快速和简单的C-超极化通过H溶解 动态核极化 随后是直线磁场反转
Quentin Stern1, Quentin Reynard-Feytis1, Stuart J Elliott1,2
1Université Claude Bernard Lyon 1, CRMN UMR-5082, CNRS, ENS Lyon, Villeurbanne 69100 France.
Journal of the American Chemical Society
|December 6, 2023
概括
溶解动态核极化 (dDNP) 现在为实时代谢成像提供更快的1H极化和13C转移. 这种简化的方法在几分钟内实现了显著的两极分化,
科学领域:
- 磁共振光谱学
- 医学成像
- 生物化学
背景情况:
- 溶解动态核极化 (dDNP) 在体内代谢成像中超极化13C代谢物.
- 目前的dDNP方法在1-2小时 (直接) 或20分钟 (通过1H交叉偏振) 实现高13C偏振.
- 1H交叉偏振需要复杂的仪器和熟练的人员.
研究的目的:
- 探索一种替代的,简化的dDNP方法来制备超极化13C代谢物.
- 在液态中实现快速的1H极化和高效的1H到13C极化转移.
主要方法:
- 使用1H dDNP在5-10分钟内实现70%以上的固态极化.
- 在样本转移过程中在液态状态下实现直线的磁场反转.
- 通过在零场的反水平交叉进行1H → 13C偏振转移的杆J合.
主要成果:
- 在大约5 - 10分钟内实现了快速固态1H极化 (> 70%).
- 对于3-13C-pyruvate和13C-formate,已证明液态13C极化率高达17%.
- 所需的额外仪器简单且易于使用传统的dDNP偏振器组装.
结论:
- 这种新的方法显著减少了制备超极化13C代谢物的时间.
- 简化仪器使这种方法在体内应用中更容易使用.
- 通过MRI/NMR更快地实时监测癌细胞代谢.
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