Roozpeykar S, Azizian M, Zamani Z, Farzan MR, Veshnavei HA, Tavoosi N, Toghyani A, Sadeghian A, Afzali M (2022) Contrast-enhanced weighted-T1 and FLAIR sequences in MRI of meningeal lesions. Am J Nucl Med Mol Imaging 12:63–70
PubMed PubMed Central Google Scholar
Parillo M, Vertulli D, Vaccarino F, Mallio CA, Beomonte Zobel B, Quattrocchi CC (2024) The sensitivity of MIPs of 3D contrast-enhanced VIBE T1-weighted imaging for the detection of small brain metastases (≤ 5 mm) on 1.5 tesla MRI. Neuroradiol J 37:744–750
Article PubMed PubMed Central Google Scholar
Barral JK, Gudmundson E, Stikov N, Etezadi-Amoli M, Stoica P, Nishimura DG (2010) A robust methodology for in vivo T1 mapping. Magn Reson Med 64:1057–1067
Article PubMed PubMed Central Google Scholar
Haaf P, Garg P, Messroghli DR, Broadbent DA, Greenwood JP, Plein S (2016) Cardiac T1 mapping and extracellular volume (ECV) in clinical practice: a comprehensive review. J Cardiovasc Magn Reson 18:89
Article PubMed PubMed Central Google Scholar
Human non-contrast T1 values and correlation with histology in diffuse fibrosis|Heart. https://heart.bmj.com/content/99/13/932. Accessed 20 Aug 2025
Ferreira VM, Piechnik SK, Dall’Armellina E, Karamitsos TD, Francis JM, Choudhury RP, Friedrich MG, Robson MD, Neubauer S (2012) Non-contrast T1-mapping detects acute myocardial edema with high diagnostic accuracy: a comparison to T2-weighted cardiovascular magnetic resonance. J Cardiovasc Magn Reson 14:53
Sado DM, Maestrini V, Piechnik SK, Banypersad SM, White SK, Flett AS, Robson MD, Neubauer S, Ariti C, Arai A, Kellman P, Yamamura J, Schoennagel BP, Shah F, Davis B, Trompeter S, Walker M, Porter J, Moon JC (2015) Noncontrast myocardial T1 mapping using cardiovascular magnetic resonance for iron overload. J Magn Reson Imaging 41:1505–1511
Meloni A, Martini N, Positano V, De Luca A, Pistoia L, Sbragi S, Spasiano A, Casini T, Bitti PP, Allò M, Sanna PMG, De Caterina R, Sinagra G, Pepe A (2021) Myocardial iron overload by cardiovascular magnetic resonance native segmental T1 mapping: a sensitive approach that correlates with cardiac complications. J Cardiovasc Magn Reson 23:70
Article PubMed PubMed Central Google Scholar
Snyder J, Blevins G, Smyth P, Wilman AH (2025) Whole brain 3D T1 mapping in multiple sclerosis using standard clinical images compared to MP2RAGE and MR fingerprinting. NMR Biomed 38:e70037
Article PubMed PubMed Central CAS Google Scholar
Donatelli G, Cecchi P, Migaleddu G, Cencini M, Frumento P, D’Amelio C, Peretti L, Buonincontri G, Pasquali L, Tosetti M, Cosottini M, Costagli M (2023) Quantitative T1 mapping detects blood-brain barrier breakdown in apparently non-enhancing multiple sclerosis lesions. Neuroimage Clin 40:103509
Article PubMed PubMed Central Google Scholar
Harper JG, York EN, Meijboom R, Kampaite A, Thrippleton MJ, On behalf of the Future MS Consortium et al (2024) Quantitative T1 brain mapping in early relapsing-remitting multiple sclerosis: longitudinal changes, lesion heterogeneity and disability. Eur Radiol 34:3826–3839
Baudrexel S, Nürnberger L, Rüb U, Seifried C, Klein JC, Deller T, Steinmetz H, Deichmann R, Hilker R (2010) Quantitative mapping of T1 and T2* discloses nigral and brainstem pathology in early Parkinson’s disease. Neuroimage 51:512–520
Müller SJ, Khadhraoui E, Voit D, Riedel CH, Frahm J, Ernst M (2022) First clinical application of a novel T1 mapping of the whole brain. Neuroradiol J 35:684–691
Article PubMed PubMed Central Google Scholar
Herrmann K, Erokwu BO, Johansen ML, Basilion JP, Gulani V, Griswold MA, Flask CA, Brady-Kalnay SM (2016) Dynamic quantitative T1 mapping in orthotopic brain tumor xenografts. Transl Oncol 9:147–154
Article PubMed PubMed Central Google Scholar
Tirkes T, Lin C, Fogel EL, Sherman SS, Wang Q, Sandrasegaran K (2017) T1 mapping for diagnosis of mild chronic pancreatitis. J Magn Reson Imaging 45:1171–1176
