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. 2022:51:101-115.
doi: 10.1016/bs.enz.2022.08.007. Epub 2022 Sep 27.

Auger electrons and DNA double-strand breaks studied by using iodine-containing chemicals

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Auger electrons and DNA double-strand breaks studied by using iodine-containing chemicals

Yuya Higashi et al. Enzymes. 2022.

Abstract

Irradiation of high Z elements such as iodine, gold, gadolinium with monochromatic X-rays causes photoelectric effects that include the release of Auger electrons. Decay of radioactive iodine such as I-123 and I-125 also results in multiple events and some involve the generation of Auger electrons. These electrons have low energy and travel only a short distance but have a strong effect on DNA damage including the generation of double-strand breaks. In this chapter, we focus on iodine and discuss various studies that used iodine-containing chemicals to generate Auger electrons and cause DNA double-strand breaks. First, DNA synthesis precursors containing iodine were used to place iodine on DNA. DNA binding dyes such as iodine Hoechst were investigated for Auger electron generation and DNA breaks. More recently, iodine containing nanoparticles were developed. We describe our study using tumor spheroids loaded with iodine nanoparticles and synchrotron-generated monochromatic X-rays. This study led to the demonstration that an optimum effect on DNA double-strand break formation is observed with a 33.2keV X-ray which is just above the K-edge energy of iodine.

Keywords: Auger electron; Cancer therapy; DNA damage; Monochromatic X-ray; Nanoparticles; Tumor spheroids.

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