Harnessing <b>α</b>-Emitting Radionuclides for Therapy: Radiolabeling Method Review.

Yang, Hua; Wilson, Justin J; Orvig, Chris; Li, Yawen; Wilbur, D Scott; Ramogida, Caterina F; Radchenko, Valery; Schaffer, Paul · J Nucl Med · 2022

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Abstract

Targeted α-therapy (TAT) is an emerging powerful tool treating late-stage cancers for which therapeutic options are limited. At the core of TAT are targeted radiopharmaceuticals, where isotopes are paired with targeting vectors to enable tissue- or cell-specific delivery of α-emitters. DOTA (1,4,7,10-tetraazacyclododecane-1,4,7,10-tetraacetic acid) and DTPA (diethylenetriamine pentaacetic acid) are commonly used to chelate metallic radionuclides but have limitations. Significant efforts are underway to develop effective stable chelators for α-emitters and are at various stages of development and community adoption. Isotopes such as <sup>149</sup>Tb, <sup>212/213</sup>Bi, <sup>212</sup>Pb (for <sup>212</sup>Bi), <sup>225</sup>Ac, and <sup>226/227</sup>Th have found suitable chelators, although further studies, especially in vivo studies, are required. For others, including <sup>223</sup>Ra, <sup>230</sup>U, and, arguably <sup>211</sup>At, the ideal chemistry remains elusive. This review summarizes the methods reported to date for the incorporation of <sup>149</sup>Tb, <sup>211</sup>At, <sup>212/213</sup>Bi, <sup>212</sup>Pb (for <sup>212</sup>Bi), <sup>223</sup>Ra, <sup>225</sup>Ac, <sup>226/227</sup>Th, and <sup>230</sup>U into radiopharmaceuticals, with a focus on new discoveries and remaining challenges.

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