King's College London, School of Biomedical Engineering and Imaging Sciences, St Thomas' Hospital, London SE1 7EH, UK.
Dalton Trans. 2019 Mar 26;48(13):4299-4313. doi: 10.1039/c8dt04454f.
The prototype tris(1,6-dimethyl-3-hydroxypyridin-4-one) chelator for gallium-68, THPMe, has shown great promise for rapid and efficient kit-based 68Ga labelling of PET radiopharmaceuticals. Peptide derivatives of THPMe have been used to image expression of their target receptors in vivo in preclinical and clinical studies. Herein we describe new synthetic routes to the THP platform including replacing the 1,6-dimethyl-3-hydroxypyridin-4-one N1-CH3 group of THPMe with O (tris(6-methyl-3-hydroxypyran-4-one, THPO) and N1-H (tris(6-methyl-3-hydroxypyridin-4-one), THPH) groups. The effect of these structural modifications on lipophilicity, gallium binding and metal ion selectivity was investigated. THPH was able to bind 68Ga in extremely mild conditions (5 min, room temperature, pH 6, 1 μM ligand concentration) and, notably, in vivo, when administered to a mouse previously injected with 68Ga acetate. The 67Ga radiolabelled complex was stable in serum for more than 7 days. [68Ga(THPH)] displayed a log P value of -2.40 ± 0.02, less negative than the log P = -3.33 ± 0.02 measured for [68Ga(THPMe)], potentially due to an increase in intramolecular hydrogen bonding attributable to the N1-H pyridinone units. Spectrophotometric determination of the Ga3+/Fe3+ complex formation constants for both THPMe and THPH revealed their preference for binding Ga3+ over Fe3+, which enabled selective labelling with 68Ga3+ in the presence of a large excess of Fe3+ in both cases. Compared to THPMe, THPH showed significantly reduced affinity for Fe3+, increased affinity for Ga3+ and improved radiolabelling efficiency. THPO was inferior to both THPH and THPMe in terms of labelling efficiency, but its benzylated precursor Bn-THPO (tris(6-methyl-3-benzyloxypyran-4-one)) provides a potential platform for the synthesis of a library of THP compounds with tunable chemical properties and metal preferences.
用于 68Ga 标记 PET 放射性药物的快速、高效试剂盒的原型三(1,6-二甲基-3-羟基吡啶-4-酮)螯合剂 THPMe 表现出巨大的潜力。THPMe 的肽衍生物已被用于在临床前和临床研究中体内成像其靶受体的表达。本文描述了 THP 平台的新合成途径,包括用 O(三(6-甲基-3-羟基吡喃-4-酮,THPO)和 N1-H(三(6-甲基-3-羟基吡啶-4-酮)取代 THPMe 的 1,6-二甲基-3-羟基吡啶-4-酮 N1-CH3 基团,THPH)。研究了这些结构修饰对亲脂性、镓结合和金属离子选择性的影响。THPH 能够在非常温和的条件下(5 分钟,室温,pH6,1μM 配体浓度)结合 68Ga,值得注意的是,当给予先前注射过 68Ga 醋酸盐的小鼠时,在体内也能结合 68Ga。67Ga 标记的络合物在血清中超过 7 天稳定。[68Ga(THPH)]的 logP 值为-2.40±0.02,小于-3.33±0.02,这可能是由于 N1-H 吡啶酮单元增加了分子内氢键,从而导致亲脂性降低。用分光光度法测定 THPMe 和 THPH 的 Ga3+/Fe3+络合物形成常数表明,它们优先与 Ga3+结合,而不是 Fe3+,这使得在两种情况下,即使存在大量 Fe3+,也能选择性地用 68Ga3+标记。与 THPMe 相比,THPH 对 Fe3+的亲和力显著降低,对 Ga3+的亲和力增加,标记效率提高。THPO 的标记效率不如 THPH 和 THPMe,但它的苄基前体 Bn-THPO(三(6-甲基-3-苄氧基吡喃-4-酮))为合成具有可调化学性质和金属偏好的 THP 化合物库提供了一个潜在的平台。