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May 9, 2026Annals of Nuclear Medicine0 citationsOpen Access

Myocardial flow reserve estimation from standardized uptake values of 13N-ammonia imaging with a silicon photomultiplier positron emission tomography/computed tomography system

MKMasateru KawakuboYKYoko KaimotoAYAtsushi Yamamoto

Key Result

The predicted myocardial flow reserve derived from the stress-to-rest left ventricular standardized uptake value ratio achieved an area under the ROC curve of 0.89 for identifying impaired flow reserve.

Key Points

  • To evaluate the feasibility of estimating myocardial flow reserve (MFR) using static standardized uptake values from 13N-ammonia PET imaging.
  • Retrospective analysis of 121 patients who underwent 13N-ammonia PET myocardial perfusion imaging.
  • Calculated stress-to-rest SUV ratios and developed linear regression models for MFR assessment using six-fold cross-validation.
  • Assessed model performance using RMSE and ROC curve analysis to identify MFRs < 2.0.
  • RMSE for predicted MFR was 0.39.
  • Optimal cut-off for predicted MFR was 1.79, achieving an AUC of 0.89 (95% CI: 0.83–0.95).
  • Sensitivity of 75% and specificity of 88% for identifying impaired MFR.

Study Design

Type

Observational (n=121)

Multicenter

Yes

Structured PICO

Does a simplified static SUV-based approach accurately estimate myocardial flow reserve compared to standard methods in patients undergoing 13N-ammonia PET imaging?

P
Population
121 consecutive patients who underwent 13N-ammonia PET myocardial perfusion imaging
I
Intervention
Estimation of myocardial flow reserve (MFR) from static standardized uptake values (SUVs) using a linear regression model
C
Comparator
True MFR values (reference standard)
O
Outcome
Root mean square error (RMSE) between estimated and true MFR values, and diagnostic performance for identifying MFR < 2.0surrogate

A simplified approach using static standardized uptake values from 13N-ammonia PET can accurately estimate myocardial flow reserve, avoiding the need for dynamic acquisition.

Main Result

Effect estimate: AUC 0.89 (95% CI 0.83-0.95)

Limitations

  • SUV measurements were obtained from manually delineated ROIs on a single transverse slice rather than the entire left ventricular myocardium.
  • Manual ROI delineation may introduce operator-dependent variability.
  • The study was conducted in a single-center cohort, limiting assessment of variations across vendors or imaging protocols.
  • MFR alone cannot distinguish whether an abnormal value is driven by impaired hyperemic flow or increased resting flow.

Abstract

Abstract Objective To assess the feasibility of estimating myocardial flow reserve (MFR) from static standardized uptake values (SUVs) derived using stress and rest 13 N-ammonia positron emission tomography (PET) images acquired with a silicon photomultiplier-based PET/computed tomography (CT) system. The goal was to simplify MFR assessment by avoiding dynamic acquisition while maintaining diagnostic accuracy. Methods We retrospectively included 121 consecutive patients who underwent 13 N-ammonia PET myocardial perfusion imaging. The mean SUVs of the left and right ventricles were measured on transverse-axis slices corresponding to the largest cross-sectional area, and the stress-to-rest SUV ratio was calculated. A logarithmic transformation was applied to the MFR, and linear regression models between the log-transformed MFR and the stress-to-rest left ventricular-SUV ratio were developed using six-fold cross-validation across 121 patients. The predicted MFR values from the test folds were then combined to evaluate model performance across all patients with a comparable MFR distribution. Model performance was assessed using the root mean square error (RMSE) between the estimated and true MFR values, and the diagnostic performance for identifying MFRs < 2.0 by receiver operating characteristic (ROC) curve analysis with 95% confidence intervals. Results The RMSE of the predicted MFR calculated using the linear regression model was 0.39. Using an optimal cut-off value of 1.79 for the predicted MFR, the model achieved an area under the ROC curve of 0.89 (95% confidence interval: 0.83–0.95), with a sensitivity of 75% and a specificity of 88%. The proposed simplified SUV-based approach exhibited clinically acceptable error for MFR estimation and could effectively identify patients with an impaired MFR. Conclusion This method may facilitate quantitative MFR assessment in clinical settings where dynamic PET protocols or dedicated software are not available, thereby broadening access to physiological evaluation of myocardial perfusion.

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Cite This Study

Kawakubo et al. (2026) conducted an observational in Patients undergoing myocardial blood flow imaging (n=121). Myocardial flow reserve (MFR) estimation from static standardized uptake values (LV-SUV ratio) vs. True MFR derived from dynamic PET kinetic modeling was evaluated on Diagnostic performance (AUC) for identifying impaired MFR (< 2.0) (AUC 0.89, 95% CI 0.83-0.95). The predicted myocardial flow reserve derived from the stress-to-rest left ventricular standardized uptake value ratio achieved an area under the ROC curve of 0.89 for identifying impaired flow reserve.

synapsesocial.com/papers/69fed0e2b9154b0b82877f88https://doi.org/10.1007/s12149-026-02219-8
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