Obmann VC, Berzigotti A, Catucci D, Ebner L, Gräni C, Heverhagen JT, Christe A, Huber AT (2021) T1 mapping of the liver and the spleen in patients with liver fibrosis-does normalization to the blood pool increase the predictive value? Eur Radiol 31:4308–4318
Article PubMed CAS Google Scholar
Hoffman DH, Ayoola A, Nickel D, Han F, Chandarana H, Shanbhogue KP (2020) T1 mapping, T2 mapping and MR elastography of the liver for detection and staging of liver fibrosis. Abdom Radiol (NY) 45:692–700
Shi Z, Sun C, Zhou F, Yuan J, Chen M, Wang X, Wang X, Zhang Y, Pylypenko D, Yuan L (2024) Native T1-mapping as a predictor of progressive renal function decline in chronic kidney disease patients. BMC Nephrol 25:121
Article PubMed PubMed Central CAS Google Scholar
Zhu L, Lai Y, Makowski M, Zhang W, Sun Z, Qian T, Nickel D, Hamm B, Asbach P, Duebgen M, Xue H, Jin Z (2019) Native T1 mapping of autoimmune pancreatitis as a quantitative outcome surrogate. Eur Radiol 29:4436–4446
Breit HC, Block KT, Winkel DJ, Gehweiler JE, Henkel MJ, Weikert T, Stieltjes B, Boll DT, Heye TJ (2021) Evaluation of liver fibrosis and cirrhosis on the basis of quantitative T1 mapping: are acute inflammation, age and liver volume confounding factors? Eur J Radiol 141:109789
Ahn J-H, Yu J-S, Park K-S, Kang SH, Huh JH, Chang JS, Lee J-H, Kim MY, Nickel MD, Kannengiesser S, Kim J-Y, Koh S-B (2021) Effect of hepatic steatosis on native T1 mapping of 3T magnetic resonance imaging in the assessment of T1 values for patients with non-alcoholic fatty liver disease. Magn Reson Imaging 80:1–8
Article PubMed CAS Google Scholar
Belsley G, Mózes FE, Tyler DJ, Robson MD, Tunnicliffe EM (2025) Accurate and precise in vivo liver 3D T1 mapping at 3T. Magn Reson Med 93:2331–2345
Article PubMed PubMed Central CAS Google Scholar
Taylor AJ, Salerno M, Dharmakumar R, Jerosch-Herold M (2016) T1 mapping: basic techniques and clinical applications. JACC Cardiovasc Imaging 9:67–81
Marty B, Carlier PG (2019) Physiological and pathological skeletal muscle T1 changes quantified using a fast inversion-recovery radial NMR imaging sequence. Sci Rep 9:6852
Article PubMed PubMed Central Google Scholar
Lin Y-C, Fu T-C, Lin G, Ng S-H, Yeh C-H, Ng S-C, Chang T-C, Juan Y-H (2023) Using T1 mapping indices to evaluate muscle function and predict conservative treatment outcomes in diabetic patients with peripheral arterial disease. Eur Radiol 33:4927–4937
Article PubMed CAS Google Scholar
Fitian AI, Shieh MC, Gimnich OA, Belousova T, Taylor AA, Ballantyne CM, Bismuth J, Shah DJ, Brunner G (2024) Contrast-enhanced magnetic resonance imaging based T1 mapping and extracellular volume fractions are associated with peripheral artery disease. J Cardiovasc Dev Dis 11:181
PubMed PubMed Central CAS Google Scholar
Zaiss M, Xu J, Goerke S, Khan IS, Singer RJ, Gore JC, Gochberg DF, Bachert P (2014) Inverse Z-spectrum analysis for spillover-, MT-, and T1-corrected steady-state pulsed CEST-MRI—application to pH-weighted MRI of acute stroke. NMR Biomed 27:240–252
Article PubMed PubMed Central CAS Google Scholar
Ishimori Y, Shimanuki T, Kobayashi T, Monma M (2022) Fast B1 mapping based on double-angle method with T1 correction using standard pulse sequence. J Med Phys 47:93–98
Article PubMed PubMed Central Google Scholar
Sinclair CDJ, Samson RS, Thomas DL, Weiskopf N, Lutti A, Thornton JS, Golay X (2010) Quantitative magnetization transfer in in vivo healthy human skeletal muscle at 3 T. Magn Reson Med 64:1739–1748
Article PubMed PubMed Central Google Scholar
Wang Y, van Gelderen P, de Zwart JA, Duyn JH (2020) B0-field dependence of MRI T1 relaxation in human brain. Neuroimage 213:116700
Wright PJ, Mougin OE, Totman JJ, Peters AM, Brookes MJ, Coxon R, Morris PE, Clemence M, Francis ST, Bowtell RW, Gowland PA (2008) Water proton T1 measurements in brain tissue at 7, 3, and 1.5T using IR-EPI, IR-TSE, and MPRAGE: results and optimization. Magn Reson Mater Phy 21:121
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