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Deciphering the Acute Cellular Phosphoproteome Response to Irradiation with X-rays Protons and Carbon Ions

机译:用X射线质子和碳离子解释对辐射的急性细胞磷酸化蛋白质组的反应

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摘要

Radiotherapy is a cornerstone of cancer therapy. The recently established particle therapy with raster-scanning protons and carbon ions landmarks a new era in the field of high-precision cancer medicine. However, molecular mechanisms governing radiation induced intracellular signaling remain elusive. Here, we present the first comprehensive proteomic and phosphoproteomic study applying stable isotope labeling by amino acids in cell culture (SILAC) in combination with high-resolution mass spectrometry to decipher cellular response to irradiation with X-rays, protons and carbon ions. At protein expression level limited alterations were observed 2 h post irradiation of human lung adenocarcinoma cells. In contrast, 181 phosphorylation sites were found to be differentially regulated out of which 151 sites were not hitherto attributed to radiation response as revealed by crosscheck with the PhosphoSitePlus database.Radiation-induced phosphorylation of the p(S/T)Q motif was the prevailing regulation pattern affecting proteins involved in DNA damage response signaling. Because radiation doses were selected to produce same level of cell kill and DNA double-strand breakage for each radiation quality, DNA damage responsive phosphorylation sites were regulated to same extent. However, differential phosphorylation between radiation qualities was observed for 55 phosphorylation sites indicating the existence of distinct signaling circuitries induced by X-ray versus particle (proton/carbon) irradiation beyond the canonical DNA damage response. This unexpected finding was confirmed in targeted spike-in experiments using synthetic isotope labeled phosphopeptides. Herewith, we successfully validated uniform DNA damage response signaling coexisting with altered signaling involved in apoptosis and metabolic processes induced by X-ray and particle based treatments.In summary, the comprehensive insight into the radiation-induced phosphoproteome landscape is instructive for the design of functional studies aiming to decipher cellular signaling processes in response to radiotherapy, space radiation or ionizing radiation per se. Further, our data will have a significant impact on the ongoing debate about patient treatment modalities.
机译:放射疗法是癌症疗法的基石。最近建立的带有光栅扫描质子和碳离子的粒子疗法标志着高精度癌症医学领域的新时代。但是,控制辐射诱导的细胞内信号传导的分子机制仍然难以捉摸。在这里,我们提出了第一个全面的蛋白质组学和磷酸化蛋白质组学研究,该研究应用了细胞培养物中氨基酸的稳定同位素标记(SILAC)与高分辨率质谱联用,以破译细胞对X射线,质子和碳离子照射的反应。在蛋白质表达水平上,在人肺腺癌细胞照射后2小时观察到有限的改变。相比之下,通过PhosphoSitePlus数据库的交叉检查发现,有181个磷酸化位点受到不同的调控,其中151个位点迄今尚未归因于辐射反应.p(S / T)Q基序的辐射诱导磷酸化是主要的。调节模式影响参与DNA损伤应答信号传导的蛋白质。因为选择辐射剂量以产生相同水平的细胞杀伤和每种辐射质量的DNA双链断裂,所以DNA损伤反应性磷酸化位点被调节到相同的程度。但是,在55个磷酸化位点观察到了辐射质量之间的差异磷酸化,表明存在超越常规DNA损伤响应的X射线与粒子(质子/碳)辐射相比,由X射线诱导的独特信号传导电路。这一意外发现在使用合成同位素标记的磷酸肽的靶向加标实验中得到了证实。因此,我们成功地验证了统一的DNA损伤应答信号与X射线和基于颗粒的疗法诱导的细胞凋亡和代谢过程中涉及的信号改变共同存在。总而言之,对辐射诱导的磷酸化蛋白质组图谱的全面了解对于功能性设计具有指导意义旨在破解对放射疗法,空间辐射或电离辐射本身反应的细胞信号传导过程的研究。此外,我们的数据将对有关患者治疗方式的持续辩论产生重大影响。

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