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Erschienen in: Abdominal Radiology 11/2017

18.05.2017

Fully navigated 3 T proton magnetic resonance spectroscopy of liver metastases with inner-volume saturation

verfasst von: Carolin Reischauer, Andreas Hock, Orpheus Kolokythas, Christoph A. Binkert, Andreas Gutzeit

Erschienen in: Abdominal Radiology | Ausgabe 11/2017

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Abstract

Purpose

To demonstrate that fully navigated magnetic resonance spectroscopy (MRS) with inner-volume saturation (IVS) at 3 T results in high-quality spectra that permit evaluating metabolic changes in hepatic metastases without the need for patient compliance.

Methods

Nine patients with untreated, biopsy-proven large hepatic metastases (minimum diameter of 3 cm) were included. In each patient, localized proton MRS was performed in the metastatic lesion and in uninvolved liver parenchyma. To improve quality and consistency of proton MRS, navigator gating was thereby performed not only during acquisition of the spectroscopic data but also during localization imaging and throughout the preparation phases. IVS was utilized to reduce chemical shift displacement between different metabolites and to diminish flow artifacts. Metabolite quantities were normalized relative to the unsuppressed water peak and choline-containing compounds (CCC) to lipid ratios were determined. Wilcoxon signed-rank tests were used to assess differences in the amounts of lipids and CCC as well as the CCC-to-lipid ratios between liver metastases and normal-appearing liver parenchyma.

Results

Fully navigated point-resolved spectroscopy with IVS resulted in high-quality spectra in all patients. Navigator gating during localization imaging and spectroscopic acquisition thereby ensured a precise localization of the spectroscopic voxel. Decreased quantities of lipid and CCC were observed in metastatic tissue compared with uninvolved liver parenchyma. However, the latter trend fell short of statistical significance. Moreover, elevated levels of the CCC-to-lipid ratios were detected in metastatic tissue relative to normal-appearing liver parenchyma.

