使用“止流”临床级无低温超偏振器连续输送超极化氙-129气体

IF 6.7 1区 化学 Q1 CHEMISTRY, ANALYTICAL
Md Raduanul H. Chowdhury, Clementinah Oladun, Firoz Ahmed, Nuwandi M. Ariyasingha, Abubakar Abdurraheem, Faisal Asif, Joseph Gyesi, Panayiotis Nikolaou, Michael J. Barlow, Anton Shcherbakov, Nathan A. Rudman, Ivan J. Dmochowski, Boyd M. Goodson, Eduard Y. Chekmenev
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引用次数: 0

摘要

2022年,FDA批准超极化(HP) 129Xe气体作为肺功能成像的可吸入造影剂。对于临床成像,HP 129Xe通常作为丸剂吸入。然而,对于临床前应用(例如,小型啮齿动物的肺部成像),HP 129Xe的连续输送是非常需要的,以便在动物生理连续呼吸模式的条件下进行MRI扫描。此外,HP 129Xe气体可用于其他应用,包括材料科学和生物分析化学,在这些应用中,超极化气体在几分钟内连续流过核磁共振样品,也需要在核磁共振光谱仪内检测129Xe。129Xe通常使用连续流自旋交换光泵浦进行超极化,该泵浦使用少量(1-2%)Xe和载气(例如He和N2)的混合物。产出物中的低Xe浓度降低了核磁共振检测的灵敏度,因此,在给药到样品或受试者之前,通常采用Xe冷冻收集来获得接近100%的纯气相Xe。然而,低温收集的需要破坏了连续流生产的一个关键优势,即超偏振器中连续流动的HP 129Xe气体被困在超偏振器中,生产的HP 129Xe气体在生产周期(30-60分钟)完成后立即释放。另一种HP 129Xe生产技术采用“停流”方法,将一批HP气体随着时间的推移进行超极化,并迅速从超极化器中释放出来。在这里,一个临床规模的“停止流动”129Xe超偏振器被用来在一个超长寿命的HP 129Xe状态(T1 >;产生的HP 129Xe气体通过PEEK管缓慢输送到5毫米核磁共振管中,气体流速范围很广:3-180标准立方厘米/分钟(sccm)。使用原位低场核磁共振偏振法定量了从超偏振器喷射出的气体的偏振,并使用0.35 T临床MRI扫描仪进行了验证。在2.5 m长的PEEK油管上,以45-150 sccm的气体流速连续输送HP 129Xe长达15分钟,129Xe极化损失很小。这些观察结果还得到了用于气体输送的PEEK管内129Xe松弛测量和用于偏振测量的5mm核磁共振管的支持。从“偏振器内”的129Xe极化率为19%开始,输送气体的129Xe极化率为16-19%。我们设想这种方法可以用于使用“停止流动”129Xe超偏振器按需无低温输送超极化气体,用于广泛的应用,从临床前成像到生物传感器,以及材料表面的光谱学。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Continuous Delivery of Hyperpolarized Xenon-129 Gas Using a “Stopped-Flow” Clinical-Scale Cryogen-Free Hyperpolarizer

Continuous Delivery of Hyperpolarized Xenon-129 Gas Using a “Stopped-Flow” Clinical-Scale Cryogen-Free Hyperpolarizer
In 2022, the FDA approved hyperpolarized (HP) 129Xe gas as an inhalable contrast agent for functional lung imaging. For clinical imaging, HP 129Xe is usually given as a bolus inhalation. However, for preclinical applications (e.g., pulmonary imaging in small rodents), the continuous delivery of HP 129Xe is greatly desired to enable MRI scanning under conditions of physiological continuous animal breathing patterns. Moreover, HP 129Xe gas can be utilized for other applications including materials science and bioanalytical chemistry, where a continuous flow of hyperpolarized gas through an NMR sample over several minutes is also desired for sensing of 129Xe inside an NMR spectrometer. 129Xe is often hyperpolarized using continuous-flow spin-exchange optical pumping, which employs a lean (1–2%) mixture of Xe and a carrier gas (e.g., He and N2). The low Xe concentration in the produced output reduces the NMR detection sensitivity, and thus, Xe cryo-collection is typically employed to achieve near-100% pure gas-phase Xe before administration to the sample or subject. However, the need for cryo-collection undermines a key advantage of continuous-flow production, i.e., the continuous flowing in a hyperpolarizer HP 129Xe gas is trapped inside the hyperpolarizer, and the produced HP 129Xe gas is released at once when the production cycle (30–60 min) is completed. An alternative HP 129Xe production technology employs a “stopped-flow” approach, where a batch of HP gas is hyperpolarized over time and quickly released from a hyperpolarizer. Here, a clinical-scale “stopped-flow” 129Xe hyperpolarizer was employed to hyperpolarize a 1.3 L-atm batch of 50:50 Xe:N2 gas mixture inside a glass cell with an ultralong lifetime of the HP 129Xe state (T1 > 2 h). The produced HP 129Xe gas was slowly delivered into a 5 mm NMR tube via PEEK tubing under a wide range of gas flow rates: 3–180 standard cubic centimeters per minute (sccm). The polarization of the gas ejected from the hyperpolarizer was quantified using in situ low-field NMR polarimetry and additionally verified using a 0.35 T clinical MRI scanner. Continuous-flow delivery of HP 129Xe was demonstrated for up to 15 min with a gas flow rate of 45–150 sccm over a 2.5-m length of PEEK tubing, suffering only small losses in 129Xe polarization. These observations are additionally supported by 129Xe relaxation measurements inside the PEEK tubing employed for gas delivery and the 5 mm NMR tube employed for polarimetry. 129Xe polarization of 16–19% was obtained in the delivered gas, starting with an “in-polarizer” 129Xe polarization of 19%. We envision that this method can be employed for on-demand cryogen-free delivery of hyperpolarized gas using “stopped-flow” 129Xe hyperpolarizers for a broad range of applications, from preclinical imaging to biosensors, and to spectroscopy of materials surfaces.
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来源期刊
Analytical Chemistry
Analytical Chemistry 化学-分析化学
CiteScore
12.10
自引率
12.20%
发文量
1949
审稿时长
1.4 months
期刊介绍: Analytical Chemistry, a peer-reviewed research journal, focuses on disseminating new and original knowledge across all branches of analytical chemistry. Fundamental articles may explore general principles of chemical measurement science and need not directly address existing or potential analytical methodology. They can be entirely theoretical or report experimental results. Contributions may cover various phases of analytical operations, including sampling, bioanalysis, electrochemistry, mass spectrometry, microscale and nanoscale systems, environmental analysis, separations, spectroscopy, chemical reactions and selectivity, instrumentation, imaging, surface analysis, and data processing. Papers discussing known analytical methods should present a significant, original application of the method, a notable improvement, or results on an important analyte.
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