Creatine Kinase Equilibration and ΔGATP over an Extended Range of Physiological Conditions: Implications for Cellular Energetics, Signaling, and Muscle Performance

Author:

Wiseman Robert Woodbury1ORCID,Brown Caleb Micah2ORCID,Beck Thomas Wesley3ORCID,Brault Jeffrey John4ORCID,Reinoso Tyler Robert5ORCID,Shi Yun5ORCID,Chase Prescott Bryant5ORCID

Affiliation:

1. Departments of Physiology and Radiology, Michigan State University, East Lansing, MI 48824, USA

2. Department of Biochemistry, University of Washington, Seattle, WA 98195, USA

3. Department of Radiology, University of Washington, Seattle, WA 98195, USA

4. Department of Physiology, Michigan State University, East Lansing, MI 48824, USA

5. Department of Biological Science, Florida State University, Tallahassee, FL 32306, USA

Abstract

In this report, we establish a straightforward method for estimating the equilibrium constant for the creatine kinase reaction (CK Keq″) over wide but physiologically and experimentally relevant ranges of pH, Mg2+ and temperature. Our empirical formula for CK Keq″ is based on experimental measurements. It can be used to estimate [ADP] when [ADP] is below the resolution of experimental measurements, a typical situation because [ADP] is on the order of micromolar concentrations in living cells and may be much lower in many in vitro experiments. Accurate prediction of [ADP] is essential for in vivo studies of cellular energetics and metabolism and for in vitro studies of ATP-dependent enzyme function under near-physiological conditions. With [ADP], we were able to obtain improved estimates of ΔGATP, necessitating the reinvestigation of previously reported ADP- and ΔGATP-dependent processes. Application to actomyosin force generation in muscle provides support for the hypothesis that, when [Pi] varies and pH is not altered, the maximum Ca2+-activated isometric force depends on ΔGATP in both living and permeabilized muscle preparations. Further analysis of the pH studies introduces a novel hypothesis around the role of submicromolar ADP in force generation.

Funder

University of Washington Royalty Research Fund

Michigan State University Intramural Research Program Research Fund

National Space Biomedical Research Institute

U.S. National Institutes of Health

Publisher

MDPI AG

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis

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