首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Spin-lattice relaxation of laser-polarized xenon in human blood
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Spin-lattice relaxation of laser-polarized xenon in human blood

机译:人血中激光偏振氙的自旋晶格弛豫

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摘要

The nuclear spin polarization of ~129xE can be enhanced by several orders of magnitude by using optical pumping techniques. The increased sensitivity of xenon NMR has allowed imaging of lungs as well as other in vivo appli- cations. The most critical parameter for efficient delivery of laser- polarized xenon to blood and tissues is the spin-lattice relaxation time (Ti) of xenon in blood. In this work, the relaxation of laser-polarized xenon in human blood is measured in vitro as a function of blood oxygenation. Interactions with dissolved oxygen and with deoxyhemoglobin are found to contribute to the spin-lattice relaxation time of ~129Xe in blood, the latter interaction having greater effect. Consequently, relaxation times of ~129Xe in deoxygenated blood are shorter than in oxygenated blood. In samples with oxygenation equivalent to arterial and venous blood, the ~129Xe T1s at 37 degrees C and a magnetic field of l.5 T were 6.4 s + - 0.5 s and 4.0 s + - 0.4 s, respectively. The ~129Xe spin-lattice relaxation time in blood decreases at lower temperatures, but the ratio of Ti in oxy- genated blood to that in deoxygenated blood is the same at 37 degrees C and 25 degrees C. A competing ligand has been used to show that xenon binding to albumin contributes to the 129Xe spin-lattice relaxation in blood plasma. This technique is promising for the study or xenon interactions with macromolecules.
机译:通过使用光泵浦技术,可以将〜129xE的核自旋极化增强几个数量级。氙NMR灵敏度的提高使肺部以及其他体内应用成像。有效地将激光偏振氙气输送到血液和组织的最关键参数是血液中氙气的自旋晶格弛豫时间(Ti)。在这项工作中,人体血液中激光偏振氙的弛豫是在体外根据血液氧合作用测量的。发现与溶解氧和脱氧血红蛋白的相互作用有助于血液中〜129Xe的自旋晶格弛豫时间,后者的相互作用具有更大的作用。因此,脱氧血液中的〜129Xe弛豫时间比含氧血液中的弛豫时间短。在含氧量等于动脉和静脉血的样品中,在37摄氏度下的〜129Xe T1s和1.5 T的磁场分别为6.4 s +-0.5 s和4.0 s +-0.4 s。在较低的温度下,血液中〜129Xe的自旋晶格弛豫时间减少,但是在37摄氏度和25摄氏度时,含氧血液中的Ti与脱氧血液中的Ti的比例相同。氙与白蛋白的结合有助于血浆中129Xe自旋晶格的弛豫。该技术有望用于氙或与大分子的相互作用。

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