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Published on: May 19, 2023
Calibration of myocardial T2 and T1 against iron concentration
Insights
Myocardial T2 measurements correlate with iron concentration, offering potential for improved diagnosis of myocardial siderosis. T1 measurements were less reliable due to formalin effects, suggesting in-vivo studies are needed for T1 calibration.
Area of Science:
- Cardiovascular Magnetic Resonance (CMR)
- Biomedical Engineering
- Medical Imaging
Background:
- T2* cardiovascular magnetic resonance (CMR) is established for myocardial iron assessment.
- Limited data exists on T1 and T2 relaxation parameters for quantifying myocardial iron.
Purpose of the Study:
- To assess the correlation between ex-vivo myocardial T1 and T2 relaxation times and iron concentration.
- To evaluate the potential of T1 and T2 as biomarkers for myocardial iron loading.
Main Methods:
- Ex-vivo R1 (1/T1) and R2 (1/T2) measurements were performed on 12 human hearts at 1.5 Tesla.
- Relaxation measurements were compared with myocardial iron concentration determined by inductively coupled plasma atomic emission spectroscopy.
Main Results:
- Myocardial T2 showed a significant correlation with iron concentration (LnR2 vs Ln[Fe], R2=0.790, p<0.001).
- A formula was derived: [Fe] = 5081•(T2)⁻².²².
- Ex-vivo T1 measurements were unreliable due to formalin-induced T1 shortening, especially in samples stored long-term.
Conclusions:
- Myocardial T2 relaxation time is a reliable correlate of myocardial iron concentration.
- T2 may offer additive diagnostic value to T2* for myocardial siderosis.
- In-vivo human studies are necessary for reliable T1 calibration due to ex-vivo formalin effects.
Background:
The assessment of myocardial iron using T2* cardiovascular magnetic resonance (CMR) has been validated and calibrated, and is in clinical use. However, there is very limited data assessing the relaxation parameters T1 and T2 for measurement of human myocardial iron.
Methods:
Twelve hearts were examined from transfusion-dependent patients: 11 with end-stage heart failure, either following death (n=7) or cardiac transplantation (n=4), and 1 heart from a patient who died from a stroke with no cardiac iron loading. Ex-vivo R1 and R2 measurements (R1=1/T1 and R2=1/T2) at 1.5 Tesla were compared with myocardial iron concentration measured using inductively coupled plasma atomic emission spectroscopy.
Results:
From a single myocardial slice in formalin which was repeatedly examined, a modest decrease in T2 was observed with time, from mean (± SD) 23.7 ± 0.93 ms at baseline (13 days after death and formalin fixation) to 18.5 ± 1.41 ms at day 566 (p<0.001). Raw T2 values were therefore adjusted to correct for this fall over time. Myocardial R2 was correlated with iron concentration [Fe] (R2 0.566, p<0.001), but the correlation was stronger between LnR2 and Ln[Fe] (R2 0.790, p<0.001). The relation was [Fe] = 5081•(T2)-2.22 between T2 (ms) and myocardial iron (mg/g dry weight). Analysis of T1 proved challenging with a dichotomous distribution of T1, with very short T1 (mean 72.3 ± 25.8 ms) that was independent of iron concentration in all hearts stored in formalin for greater than 12 months. In the remaining hearts stored for <10 weeks prior to scanning, LnR1 and iron concentration were correlated but with marked scatter (R2 0.517, p<0.001). A linear relationship was present between T1 and T2 in the hearts stored for a short period (R2 0.657, p<0.001).
Conclusion:
Myocardial T2 correlates well with myocardial iron concentration, which raises the possibility that T2 may provide additive information to T2* for patients with myocardial siderosis. However, ex-vivo T1 measurements are less reliable due to the severe chemical effects of formalin on T1 shortening, and therefore T1 calibration may only be practical from in-vivo human studies.
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