Low-dose cardio-respiratory phase-correlated cone-beam micro-CT of small animals.

PURPOSE Micro-CT imaging of animal hearts typically requires a double gating procedure because scans during a breath-hold are not possible due to the long scan times and the high respiratory rates, Simultaneous respiratory and cardiac gating can either be done prospectively or retrospectively. True five-dimensional information can be either retrieved with retrospective gating or with prospective gating if several prospective gates are acquired. In any case, the amount of information available to reconstruct one volume for a given respiratory and cardiac phase is orders of magnitud lower than the total amount of information acquired. For example, the reconstruction of a volume from a 10% wide respiratory and a 20% wide cardiac window uses only 2% of the data acquired. Achieving a similar image quality as a nongated scan would therefore require to increase the amount of data and thereby the dose to the animal by up to a factor of 50. METHODS To achieve the goal of low-dose phase-correlated (LDPC) imaging, the authors propose to use a highly efficient combination of slightly modified existing algorithms. In particular, the authors developed a variant of the McKinnon-Bates image reconstruction algorithm and combined it with bilateral filtering in up to five dimensions to significantly reduce image noise without impairing spatial or temporal resolution. RESULTS The preliminary results indicate that the proposed LDPC reconstruction method typically reduces image noise by a factor of up to 6 (e.g., from 170 to 30 HU), while the dose values lie in a range from 60 to 500 mGy. Compared to other publications that apply 250-1800 mGy for the same task [C. T. Badea et al., "4D micro-CT of the mouse heart," Mol. Imaging 4(2), 110-116 (2005); M. Drangova et al., "Fast retrospectively gated quantitative four-dimensional (4D) cardiac micro computed tomography imaging of free-breathing mice," Invest. Radiol. 42(2), 85-94 (2007); S. H. Bartling et al., "Retrospective motion gating in small animal CT of mice and rats," Invest. Radiol. 42(10), 704-714 (2007)], the authors' LDPC approach therefore achieves a more than tenfold dose usage improvement. CONCLUSIONS The LDPC reconstruction method improves phase-correlated imaging from highly undersampled data. Artifacts caused by sparse angular sampling are removed and the image noise is decreased, while spatial and temporal resolution are preserved. Thus, the administered dose per animal can be decreased allowing for long-term studies with reduced metabolic inference.

[1]  W. Kalender,et al.  Generalized multi-dimensional adaptive filtering for conventional and spiral single-slice, multi-slice, and cone-beam CT. , 2001, Medical physics.

[2]  Richard A. Robb,et al.  3-D Reconstruction of the Heart from Few Projections: A Practical Implementation of the McKinnon-Bates Algorithm , 1986, IEEE Transactions on Medical Imaging.

[3]  Roberto Manduchi,et al.  Bilateral filtering for gray and color images , 1998, Sixth International Conference on Computer Vision (IEEE Cat. No.98CH36271).

[4]  M. V. van Herk,et al.  Respiratory correlated cone beam CT. , 2005, Medical physics.

[5]  Maria Drangova,et al.  Prospective respiratory-gated micro-CT of free breathing rodents. , 2005, Medical physics.

[6]  Andrew C Larson,et al.  Self‐gated cardiac cine MRI , 2004, Magnetic resonance in medicine.

[7]  L. Hedlund,et al.  Micro-CT with respiratory and cardiac gating. , 2004, Medical physics.

[8]  Wolfhard Semmler,et al.  Intrinsic Gating for Small-Animal Computed Tomography: A Robust ECG-Less Paradigm for Deriving Cardiac Phase Information and Functional Imaging , 2008, Circulation. Cardiovascular imaging.

[9]  Willi A Kalender,et al.  Kymogram detection and kymogram-correlated image reconstruction from subsecond spiral computed tomography scans of the heart. , 2002, Medical physics.

[10]  Maria Drangova,et al.  Fast Retrospectively Gated Quantitative Four-Dimensional (4D) Cardiac Micro Computed Tomography Imaging of Free-Breathing Mice , 2007, Investigative radiology.

[11]  Graeme C. Mc Kinnon,et al.  Towards Imaging the Beating Heart Usefully with a Conventional CT Scanner , 1981, IEEE Transactions on Biomedical Engineering.

[12]  L. Feldkamp,et al.  Practical cone-beam algorithm , 1984 .

[13]  Wolfhard Semmler,et al.  Retrospective Motion Gating in Small Animal CT of Mice and Rats , 2007, Investigative radiology.

[14]  Willi A Kalender,et al.  A new weighting function to achieve high temporal resolution in circular cone-beam CT with shifted detectors. , 2008, Medical physics.

[15]  Maria Drangova,et al.  Optimization of a retrospective technique for respiratory-gated high speed micro-CT of free-breathing rodents , 2007, Physics in Medicine and Biology.

[16]  S. Kappler,et al.  Local orientation-dependent noise propagation for anisotropic denoising of CT-images , 2009, 2009 IEEE Nuclear Science Symposium Conference Record (NSS/MIC).

[17]  Wolfhard Semmler,et al.  Intrinsic respiratory gating in small-animal CT , 2008, European Radiology.

[18]  G Allan Johnson,et al.  4-D Micro-CT of the Mouse Heart , 2005, Molecular imaging.