通过从头配体设计改变磁共振造影剂的电子弛豫。

Acta radiologica. Supplementum Pub Date : 1997-01-01
R B Shukla, K Kumar, R Weber, X Zhang, M Tweedle
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引用次数: 0

摘要

通过设计配体框架来改变连接原子与金属之间的振动相互作用,可以增加顺磁性Gd金属在大环配体核内的纵向电子态寿命。我们进行了第一次脉冲EPR研究,证明了电子子系统在低温下纵向状态寿命的增加。我们还设计了一个简单的蔗糖/水模型,该模型显著增加了Gd螯合物溶液中的旋转相关时间。该模型系统能够在环境温度下进行弛豫研究,通过有效地去除旋转相关时间的贡献,更容易询问交换和电子对球内弛豫的贡献。这些结果与水驻留(Q)测量结果相结合,表明大环核心或垂臂的刚性增加了顺磁性Gd金属的纵向电子态寿命。这种寿命的增加可能有助于在蔗糖/水模型研究中观察到的刚性Gd螯合物的弛豫性的改善。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Alteration of electronic relaxation in MR contrast agents through de-novo ligand design.

The longitudinal electronic state lifetime of the paramagnetic Gd metal within a macrocyclic ligand core can be increased by designing ligand frames that alter the vibronic interactions between the ligating atoms and the metal. We conducted the first pulsed EPR studies that demonstrated the increase in the longitudinal state lifetimes of the electronic subsystem at cryogenic temperatures. We also designed a simple sucrose/ water model that significantly increases the rotational correlation time in solution of the Gd chelate. This model system enables relaxivity studies at ambient temperatures that more readily interrogate exchange and electronic contributions to the inner-sphere relaxivity by effectively removing the rotational correlation time contribution. These results combined with water residence (Q) measurements suggest that rigidification of the macrocyclic core or that of the pendant arms increases the longitudinal electronic state lifetime of the paramagnetic Gd metal. This increased lifetime possibly contributes to the improved relaxivity for the rigid Gd chelates observed in the sucrose/ water model studies.

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