatine kinase/myofibril system in muscle.

Authors:  G J Kemp; D N Manners; J F Clark; M E Bastin; G K Radda
Journal:  Mol Cell Biochem       Date:  1998-07       Impact factor: 3.396

4.  In situ NMR measurement of macromolecule-bound metal ion concentrations.

Authors:  Natalia Kozlyuk; Suvrajit Sengupta; Andrej Lupták; Rachel W Martin
Journal:  J Biomol NMR       Date:  2016-04-23       Impact factor: 2.835

5.  An artificial-intelligence technique for qualitatively deriving enzyme kinetic mechanisms from initial-velocity measurements and its application to hexokinase.

Authors:  L Garfinkel; D M Cohen; V W Soo; D Garfinkel; C A Kulikowski
Journal:  Biochem J       Date:  1989-11-15       Impact factor: 3.857

Review 6.  Recombinational repair of DNA damage in Escherichia coli and bacteriophage lambda.

Authors:  A Kuzminov
Journal:  Microbiol Mol Biol Rev       Date:  1999-12       Impact factor: 11.056

7.  Fluorescence signals from the Mg2+/Ca2+ indicator furaptra in frog skeletal muscle fibers.

Authors:  M Konishi; N Suda; S Kurihara
Journal:  Biophys J       Date:  1993-01       Impact factor: 4.033

8.  Comparison of long-chain fatty acyl-CoA synthetases from rabbit heart and liver: substrate preferences and effects of Mg2+.

Authors:  M T Weis; A Bercute
Journal:  Biochem J       Date:  1997-03-01       Impact factor: 3.857

9.  Monitoring cytosolic free magnesium in cultured chicken heart cells by use of the fluorescent indicator Furaptra.

Authors:  E Murphy; C C Freudenrich; L A Levy; R E London; M Lieberman
Journal:  Proc Natl Acad Sci U S A       Date:  1989-04       Impact factor: 11.205

10.  Diffusible sodium, potassium, magnesium, calcium and phosphorus in frog skeletal muscle.

Authors:  D Maughan; C Recchia
Journal:  J Physiol       Date:  1985-11       Impact factor: 5.182

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