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Structure and properties of DOTA-chelated radiopharmaceuticals within the 225Ac decay pathway

机译:225Ac衰变途径中DOTA螯合的放射性药物的结构和性质

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摘要

The successful delivery of toxic cargo directly to tumor cells is of primary importance in targeted (α) particle therapy. Complexes of radioactive atoms with the 1,4,7,10-tetraazacyclododecane-1,4,7,10-tetraacetic acid (DOTA) chelating agent are considered as effective materials for such delivery processes. The DOTA chelator displays high affinity to radioactive metal isotopes and retains this capability after conjugation to tumor targeting moieties. Although the α-decay chains are well defined for many isotopes, the stability of chelations during the decay process and the impact of released energy on their structures remain unknown. The radioactive isotope 225Ac is an α-particle emitter that can be easily chelated by DOTA. However, 225Ac has a complex decay chain with four α-particle emissions during decay of each radionuclide. To advance our fundamental understanding of the consequences of α-decay on the stability of tumor-targeted 225Ac–DOTA conjugate radiopharmaceuticals, we performed first principles calculations of the structure, stability, and electronic properties of the DOTA chelator to the 225Ac radioactive isotope, and the initial daughters in the decay chain, 225Ac, 221Fr, 217At and 213Bi. Our calculations show that the atomic positions, binding energies, and electron localization functions are affected by the interplay between spin–orbit coupling, weak dispersive interactions, and environmental factors. Future empirical measurements may be guided and interpreted in light of these results.
机译:将有毒物质直接成功递送至肿瘤细胞在靶向(α)粒子治疗中至关重要。放射性原子与1,4,7,10-四氮杂环十二烷-1,4,7,10-四乙酸(DOTA)螯合剂的配合物被认为是用于此类递送过程的有效材料。 DOTA螯合剂显示出对放射性金属同位素的高亲和力,并且在与肿瘤靶向部分结合后仍保持这种能力。尽管对于许多同位素都很好地定义了α衰变链,但在衰变过程中螯合的稳定性以及释放的能量对其结构的影响仍然未知。放射性同位素 225 Ac是一种α粒子发射体,很容易被DOTA螯合。但是, 225 Ac具有复杂的衰变链,在每个放射性核素的衰变过程中都有四个α粒子发射。为了进一步了解α衰变对靶向肿瘤的 225 Ac-DOTA共轭放射性药物的稳定性的影响,我们对DOTA的结构,稳定性和电子性质进行了第一性原理计算与 225 Ac放射性同位素螯合,衰变链中的初始子代 225 Ac, 221 Fr, 217 At和 213 Bi。我们的计算表明,原子位置,结合能和电子局部化功能受自旋-轨道耦合,弱色散相互作用和环境因素之间相互作用的影响。可以根据这些结果来指导和解释未来的经验测量。

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