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Metabolic Basis of Creatine in Health and Disease: A Bioinformatics-Assisted Review

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Journal Nutrients
Date 2021 Apr 30
PMID 33918657
Citations 46
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Abstract

Creatine (Cr) is a ubiquitous molecule that is synthesized mainly in the liver, kidneys, and pancreas. Most of the Cr pool is found in tissues with high-energy demands. Cr enters target cells through a specific symporter called Na/Cl-dependent Cr transporter (CRT). Once within cells, creatine kinase (CK) catalyzes the reversible transphosphorylation reaction between [Mg:ATP] and Cr to produce phosphocreatine (PCr) and [Mg:ADP]. We aimed to perform a comprehensive and bioinformatics-assisted review of the most recent research findings regarding Cr metabolism. Specifically, several public databases, repositories, and bioinformatics tools were utilized for this endeavor. Topics of biological complexity ranging from structural biology to cellular dynamics were addressed herein. In this sense, we sought to address certain pre-specified questions including: (i) What happens when creatine is transported into cells? (ii) How is the CK/PCr system involved in cellular bioenergetics? (iii) How is the CK/PCr system compartmentalized throughout the cell? (iv) What is the role of creatine amongst different tissues? and (v) What is the basis of creatine transport? Under the cellular allostasis paradigm, the CK/PCr system is physiologically essential for life (cell survival, growth, proliferation, differentiation, and migration/motility) by providing an evolutionary advantage for rapid, local, and temporal support of energy- and mechanical-dependent processes. Thus, we suggest the CK/PCr system acts as a dynamic biosensor based on chemo-mechanical energy transduction, which might explain why dysregulation in Cr metabolism contributes to a wide range of diseases besides the mitigating effect that Cr supplementation may have in some of these disease states.

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References
1.
Mayser W, Schloss P, Betz H . Primary structure and functional expression of a choline transporter expressed in the rat nervous system. FEBS Lett. 1992; 305(1):31-6. DOI: 10.1016/0014-5793(92)80649-2. View

2.
Kato Y, Miyakawa T, Tanokura M . Overview of the mechanism of cytoskeletal motors based on structure. Biophys Rev. 2017; 10(2):571-581. PMC: 5899727. DOI: 10.1007/s12551-017-0368-1. View

3.
Puurand M, Tepp K, Timohhina N, Aid J, Shevchuk I, Chekulayev V . Tubulin βII and βIII Isoforms as the Regulators of VDAC Channel Permeability in Health and Disease. Cells. 2019; 8(3). PMC: 6468622. DOI: 10.3390/cells8030239. View

4.
Eder M, Fritz-Wolf K, Kabsch W, Wallimann T, Schlattner U . Crystal structure of human ubiquitous mitochondrial creatine kinase. Proteins. 2000; 39(3):216-25. DOI: 10.1002/(sici)1097-0134(20000515)39:3<216::aid-prot40>3.0.co;2-#. View

5.
Grosse R, Spitzer E, Kupriyanov V, Saks V, Repke K . Coordinate interplay between (Na+ + K+)-ATPase and creatine phosphokinase optimizes (Na+/K+)-antiport across the membrane of vesicles formed from the plasma membrane of cardiac muscle cell. Biochim Biophys Acta. 1980; 603(1):142-56. DOI: 10.1016/0005-2736(80)90397-1. View