Novel Auger-Electron-Emitting 191Pt-Labeled Pyrrole–Imidazole Polyamide Targeting MYCN Increases Cytotoxicity and Cytosolic dsDNA Granules in MYCN-Amplified Neuroblastoma

神经母细胞瘤 分子生物学 DNA 癌症研究 癌细胞 细胞毒性 电泳迁移率测定 化学 基因 生物 体外 细胞培养 癌症 基因表达 生物化学 遗传学
作者
Honoka Obata,Atsushi B. Tsuji,Hitomi Sudo,Aya Sugyo,Kaori Hashiya,Hayato Ikeda,Masatoshi Itoh,Katsuyuki Minegishi,Kotaro Nagatsu,Mikako Ogawa,Toshikazu Bando,Hiroshi Sugiyama,Ming‐Rong Zhang
出处
期刊:Pharmaceuticals [Multidisciplinary Digital Publishing Institute]
卷期号:16 (11): 1526-1526 被引量:6
标识
DOI:10.3390/ph16111526
摘要

Auger electrons can cause nanoscale physiochemical damage to specific DNA sites that play a key role in cancer cell survival. Radio-Pt is a promising Auger-electron source for damaging DNA efficiently because of its ability to bind to DNA. Considering that the cancer genome is maintained under abnormal gene amplification and expression, here, we developed a novel 191Pt-labeled agent based on pyrrole–imidazole polyamide (PIP), targeting the oncogene MYCN amplified in human neuroblastoma, and investigated its targeting ability and damaging effects. A conjugate of MYCN-targeting PIP and Cys-(Arg)3-coumarin was labeled with 191Pt via Cys (191Pt-MYCN-PIP) with a radiochemical purity of >99%. The binding potential of 191Pt-MYCN-PIP was evaluated via the gel electrophoretic mobility shift assay, suggesting that the radioagent bound to the DNA including the target sequence of the MYCN gene. In vitro assays using human neuroblastoma cells showed that 191Pt-MYCN-PIP bound to DNA efficiently and caused DNA damage, decreasing MYCN gene expression and MYCN signals in in situ hybridization analysis, as well as cell viability, especially in MYCN-amplified Kelly cells. 191Pt-MYCN-PIP also induced a substantial increase in cytosolic dsDNA granules and generated proinflammatory cytokines, IFN-α/β, in Kelly cells. Tumor uptake of intravenously injected 191Pt-MYCN-PIP was low and its delivery to tumors should be improved for therapeutic application. The present results provided a potential strategy, targeting the key oncogenes for cancer survival for Auger electron therapy.
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