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X-ray photons in diagnostic imaging beams are a form of ionizing electromagnetic radiation used to visualize the internal structures of the human body for medical diagnosis (FDA, 2022). They operate by passing through tissues and being attenuated at varying degrees depending on the density and atomic composition of the material, with the remaining photons captured by a detector to create a radiographic image (StatPearls, NBK499834). Although not a biological target like a receptor or enzyme, X-rays interact with biological molecules, primarily through the ionization of water and direct damage to DNA, which can trigger cellular repair mechanisms or lead to mutations (NCBI, PMC3839182). In clinical practice, contrast agents such as iodinated compounds or barium sulfate are used to enhance the visibility of specific tissues by increasing X-ray absorption (RadiologyInfo.org). While indispensable for diagnosing conditions ranging from bone fractures to tumors, the use of X-ray photons carries a risk of stochastic effects, such as radiation-induced cancer, and deterministic effects at high doses (IAEA, 2023). From a drug development perspective, X-rays are not a therapeutic target but rather a tool for monitoring disease progression or drug efficacy in clinical trials.
X-ray photons interact with matter through the photoelectric effect and Compton scattering, resulting in the ejection of electrons that cause ionization and the formation of free radicals, which can lead to DNA strand breaks (StatPearls, NBK499834; NCBI, PMC3839182).
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