Respiratory-resolved MR-based attenuation correction for motion-compensated cardiac PET-MR

被引:14
|
作者
Kolbitsch, Christoph [1 ,2 ,3 ]
Neji, Radhouene [4 ]
Fenchel, Matthias [5 ]
Mallia, Andrew [3 ]
Marsden, Paul [3 ]
Schaeffter, Tobias [1 ,2 ,3 ]
机构
[1] Phys Tech Bundesanstalt PTB, Braunschweig, Germany
[2] Phys Tech Bundesanstalt PTB, Berlin, Germany
[3] Kings Coll London, Div Imaging Sci & Biomed Engn, London, England
[4] Siemens Healthcare, MR Res Collaborat, Frimley, England
[5] Siemens Med Solut, MR R&D Collaborat, New York, NY USA
来源
PHYSICS IN MEDICINE AND BIOLOGY | 2018年 / 63卷 / 13期
基金
英国工程与自然科学研究理事会;
关键词
motion compensation; respiratory-resolved AC; simultaneous PET-MR; WHOLE-BODY PET/MRI; RECONSTRUCTION; OPTIMIZATION; ANGIOGRAPHY; ARTIFACTS; HEART; SCAN;
D O I
10.1088/1361-6560/aaca15
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Respiratory motion during cardiac PET acquisitions can cause image blurring and erroneous uptake quantification. In particular the misalignment of attenuation correction (AC) maps and PET emission data can lead to severe quantification errors, because the AC value of the heart is five times higher than of the surrounding lung tissue. Standard PET-MR approaches assume accurate alignment between breathhold MR-based AC maps and free-breathing PET emission data but cannot necessarily ensure it. Here we propose a 75 s free-breathing MR-acquisition, which provides respiratory-resolved AC maps (AC(Dyn)) and non-rigid respiratory motion information. This approach ensures accurate AC for free-breathing PET data and the motion information can be utilized to reduce image blurring caused by respiratory motion. 3D multi-echo MR data was acquired during a 75 s free-breathing scan in six patients. Both a respiratory-resolved dynamic AC map (AC(Dyn)) and a non-rigid respiratory motion field are provided by the MR scan. AC(Dyn) yielded AC values for different breathing phases ensuring accurate AC for each respiratory phase of the free-breathing PET data. In addition, motion-corrected image reconstruction (MCIR) of MR and PET data was used to minimize breathing artefacts. Motion amplitudes in the left ventricle were 8.2 +/- 2.9 mm with a dominant motion direction along the anterior-anterolateral and inferior-inferoseptal axis of the heart. The proposed AC(Dyn)-MCIR technique led to significant signal recovery of PET tracer uptake by 24 +/- 5% (p < 0.05). The maximum improvement was observed in patients with large misalignment between standard breathhold MR-based AC maps and PET emission data. PET image resolution was improved by 20 +/- 12% (p < 0.05). We have presented an efficient MR-scan, which ensures accurate motion information and AC values to improve PET quantification for cardiac PET-MR scans. The short scan time of 75 s makes this free-breathing acquisition easy to integrate into standard clinical PET-MR protocols.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] Joint cardiac and respiratory motion estimation for motion-corrected cardiac PET-MR
    Kolbitsch, Christoph
    Neji, Radhouene
    Fenchel, Matthias
    Schuh, Andreas
    Mallia, Andrew
    Marsden, Paul
    Schaeffter, Tobias
    [J]. PHYSICS IN MEDICINE AND BIOLOGY, 2019, 64 (01):
  • [32] MR-based motion correction for cardiac PET parametric imaging: a simulation study
    Guo, Rong
    Petibon, Yoann
    Ma, Yixin
    El Fakhri, Georges
    Ying, Kui
    Ouyang, Jinsong
    [J]. EJNMMI PHYSICS, 2018, 5
  • [33] Dynamic MR-based Respiratory Motion Compensation for Hybrid PET/MR System
    Miao, Shun
    Liao, Rui
    Moran, Gerald
    Butler, John
    Pan, Li
    Wang, Z. Jane
    [J]. PROCEEDINGS OF THE 2014 9TH IEEE CONFERENCE ON INDUSTRIAL ELECTRONICS AND APPLICATIONS (ICIEA), 2014, : 1915 - +
  • [34] A comparison of MR-based attenuation correction in PET versus SPECT
    Marshall, H. R.
    Stodilka, R. Z.
    Theberge, J.
    Sabondjian, E.
    Legros, A.
    Deans, L.
    Sykes, J. M.
    Thompson, R. T.
    Prato, F. S.
    [J]. PHYSICS IN MEDICINE AND BIOLOGY, 2011, 56 (14): : 4613 - 4629
  • [35] Impact of MR-Based Attenuation Correction on Neurologic PET Studies
    Su, Yi
    Rubin, Brian B.
    McConathy, Jonathan
    Laforest, Richard
    Qi, Jing
    Sharma, Akash
    Priatna, Agus
    Benzinger, Tammie L. S.
    [J]. JOURNAL OF NUCLEAR MEDICINE, 2016, 57 (06) : 913 - 917
  • [36] In-vivo studies of tagged MR based PET motion correction in simultaneous PET-MR
    Chun, Se Young
    Moussallem, Elie
    Reese, Timothy
    Guerin, Bastien
    Catana, Ciprian
    Alpert, Nathaniel
    El Fakhri, Georges
    [J]. JOURNAL OF NUCLEAR MEDICINE, 2011, 52
  • [37] Quantitative accuracy of MR-based attenuation correction in whole-body PET/MR
    Schramm, Georg
    Langner, Jens
    Hofheinz, Frank
    Baumann, Bettina Beuthien
    Platzek, Ivan
    Kotzerke, Jorg
    Steinbach, Joerg
    van den Hoff, Joerg
    [J]. JOURNAL OF NUCLEAR MEDICINE, 2012, 53
  • [38] Whole-body FDG PET-MR oncologic imaging: pitfalls in clinical interpretation related to inaccurate MR-based attenuation correction
    Ulrike Attenberger
    Ciprian Catana
    Hersh Chandarana
    Onofrio A Catalano
    Kent Friedman
    Stefan A Schonberg
    James Thrall
    Marco Salvatore
    Bruce R. Rosen
    Alexander R. Guimaraes
    [J]. Abdominal Imaging, 2015, 40 : 1374 - 1386
  • [39] MR-based Attenuation Correction for a Whole-body Sequential PET/MR System
    Hu, Z.
    Ojha, N.
    Renisch, S.
    Schulz, V.
    Torres, I.
    Buhl, A.
    Pal, D.
    Muswick, G.
    Penatzer, J.
    Guo, T.
    Boenert, P.
    Tung, C.
    Kaste, J.
    Morich, M.
    Havens, T.
    Maniawski, P.
    Schaefer, W.
    Guenther, R. W.
    Krombach, G. A.
    Shao, L.
    [J]. 2009 IEEE NUCLEAR SCIENCE SYMPOSIUM CONFERENCE RECORD, VOLS 1-5, 2009, : 3508 - 3512
  • [40] Possible errors with MR-based attenuation correction for brain imaging in PET/MR scanners
    Kops, Elena Rota
    Herzog, Hans
    [J]. JOURNAL OF NUCLEAR MEDICINE, 2012, 53