Conclusions

The present study demonstrates that fully navigated MRS of the liver with IVS at 3 T allows for a precise localization of the spectroscopic voxel and results in high-quality spectra that permit evaluating liver metabolism without the need for patient compliance.
Literatur
1.
Zurück zum Zitat Jeong YY, Mitchell DG, Kamishima T (2002) Small (<20 mm) enhancing hepatic nodules seen on arterial phase MR imaging of the cirrhotic liver: clinical implications. AJR Am J Roentgenol 178:1327–1334CrossRefPubMed Jeong YY, Mitchell DG, Kamishima T (2002) Small (<20 mm) enhancing hepatic nodules seen on arterial phase MR imaging of the cirrhotic liver: clinical implications. AJR Am J Roentgenol 178:1327–1334CrossRefPubMed
2.
Zurück zum Zitat Soper R, Himmelreich U, Painter D, et al. (2002) Pathology of hepatocellular carcinoma and its precursors using proton magnetic resonance spectroscopy and a statistical classification strategy. Pathology 34:417–422CrossRefPubMed Soper R, Himmelreich U, Painter D, et al. (2002) Pathology of hepatocellular carcinoma and its precursors using proton magnetic resonance spectroscopy and a statistical classification strategy. Pathology 34:417–422CrossRefPubMed
3.
Zurück zum Zitat Kuo YT, Li CW, Chen CY, et al. (2004) In vivo proton magnetic resonance spectroscopy of large focal hepatic lesions and metabolite change of hepatocellular carcinoma before and after transcatheter arterial chemoembolization using 3.0-T MR scanner. J Magn Reson Imaging 19:598–604CrossRefPubMed Kuo YT, Li CW, Chen CY, et al. (2004) In vivo proton magnetic resonance spectroscopy of large focal hepatic lesions and metabolite change of hepatocellular carcinoma before and after transcatheter arterial chemoembolization using 3.0-T MR scanner. J Magn Reson Imaging 19:598–604CrossRefPubMed
4.
Zurück zum Zitat Fischbach F, Schirmer T, Thormann M, et al. (2008) Quantitative proton magnetic resonance spectroscopy of the normal liver and malignant hepatic lesions at 3.0 Tesla. Eur Radiol 18:2549–2558CrossRefPubMed Fischbach F, Schirmer T, Thormann M, et al. (2008) Quantitative proton magnetic resonance spectroscopy of the normal liver and malignant hepatic lesions at 3.0 Tesla. Eur Radiol 18:2549–2558CrossRefPubMed
5.
Zurück zum Zitat Tyszka JM, Silverman JM (1998) Navigated single-voxel proton spectroscopy of the human liver. Magn Reson Med 39:1–5CrossRefPubMed Tyszka JM, Silverman JM (1998) Navigated single-voxel proton spectroscopy of the human liver. Magn Reson Med 39:1–5CrossRefPubMed
6.
Zurück zum Zitat Hock A, Valkovic L, Geier A, et al. (2014) Navigator based respiratory gating during acquisition and preparation phases for proton liver spectroscopy at 3 T. NMR Biomed 27:348–355CrossRefPubMed Hock A, Valkovic L, Geier A, et al. (2014) Navigator based respiratory gating during acquisition and preparation phases for proton liver spectroscopy at 3 T. NMR Biomed 27:348–355CrossRefPubMed
7.
Zurück zum Zitat Edden RA, Schar M, Hillis AE, Barker PB (2006) Optimized detection of lactate at high fields using inner volume saturation. Magn Reson Med 56:912–917CrossRefPubMed Edden RA, Schar M, Hillis AE, Barker PB (2006) Optimized detection of lactate at high fields using inner volume saturation. Magn Reson Med 56:912–917CrossRefPubMed
8.
Zurück zum Zitat Hock A, MacMillan EL, Fuchs A, et al. (2013) Non-water-suppressed proton MR spectroscopy improves spectral quality in the human spinal cord. Magn Reson Med 69:1253–1260CrossRefPubMed Hock A, MacMillan EL, Fuchs A, et al. (2013) Non-water-suppressed proton MR spectroscopy improves spectral quality in the human spinal cord. Magn Reson Med 69:1253–1260CrossRefPubMed
9.
Zurück zum Zitat Hock A, Wilm B, Zandomeneghi G, et al. (2016) Neurochemical profile of the human cervical spinal cord determined by MRS. NMR Biomed 29:1464–1476CrossRefPubMed Hock A, Wilm B, Zandomeneghi G, et al. (2016) Neurochemical profile of the human cervical spinal cord determined by MRS. NMR Biomed 29:1464–1476CrossRefPubMed
10.
Zurück zum Zitat Li CW, Kuo YC, Chen CY, et al. (2005) Quantification of choline compounds in human hepatic tumors by proton MR spectroscopy at 3 T. Magn Reson Med 53:770–776CrossRefPubMed Li CW, Kuo YC, Chen CY, et al. (2005) Quantification of choline compounds in human hepatic tumors by proton MR spectroscopy at 3 T. Magn Reson Med 53:770–776CrossRefPubMed
11.
Zurück zum Zitat Dagnelie PC, Sijens PE, Kraus DJ, Planting AS, van Dijk P (1999) Abnormal liver metabolism in cancer patients detected by (31)P MR spectroscopy. NMR Biomed 12:535–544CrossRefPubMed Dagnelie PC, Sijens PE, Kraus DJ, Planting AS, van Dijk P (1999) Abnormal liver metabolism in cancer patients detected by (31)P MR spectroscopy. NMR Biomed 12:535–544CrossRefPubMed
12.
Zurück zum Zitat Schulte RF, Henning A, Tsao J, Boesiger P, Pruessmann KP (2007) Design of broadband RF pulses with polynomial-phase response. J Magn Reson 186:167–175CrossRefPubMed Schulte RF, Henning A, Tsao J, Boesiger P, Pruessmann KP (2007) Design of broadband RF pulses with polynomial-phase response. J Magn Reson 186:167–175CrossRefPubMed
13.
