In vivo absolute quantification of carnosine in the vastus lateralis muscle with 1H MRS using a surface coil and water as internal reference
- PMID: 35978163
- DOI: 10.1007/s00256-022-04149-8
In vivo absolute quantification of carnosine in the vastus lateralis muscle with 1H MRS using a surface coil and water as internal reference
Abstract
Objective: To standardize a method for 1H MRS intramuscular absolute quantification of carnosine in the thigh, using a surface coil and water as internal reference.
Materials and methods: Carnosine spectra were acquired in phantoms (5, 10, and 15 mM) as well as in the right gastrocnemius medialis (GM) and right vastus lateralis (VLM) muscles of young team sports athletes, using volume (VC) and surface (SC) coils on a 3 T scanner, with the same receiver gain. Water spectra were used as internal reference for the absolute quantification of carnosine.
Results: Phantom's experiments showed a maximum error of 7%, highlighting the validity of the measurements in the study setup. The carnosine concentrations (mmol/kg ww, mean ± SD) measured in the GM were 6.8 ± 2.2 with the VC (CcarVC) and 10.2 ± 3.0 with the SC (CcarSC) (P = 0.013; n = 9). Therefore, a correction was applied to these measurements (CcarVC = 0.6582*CcarSC), to make coils performance comparable (6.8 ± 2.2 for VC and 6.7 ± 2.0 for SC, P = 0.97). After that, only the SC was used to quantify carnosine in the VLM, where a concentration of 5.4 ± 1.5 (n = 30) was found, with significant differences between men (6.2 ± 1.3; n = 15) and women (4.6 ± 1.2; n = 15). The error in quantitation was 5.3-5.5% with both coils.
Conclusion: The method using the SC and water as internal reference can be used to quantify carnosine in voluminous muscles and regions of the body in humans, where the VC is not suitable, such as the VLM.
Keywords: Carnosine; Gastrocnemius; Proton magnetic resonance spectroscopy; Skeletal muscle; Vastus lateralis.
© 2022. The Author(s), under exclusive licence to International Skeletal Society (ISS).
References
-
- Boldyrev A, Aldini G, Derave W. Physiology and pathophysiology of carnosine. Physiol Rev. 2013;93:1803–45.
-
- Fresta C, Fidilio A, Lazzarino G, Musso N, Grasso M, Merlo S, et al. Modulation of pro-oxidant and pro-inflammatory activities of M1 macrophages by the natural dipeptide carnosine. Int J Mol Sci. 2020;21:776.
-
- Menon K, Marquina C, Liew D, Mousa A, de Courten B. Histidine-containing dipeptides reduce central obesity and improve glycaemic outcomes: a systematic review and meta-analysis of randomized controlled trials. Obes Rev. 2020;21: e12975.
-
- de Courten B, Kurdiova T, de Courten MP, Belan V, Everaert I, Vician M, et al. Muscle carnosine is associated with cardiometabolic risk factors in humans. PLoS ONE. 2015;10: e0138707.
-
- Wu J, Egusa A, Nishimura T. Carnosine synthase deficiency in mice affects protein metabolism in skeletal muscle. Biochem Biophys Res Commun. 2022;612:22–9.
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Grants and funding
- 2565/CODI
- Convocatoria 626-2014/Departamento Administrativo de Ciencia, Tecnología e Innovación (COLCIENCIAS)-Coldeportes
- project 111562638757 from 2014/Departamento Administrativo de Ciencia, Tecnología e Innovación (COLCIENCIAS)-Coldeportes
- 13041/Universidad de Antioquia
- 4339/Fundación Banco de la República
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