Bender Aidan A, Holiski Connor K, Embree Mary, Hennkens Heather M, Klaehn John R, Lundgreen Ellie, Roberts Andrew G, Zalupski Peter R, Mastren Tara
Nuclear Engineering Program, University of Utah 110 Central Campus Dr. Suite 2000B Salt Lake City UT 84112 USA
University of Missouri Research Reactor Columbia MO 65211 USA.
Sens Diagn. 2024 Oct 24;4(1):35-43. doi: 10.1039/d4sd00221k. eCollection 2025 Jan 16.
Theranostics is a field of nuclear medicine which uses the same targeting vector and chelating system for both a diagnostic and therapeutic radionuclide, allowing for uniformity in imaging and treatment. This growing field requires the development of more flexible chelate systems that permit novel targeting strategies. Toward this end, a multimodal architecture has been realized, making use of a phosphazene-based core and click chemistry to achieve a flexible and customizable scaffold. The six arm phosphazene-based core can scaffold six DTPA chelating motifs or a mixed set of 3 : 3 DTPA : DFO chelates resulting in two multimodal compounds, pDbDt and pDbDtDf, respectively. Terbium complexes displayed strong luminescence, supporting that the structures act as an organic antenna for luminescence. Metal displacement titration studies confirmed the desired structures as well as the capability for heterometallic labeling of the structures. These structures were found to have high thermal and biological stability . Radiolabeling of each compound resulted in high molar activity labeling of each compound: 169 MBq nmol: [Tb]Tb-pDbDt, 170 MBq nmol: [Zr]Zr-pDbDtDf, and the mixed radiolabeling illustrated chelation of both radionuclides in a 1 : 1 ratio. This multimodal architecture is promising as a heterometallic structure for coupling of both a diagnostic and a therapeutic radionuclide with a highly customizable core structure.
治疗诊断学是核医学的一个领域,它对诊断和治疗放射性核素使用相同的靶向载体和螯合系统,从而实现成像和治疗的一致性。这个不断发展的领域需要开发更灵活的螯合系统,以允许采用新的靶向策略。为此,已经实现了一种多模态结构,利用磷腈基核心和点击化学来实现一种灵活且可定制的支架。基于磷腈的六臂核心可以构建六个二乙三胺五乙酸(DTPA)螯合基序或一组3:3的DTPA与二乙烯三胺五乙酸铁(DFO)的混合螯合物,分别产生两种多模态化合物,即pDbDt和pDbDtDf。铽配合物显示出强烈的发光,支持这些结构作为发光的有机天线。金属置换滴定研究证实了所需的结构以及对这些结构进行异金属标记的能力。发现这些结构具有高热稳定性和生物稳定性。对每种化合物进行放射性标记导致每种化合物具有高摩尔活度标记:169 MBq/nmol:[Tb]Tb-pDbDt,170 MBq/nmol:[Zr]Zr-pDbDtDf,并且混合放射性标记表明两种放射性核素以1:1的比例螯合。这种多模态结构作为一种异金属结构很有前景,可用于将诊断和治疗放射性核素与高度可定制的核心结构偶联。