Zurück zum Zitat Hock A, Fuchs A, Boesiger P, Kollias SS, Henning A (2013) Electrocardiogram-triggered, higher order, projection-based B(0) shimming allows for fast and reproducible shim convergence in spinal cord (1)H MRS. NMR Biomed 26:329–335CrossRefPubMed Hock A, Fuchs A, Boesiger P, Kollias SS, Henning A (2013) Electrocardiogram-triggered, higher order, projection-based B(0) shimming allows for fast and reproducible shim convergence in spinal cord (1)H MRS. NMR Biomed 26:329–335CrossRefPubMed
14.
Zurück zum Zitat Gruetter R, Tkac I (2000) Field mapping without reference scan using asymmetric echo-planar techniques. Magn Reson Med 43:319–323CrossRefPubMed Gruetter R, Tkac I (2000) Field mapping without reference scan using asymmetric echo-planar techniques. Magn Reson Med 43:319–323CrossRefPubMed
15.
Zurück zum Zitat Schar M, Kozerke S, Fischer SE, Boesiger P (2004) Cardiac SSFP imaging at 3 Tesla. Magn Reson Med 51:799–806CrossRefPubMed Schar M, Kozerke S, Fischer SE, Boesiger P (2004) Cardiac SSFP imaging at 3 Tesla. Magn Reson Med 51:799–806CrossRefPubMed
16.
Zurück zum Zitat Ehman RL, Felmlee JP (1989) Adaptive technique for high-definition MR imaging of moving structures. Radiology 173:255–263CrossRefPubMed Ehman RL, Felmlee JP (1989) Adaptive technique for high-definition MR imaging of moving structures. Radiology 173:255–263CrossRefPubMed
17.
Zurück zum Zitat Provencher SW (1993) Estimation of metabolite concentrations from localized in vivo proton NMR spectra. Magn Reson Med 30:672–679CrossRefPubMed Provencher SW (1993) Estimation of metabolite concentrations from localized in vivo proton NMR spectra. Magn Reson Med 30:672–679CrossRefPubMed
18.
Zurück zum Zitat Xu L, Liu B, Huang Y, et al. (2013) 3.0 T proton magnetic resonance spectroscopy of the liver: quantification of choline. World J Gastroenterol 19:1472–1477CrossRefPubMedPubMedCentral Xu L, Liu B, Huang Y, et al. (2013) 3.0 T proton magnetic resonance spectroscopy of the liver: quantification of choline. World J Gastroenterol 19:1472–1477CrossRefPubMedPubMedCentral
19.
Zurück zum Zitat Bell JD, Cox IJ, Sargentoni J, et al. (1993) A 31P and 1H-NMR investigation in vitro of normal and abnormal human liver. Biochim Biophys Acta 1225:71–77CrossRefPubMed Bell JD, Cox IJ, Sargentoni J, et al. (1993) A 31P and 1H-NMR investigation in vitro of normal and abnormal human liver. Biochim Biophys Acta 1225:71–77CrossRefPubMed
20.
Zurück zum Zitat Cho SG, Kim MY, Kim HJ, et al. (2001) Chronic hepatitis: in vivo proton MR spectroscopic evaluation of the liver and correlation with histopathologic findings. Radiology 221:740–746CrossRefPubMed Cho SG, Kim MY, Kim HJ, et al. (2001) Chronic hepatitis: in vivo proton MR spectroscopic evaluation of the liver and correlation with histopathologic findings. Radiology 221:740–746CrossRefPubMed
21.
Zurück zum Zitat Chen CY, Li CW, Kuo YT, et al. (2006) Early response of hepatocellular carcinoma to transcatheter arterial chemoembolization: choline levels and MR diffusion constants–initial experience. Radiology 239:448–456CrossRefPubMed Chen CY, Li CW, Kuo YT, et al. (2006) Early response of hepatocellular carcinoma to transcatheter arterial chemoembolization: choline levels and MR diffusion constants–initial experience. Radiology 239:448–456CrossRefPubMed
22.
Zurück zum Zitat Tarasow E, Siergiejczyk L, Panasiuk A, et al. (2002) MR proton spectroscopy in liver examinations of healthy individuals in vivo. Med Sci Monit 8:36–40 Tarasow E, Siergiejczyk L, Panasiuk A, et al. (2002) MR proton spectroscopy in liver examinations of healthy individuals in vivo. Med Sci Monit 8:36–40
23.
Zurück zum Zitat Barantin L, Le Pape A, Akoka S (1997) A new method for absolute quantitation of MRS metabolites. Magn Reson Med 38:179–182CrossRefPubMed Barantin L, Le Pape A, Akoka S (1997) A new method for absolute quantitation of MRS metabolites. Magn Reson Med 38:179–182CrossRefPubMed
24.
Zurück zum Zitat Heinzer-Schweizer S, De Zanche N, Pavan M, et al. (2010) In-vivo assessment of tissue metabolite levels using 1H MRS and the Electric REference To access In vivo Concentrations (ERETIC) method. NMR Biomed 23:406–413PubMed Heinzer-Schweizer S, De Zanche N, Pavan M, et al. (2010) In-vivo assessment of tissue metabolite levels using 1H MRS and the Electric REference To access In vivo Concentrations (ERETIC) method. NMR Biomed 23:406–413PubMed
25.
Zurück zum Zitat Akoka S, Barantin L, Trierweiler M (1999) Concentration measurement by proton NMR using the ERETIC method. Anal Chem 71:2554–2557CrossRefPubMed Akoka S, Barantin L, Trierweiler M (1999) Concentration measurement by proton NMR using the ERETIC method. Anal Chem 71:2554–2557CrossRefPubMed
Metadaten
Titel
Fully navigated 3 T proton magnetic resonance spectroscopy of liver metastases with inner-volume saturation
verfasst von
Carolin Reischauer
Andreas Hock
Orpheus Kolokythas
Christoph A. Binkert
Andreas Gutzeit
Publikationsdatum
18.05.2017
Verlag
Springer US
Erschienen in
Abdominal Radiology / Ausgabe 11/2017
Print ISSN: 2366-004X
Elektronische ISSN: 2366-0058
DOI
https://doi.org/10.1007/s00261-017-1173-9

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