Institut für Anorganische Chemie, Eberhard Karls Universität Tübingen, Auf der Morgenstelle 18, 72076 Tübingen, Germany.
Inorg Chem. 2010 Jul 5;49(13):6124-38. doi: 10.1021/ic1007395.
Two macrocyclic ligands, 1,4,7,10-tetraazacyclododecane-1-glutaric-4,7,10-triacetic acid (H(5)DOTAGA) and the novel 1,4,7,10-tetraazacyclododecane-1-(4-(carboxymethyl)benzoic)-4,7,10-triacetic acid (H(5)DOTABA), were prepared and their lanthanide complexes (Ln = Gd(3+), Y(3+)) attached to an amino-functionalized T(8)-silsesquioxane. The novel compounds Gadoxane G (GG) and Gadoxane B (GB) possess eight monohydrated lanthanide complexes each, as evidenced by multinuclear ((1)H, (13)C, (29)Si) NMR spectroscopy and high resolution mass spectrometry (HR-MS). Pulsed-field gradient spin echo (PGSE) diffusion (1)H NMR measurements revealed hydrodynamic radii of 1.44 nm and global rotational correlation times of about 3.35 ns for both compounds. With regard to potential MRI contrast agent applications, a variable-temperature (17)O NMR and (1)H nuclear magnetic relaxation dispersion (NMRD) study was carried out on aqueous solutions of the gadolinium(III) complexes of the Gadoxanes and the corresponding monomeric ligands to yield relevant physicochemical properties. The water exchange rates of the inner-sphere water molecules are all very similar (k(ex)(298) between (5.3 +/- 0.5) x 10(6) s(-1) and (5.9 +/- 0.3) x 10(6) s(-1)) and only slightly higher than that reported for the gadolinium(III) complex of 1,4,7,10-tetraazacyclododecane-1,4,7,10-tetraacetic acid (H(4)DOTA) (k(ex)(298) = 4.1 x 10(6) s(-1)). Despite their almost identical size and their similar water exchange rates, GB shows a significantly higher longitudinal relaxivity than GG over nearly the whole range of magnetic fields (e.g., 17.1 mM(-1) s(-1) for GB and 12.1 mM(-1) s(-1) for GG at 20 MHz and 25 degrees C). This difference arises from their different local rotational correlation times (tau(lR)(298) = 240 +/- 10 ps and 380 +/- 20 ps, respectively), because of the higher rigidity of the phenyl ring of GB as compared to the ethylene spacer of GG. A crucial feature of these novel compounds is the lability of the silsesquioxane core in aqueous media. The hydrolysis of the Si-O-Si moieties was investigated by (29)Si NMR and PGSE diffusion (1)H NMR spectroscopy, electrospray ionization mass spectrometry (ESI-MS), as well as by relaxivity measurements. Although frozen aqueous solutions (pH 7.0) of GG and GB can be stored at -28 degrees C for at least 10 months without any decomposition, with increasing temperature and pH the hydrolysis of the silsesquioxane core was observed (e.g., t(1/2) = 15 h at pH 7.4 and 55 min at pH 8.1 for GG at 37 degrees C). No change in relaxivity was detected within the first 3 h, since the hydrolysis of the initial Si-O-Si moieties has no influence on the rotational correlation time. However, the further hydrolysis of the silsesquioxane core leads to smaller fragments and therefore to a decrease in relaxivity.
两种大环配体,1,4,7,10-四氮杂环十二烷-1- 戊二酸-4,7,10-三乙酸(H(5)DOTAGA)和新型 1,4,7,10-四氮杂环十二烷-1-(4-(羧甲基)苯甲酸)-4,7,10-三乙酸(H(5)DOTABA)被制备出来,并将其镧系元素配合物(Ln = Gd(3+),Y(3+))附着在氨基功能化的 T(8)-硅倍半氧烷上。新型化合物 Gadoxane G(GG)和 Gadoxane B(GB)各自具有八个单水合镧系元素配合物,这一点通过多核(1H,13C,29Si)NMR 光谱和高分辨率质谱(HR-MS)证明。脉冲梯度场回波(PGSE)扩散(1)H NMR 测量显示两种化合物的流体力学半径均为 1.44nm,整体旋转相关时间约为 3.35ns。关于潜在的 MRI 对比剂应用,在水溶液中对 Gadoxanes 和相应单体配体的镧系元素(III)配合物进行了变温(17)O NMR 和(1)H 核磁共振弛豫分散(NMRD)研究,以获得相关的物理化学性质。内球水分子的水交换速率非常相似(k(ex)(298)在(5.3 +/- 0.5)x 10(6)s(-1)和(5.9 +/- 0.3)x 10(6)s(-1)之间),仅略高于报道的 1,4,7,10-四氮杂环十二烷-1,4,7,10-四乙酸(H(4)DOTA)的镧系元素(III)配合物的水交换速率(k(ex)(298)= 4.1x 10(6)s(-1))。尽管它们的尺寸几乎相同,并且水交换速率相似,但 GB 在几乎整个磁场范围内(例如,在 20MHz 和 25°C 时,GB 为 17.1mM(-1)s(-1),而 GG 为 12.1mM(-1)s(-1))的纵向弛豫率明显高于 GG。这种差异源于它们不同的局部旋转相关时间(tau(lR)(298)= 240 +/- 10ps 和 380 +/- 20ps,分别),因为与 GG 的亚乙基间隔基相比,GB 的苯环具有更高的刚性。这些新型化合物的一个关键特征是在水性介质中硅倍半氧烷核的不稳定性。通过(29)Si NMR 和 PGSE 扩散(1)H NMR 光谱、电喷雾电离质谱(ESI-MS)以及弛豫率测量研究了 Si-O-Si 部分的水解。尽管 GG 和 GB 的冷冻水溶液(pH7.0)可以在-28°C 下至少储存 10 个月而不会发生任何分解,但随着温度和 pH 值的升高,硅倍半氧烷核的水解被观察到(例如,在 37°C 下,pH7.4 时的 t(1/2)为 15h,pH8.1 时的 t(1/2)为 55min)。在最初的 3 小时内没有检测到弛豫率的变化,因为最初的 Si-O-Si 部分的水解对旋转相关时间没有影响。然而,硅倍半氧烷核的进一步水解会导致更小的碎片,从而导致弛豫率降低。