| Literature DB >> 32095938 |
K Lance Gould1,2,3, Linh Bui4,5, Danai Kitkungvan4,5, Tinsu Pan6,5, Amanda E Roby7,5, Tung T Nguyen8,5, Nils P Johnson9,5.
Abstract
BACKGROUND: PET quantitative myocardial perfusion requires correction for partial volume loss due to one-dimensional LV wall thickness smaller than scanner resolution.Entities:
Keywords: ACR or NEMA PET phantoms; Cardiac positron emission tomography (PET); coronary flow reserve; partial volume correction; quantitative myocardial perfusion
Year: 2020 PMID: 32095938 PMCID: PMC7174249 DOI: 10.1007/s12350-020-02073-9
Source DB: PubMed Journal: J Nucl Cardiol ISSN: 1071-3581 Impact factor: 5.952
Figure 1Schema of LV wall with partial volume activity loss due to LV wall thickness during cardiac cycle averaging approximately 15mm, whereas circumferential (Circ) and longitudinal dimensions (Long) are larger than scanner resolution thereby not contributing to partial volume loss
Figure 2Tomographic images of three phantoms (A) One-dimensional tree phantom with branch widths < 20 mm and other dimensions > 20 mm. (B) Two-dimensional ACR phantom rods with two equal radii some of which are < 20 mm and rod length > 20 mm. (C) Three-dimensional NEMA phantom spheres with three equal radii some of which are < 20 mm
PV loss for 2D GE DST PET-CT with F-18 and Rb-82 in Tree, ACR, NEMA phantoms
| Phantom | Tree one dimension 15mm | ACR two dimensions 16mm | NEMA 3 dimensions 17mm |
|---|---|---|---|
| F-18 PV loss | 0.94 | 0.85 | 0.72 |
| Rb-82 PV loss | 0.90 | 0.73 | 0.59 |
Figure 3Plots of fractional relative activity recovery for approximately comparable dimensions of three phantoms for Rb-82 (A) and F-18 (B)
Rest and stress perfusion, CFR with partial volume corrections based on 1D, 2D, and 3D phantoms (N = 186) using Rb-82
| PET Metric | Tree 1D stand PVC 0.9 | ACR 2D PVC 0.73 | NEMA 3D PVC 0.59 |
|---|---|---|---|
| Rest cc/min/g | 0.78±0.07 | 1.20±0.16 | 1.81±0.33 |
| Stress cc/min/g | 1.35±0.22 | 2.00±0.42 | 2.89±0.76 |
| CFR | 1.82±0.46 | 1.78±0.43 | 1.70±0.36 |
Paired T test between all columns for each row P < 0.000001
PVC, Partial volume correction; CFR, coronary flow reserve
Figure 4Coronary Flow Capacity for one PET case with perfusion and CFC map determined using (A) standard one-dimensional PV correction (tree phantom) compared to using PV corrections derived from ACR (B) and NEMA (C) phantoms with Kolmogorov–Smirnov cumulative histogram plots and statistic (D). PV corrections derived from ACR and NEMA phantomst are expressed as percent increase over the one-dimensional PV correction derived from the tree phantom (E)
Figure 5Changes in Coronary Flow Capacity (CFC) due to PV corrections derived from the 1D tree phantom, the 2D ACR rods, and 3D NEMA spheres using MACE over 10-year follow-up as the outcome defined reference of severity for 3987 PET cases without (3800) and with MACE after PET (187). The cumulative histograms and Kolmogorov–Smirnov statistic for CFC of the MACE group based on perfusion using standard one-dimensional PV correction of the tree phantom (solid line) is higher and leftward indicating much worse CFC size-severity compared to the no MACE group (solid line with circles). For larger PV corrections derived from two-dimensional ACR rods (triangles with dashed line) and three-dimensional NEMA spheres (squares with dash dot line), histogram size-severity distribution of PET with MACE shifts downwards and rightwards towards the normal range for PETs with no MACE for PV corrections based on ACR (dashed line with triangles) or NEMA phantoms (dashed-dot line with squares line with triangles) that are uncorrected to 1D PV by our simple formula. For the NO MACE group with PV corrections based on 2D ACR or 3D NEMA PV loss, the CFC size-severity histogram distributions as % of LV are also shifted downward and rightward toward larger % of LV in the high flow red (normal) or orange (minimally reduced) range and hence of no clinical consequence compared to the 1D PV corrections for the MACE group, hence not shown
Fig. 6Fractional relative activity recovery for GE DSTE (A), D710 (B), DMic (C), and for three 3D PET-CT scanners (D) for 10mm, 15mm, and ≥ 20mm of one-dimensional tree phantom, two-dimensional ACR rods, and three-dimensional NEMA spheres filled with F-18