Treffer: Non-Invasive Real-Time Detection of Potassium Level Changes in Skeletal Muscles During Exercise by Magnetic Resonance Spectroscopy.
Original Publication: London : Heyden & Son, 1988-
BMJ. 2013 Apr 03;346:f1378. (PMID: 23558164)
Anal Biochem. 1998 Jul 1;260(2):218-22. (PMID: 9657881)
Am J Physiol Regul Integr Comp Physiol. 2013 Oct 1;305(7):R811-21. (PMID: 23883682)
J Magn Reson. 1997 Nov;129(1):35-43. (PMID: 9405214)
Am J Clin Nutr. 2008 Jul;88(1):195-202. (PMID: 18614741)
Invest Radiol. 2023 Apr 1;58(4):265-272. (PMID: 36374200)
BMJ. 2021 Feb 10;372:n189. (PMID: 33568342)
Magn Reson Med. 2021 Jan;85(1):239-253. (PMID: 32869364)
Magn Reson Med. 2014 May;71(5):1819-25. (PMID: 23798343)
NMR Biomed. 2025 Apr;38(4):e70009. (PMID: 39962713)
Magn Reson Med. 2020 Jan;83(1):203-213. (PMID: 31452259)
Magn Reson Med. 1997 Oct;38(4):653-61. (PMID: 9324333)
Am J Clin Nutr. 2006 Jun;83(6):1289-96. (PMID: 16762939)
Clin Sci (Lond). 1988 Mar;74(3):241-8. (PMID: 2449993)
NMR Biomed. 2023 Jan;36(1):e4819. (PMID: 35994248)
Cardiovasc Drugs Ther. 1989 Mar;3(1):57-62. (PMID: 2535052)
J Physiol. 2004 Feb 1;554(Pt 3):857-70. (PMID: 14634198)
Clin Orthop Relat Res. 1985 Sep;(198):43-9. (PMID: 4028566)
Br Med J (Clin Res Ed). 1988 Feb 13;296(6620):455-8. (PMID: 2450616)
Radiology. 2013 Nov;269(2):569-76. (PMID: 23878285)
NMR Biomed. 2016 Apr;29(4):451-7. (PMID: 26837061)
Am J Physiol. 1985 Feb;248(2 Pt 2):R190-6. (PMID: 3970234)
Invest Radiol. 2025 Oct 01;60(10):688-697. (PMID: 40262126)
Eur J Appl Physiol. 2021 Mar;121(3):721-748. (PMID: 33392745)
Weitere Informationen
Potassium is essential in cellular functions, with specific importance in muscle activity and cardiovascular health. It is the main intracellular cation in the human body, with 70% located in muscle. Traditional methods to measure potassium levels are invasive and lack specificity for intracellular concentrations. Recently, non-invasive in vivo investigation of K+ ion homeostasis has become feasible by using <sup>39</sup> K magnetic resonance imaging (MRI) and MR spectroscopy (MRS) at ultrahigh magnetic fields. However, studies demonstrating the sensitivity of <sup>39</sup> K MRI or MRS to detect potassium alterations in disease or upon intervention are sparse. This study utilizes <sup>39</sup> K MRS to non-invasively track real-time intramuscular potassium changes during exercise, providing an assessment of potassium dynamics and exploring the potential for technical artifacts in the measurements. Five healthy subjects (three males, two females) were recruited to perform standardized dynamic knee extensions inside a 7T MR scanner. Potassium levels were measured using a <sup>39</sup> K MRS protocol that included periods of rest, moderate, and heavy exercise followed by recovery. Additionally, possible measurement artifacts due to muscle movement or changes in coil position relative to the thigh were evaluated using <sup>39</sup> K MRS and <sup>1</sup> H MRI monitoring in separate sessions. The study revealed a consistent decrease in potassium levels during both moderate and heavy exercise, with an average decrease of 5%-6%. These changes were rapidly detectable and were reversed upon cessation of exercise, indicating effective in vivo monitoring capability. Possible experimental artifacts were investigated, and the results suggested not to be responsible for the detected potassium changes during exercise. The results of the non-localized <sup>39</sup> K MRS measurements during exercise correlated well with expected physiological changes based on previous literature. The application of <sup>39</sup> K MRS provides a valuable non-invasive tool for studying potassium dynamics in human skeletal muscle. This technique could enhance our understanding of muscle physiology and metabolic disorders. The ability to measure these changes in real time and non-invasively highlights the potential for clinical applications, including monitoring of diseases affecting muscle and cellular metabolism.
(© 2025 The Author(s). NMR in Biomedicine published by John Wiley & Sons Ltd.)