一种数据驱动的方法,用于改进超极化[1-13C]丙酮酸体内代谢转化率的量化。

IF 3 3区 医学 Q2 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING
Yaewon Kim, Tanner M. Nickles, Philip M. Lee, Robert A. Bok, Jeremy W. Gordon, Peder E. Z. Larson, Daniel B. Vigneron, Cornelius von Morze, Michael A. Ohliger
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引用次数: 0

摘要

目的:在超极化(HP) 13C MRI中准确定量代谢对临床应用至关重要。然而,动力学模型参数经常被射频翻转角和其他模型参数的不确定性所混淆。方法:提出了一种数据驱动的HP 13c -丙酮酸酯MRI动力学拟合方法,以补偿B1 +场的不确定性。我们假设在翻转角中引入一个比例因子以最小化拟合残差将允许更准确地测定丙酮酸-乳酸转化率(kPL)。在不同条件下(翻转角度、kPL和T1松弛)进行数值模拟,并使用HP 13c -丙酮酸MRI对大鼠肝脏和肾脏进行进一步测试。结果:仿真结果表明,当规定的翻转角度与实际翻转角度相差60%时,所提出的方法将kPL误差从60%降低到1%。该方法还显示出对T1不确定性的稳健性,即使假设T1不正确高达2倍,kPL误差中位数也在±3%以内。在大鼠研究中,与未进行校正时相比,使用该方法可以获得更好的乳酸信号拟合质量(乳酸拟合的均方根误差[RMSE]降低1.4倍)和更紧密的kPL分布(kPL标准差平均降低3.1倍)。结论:数据驱动的动力学拟合方法提供了一种在B1 +不均匀性存在下准确量化HP 13c -丙酮酸代谢的方法。该模型也可用于校正其他误差来源,如T1松弛和血流,并可能在改善肿瘤分期或评估治疗反应方面具有临床价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A data-driven approach for improved quantification of in vivo metabolic conversion rates of hyperpolarized [1-13C]pyruvate

A data-driven approach for improved quantification of in vivo metabolic conversion rates of hyperpolarized [1-13C]pyruvate

Purpose

Accurate quantification of metabolism in hyperpolarized (HP) 13C MRI is essential for clinical applications. However, kinetic model parameters are often confounded by uncertainties in radiofrequency flip angles and other model parameters.

Methods

A data-driven kinetic fitting approach for HP 13C-pyruvate MRI was proposed that compensates for uncertainties in the B1+ field. We hypothesized that introducing a scaling factor to the flip angle to minimize fit residuals would allow more accurate determination of the pyruvate-to-lactate conversion rate (kPL). Numerical simulations were performed under different conditions (flip angle, kPL, and T1 relaxation), with further testing using HP 13C-pyruvate MRI of rat liver and kidneys.

Results

Simulations showed that the proposed method reduced kPL error from 60% to 1% when the prescribed and actual flip angles differed by 60%. The method also showed robustness to T1 uncertainties, achieving median kPL errors within ±3% even when the assumed T1 was incorrect by up to a factor of 2. In rat studies, better-quality fitting for lactate signals (a 1.4-fold decrease in root mean square error [RMSE] for lactate fit) and tighter kPL distributions (an average of 3.1-fold decrease in kPL standard deviation) were achieved using the proposed method compared with when no correction was applied.

Conclusion

The proposed data-driven kinetic fitting approach provided a method to accurately quantify HP 13C-pyruvate metabolism in the presence of B1+ inhomogeneity. This model may also be used to correct for other error sources, such as T1 relaxation and flow, and may prove to be clinically valuable in improving tumor staging or assessing treatment response.

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来源期刊
CiteScore
6.70
自引率
24.20%
发文量
376
审稿时长
2-4 weeks
期刊介绍: Magnetic Resonance in Medicine (Magn Reson Med) is an international journal devoted to the publication of original investigations concerned with all aspects of the development and use of nuclear magnetic resonance and electron paramagnetic resonance techniques for medical applications. Reports of original investigations in the areas of mathematics, computing, engineering, physics, biophysics, chemistry, biochemistry, and physiology directly relevant to magnetic resonance will be accepted, as well as methodology-oriented clinical studies.
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