| Literature DB >> 32743728 |
Katerina Nikiforaki1,2, Georgios S Ioannidis3,4, Eleni Lagoudaki5, Georgios H Manikis3,4, Eelco de Bree6, Apostolos Karantanas3,4,7, Thomas G Maris3,4,8, Kostas Marias3,9.
Abstract
BACKGROUND: We investigated a recently proposed multiexponential (Mexp) fitting method applied to T2 relaxometry magnetic resonance imaging (MRI) data of benign and malignant adipocytic tumours and healthy subcutaneous fat. We studied the T2 distributions of the different tissue types and calculated statistical metrics to differentiate benign and malignant tumours.Entities:
Keywords: Lipoma; Liposarcoma; Magnetic resonance imaging; Neoplasms (adipose tissue); Subcutaneous fat
Mesh:
Year: 2020 PMID: 32743728 PMCID: PMC7396415 DOI: 10.1186/s41747-020-00175-0
Source DB: PubMed Journal: Eur Radiol Exp ISSN: 2509-9280
Fig. 1Study workflow
Multiexponential T2 analysis
| Tissue type | Monoexponential/biexponential prevalence (%) | T21 ± SD (ms) | T22 ± SD (ms) | ||
|---|---|---|---|---|---|
| Lipoma | 0.3% monoexponential | – | – | – | – |
| 99.7% biexponential | 319 ± 183 | 41 ± 13 | 630 ± 195 | 205 ± 64 | |
| Well-differentiated liposarcoma | 17.7% monoexponential | 205 ± 95 | 322 ± 139 | – | – |
| 82.3% biexponential | 279 ± 160 | 42 ± 19 | 757 ± 260 | 220 ± 112 | |
| Myxoid liposarcoma | 47.8% monoexponential | 910 ± 134 | 439 ± 79 | – | – |
| 52.2% biexponential | 237 ± 129 | 60 ± 37 | 793 ± 190 | 469 ± 148 | |
| Poorly differentiated liposarcoma | 53.0% monoexponential | 469 ± 237 | 152 ± 102 | – | – |
| 47.0% biexponential | 242 ± 156 | 48 ± 25 | 525 ± 378 | 223 ± 121 | |
| Pleomorphic liposarcoma | 25% monoexponential | 583 ± 99 | 441 ± 154 | – | – |
| 75% biexponential | 285 ± 95 | 38 ± 19 | 678 ± 109 | 263 ± 153 | |
| Adipose tissue | 100% biexponential | 504 ± 69 | 45 ± 13 | 751 ± 147 | 191 ± 21 |
a.u. Arbitrary units, A Relative amplitude of the short T2 component, A Relative amplitude of the long T2 component, SD Standard deviation, T2 Short relaxation time, T2 Long relaxation time
Fig. 2a Whole slice Mexp analysis for a lower limb sarcoma where ROI_1 is indicative for healthy adipose tissue area and ROI_2 corresponds to a malignant region. b–d Mexp-derived spectra for ROI_1 and ROI_2. e T2-weighted images. f, g Whole slice T2i parametric maps
Fig. 3Relative contribution of monoexponential and biexponential behaviour for each tumour subtype
Fig. 4Derived Mexp spectra from purely biexponential tissue samples for subcutaneous fat (a), lipoma (b), and well-differentiated liposarcoma (c)
Fig. 5Per-patient analysis of T2 relaxometry data with inverse Laplace method (a) and Mexp method (b) for five lipoma patients
Fig. 6Derived spectra from mixed monoexponential and biexponential tissue samples for myxoid liposarcoma monoexponential spectrum (a), poorly differentiated liposarcoma monoexponential spectrum (b), pleomorphic liposarcoma monoexponential spectrum (c), myxoid liposarcoma biexponential spectrum (d), poorly differentiated liposarcoma biexponential spectrum (e), and pleomorphic liposarcoma biexponential spectrum (f). exp Exponential
Fig. 7Voxelwise model classification from Mexp for five patients with different histopathologically proven lipomatous neoplasms: benign lipoma (a), well-differentiated liposarcoma (b), myxoid liposarcoma (c), poorly differentiated liposarcoma (d), pleomorphic liposarcoma (e)
Classification analysis
| Statistical metrics | Sensitivity | Specificity |
|---|---|---|
| Mean (% model prevalence) | 0.81 | 1.00 |
| Mean (T21) | 0.85 | 0.77 |
| Standard deviation (T21) | 0.89 | 0.88 |
| 90th percentile of T21 | 0.91 | 0.92 |
| Mean (T22) | 0.87 | 0.81 |
| Standard deviation (T22) | 0.89 | 0.73 |
| 90th percentile of T22 | 0.85 | 0.88 |
T2 Short relaxation time, T2 Long relaxation time