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Cross-Correlative Single-Cell Analysis Reveals Biological Mechanisms of Nanoparticle Radiosensitization

机译:互相关单细胞分析揭示了纳米颗粒放射胶质敏化的生物学机制

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Nanoparticle radiosensitization has been demonstrated well to enhance the effects of radiotherapy, motivate the improvement of therapeutic ratios, and decrease morbidity in cancer treatment. A significant challenge exists in optimizing formulations and translation due to insufficient knowledge of the associated mechanisms, which have historically been limited to physical concepts. Here, we investigated a concept for the role of biological mechanisms. The mere presence of gold nanoparticles led to a down regulation of thymidylate synthase, important for DNA damage repair in the radioresistant S-phase cells. By developing a cross-correlative methodology to reveal probabilistic gold nanoparticle uptake by cell sub-populations and the associated sensitization as a function of the uptake, a number of revealing observations have been achieved. Surprisingly, for low numbers of nanoparticles, a desensitization action was observed. Sensitization was discovered to preferentially impact S-phase cells, in which impairment of the DNA damage response by the homologous recombination pathway dominates. This small but radioresistant cell population correlates with much greater proliferative ability. Thus, a paradigm is presented whereby enhanced DNA damage is not necessarily due to an increase in the number of DNA double-strand breaks (DSBs) created but can be from a nanoparticle-induced impairment of the damage response by down-regulating repair proteins such as thymidylate synthase.
机译:纳米粒子放射胶质化已被证明是为了增强放射治疗的影响,激发治疗比率的改善,降低癌症治疗的发病率。由于相关机制的知识不足,在优化配方和翻译方面存在重大挑战,这历来基于物理概念。在这里,我们调查了生物机制作用的概念。仅存在金纳米粒子的存在导致胸苷合酶的下调,对于DNA损伤修复在放射体的S相来说是重要的。通过开发互相关方法,以揭示通过细胞亚群的概率金纳米粒子摄取和作为摄取的功能的相关敏化,已经实现了许多揭示观察。令人惊讶的是,对于少量纳米颗粒,观察到脱敏作用。发现致敏优先影响S相细胞,其中同源重组途径的DNA损伤响应的损害占主导地位。这种小但放射性细胞群与更大的增殖能力相关。因此,提出了一种范式,即增强的DNA损伤是由于产生的DNA双链断裂(DSB)的数量增加,而是可以通过纳米颗粒诱导的损伤损伤的损伤,从而通过下调修复蛋白作为胸苷酸合成酶。

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