Machado Julyana R, Baniodeh Amer, Powell Annie K, Luy Burkhard, Krämer Steffen, Guthausen Gisela
Pro2NMR at the Institute -for Biological Interfaces, Karlsruhe Institute of Technology, Adenauerring 20b, 76131 Karlsruhe (Germany).
Chemphyschem. 2014 Nov 10;15(16):3608-13. doi: 10.1002/cphc.201402318. Epub 2014 Aug 12.
Paramagnetic relaxation enhancement is often explored in magnetic resonance imaging in terms of contrast agents and in biomolecular nuclear magnetic resonance (NMR) spectroscopy for structure determination. New ultrahigh-spin clusters are investigated with respect to their NMR relaxation properties. As their molecular size and therefore motional correlation times as well as their electronic properties differ significantly from those of conventional contrast agents, questions about a comprehensive characterization arise. The relaxivity was studied by field-dependent longitudinal and transverse NMR relaxometry of aqueous solutions containing Fe(III)(10)Dy(III)(10) ultrahigh-spin clusters (spin ground state 100/2). The high-field limit was extended to 32.9 T by using a 24 MW resistive magnet and an ultrahigh-frequency NMR setup. Interesting relaxation dispersions were observed; the relaxivities increase up to the highest available fields, which indicates a complex interplay of electronic and molecular correlation times.
顺磁弛豫增强通常在磁共振成像中用于造影剂方面的研究,以及在生物分子核磁共振(NMR)光谱中用于结构测定。人们对新型超高自旋簇的NMR弛豫特性进行了研究。由于它们的分子大小以及因此产生的运动相关时间和电子性质与传统造影剂有显著差异,因此出现了关于全面表征的问题。通过对含有Fe(III)(10)Dy(III)(10)超高自旋簇(自旋基态100/2)的水溶液进行场依赖纵向和横向NMR弛豫测量来研究弛豫率。通过使用24 MW的电阻磁体和超高频率NMR装置,将高场极限扩展到了32.9 T。观察到了有趣的弛豫色散;弛豫率在可用的最高场强下仍会增加,这表明电子和分子相关时间之间存在复杂的相互作用。