首页> 美国卫生研究院文献>Cancers >Paradigm Shift in Radiation Biology/Radiation Oncology—Exploitation of the H2O2 Effect for Radiotherapy Using Low-LET (Linear Energy Transfer) Radiation such as X-rays and High-Energy Electrons
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Paradigm Shift in Radiation Biology/Radiation Oncology—Exploitation of the H2O2 Effect for Radiotherapy Using Low-LET (Linear Energy Transfer) Radiation such as X-rays and High-Energy Electrons

机译:放射生物学/放射肿瘤学的范式转变-利用低LET(线性能量转移)辐射(例如X射线和高能电子)进行放射治疗的 H2O2效应的开发

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摘要

Most radiation biologists/radiation oncologists have long accepted the concept that the biologic effects of radiation principally involve damage to deoxyribonucleic acid (DNA), which is the critical target, as described in “Radiobiology for the Radiologist”, by E.J. Hall and A.J. Giaccia [1]. Although the concepts of direct and indirect effects of radiation are fully applicable to low-LET (linear energy transfer) radioresistant tumor cellsormal tissues such as osteosarcoma cells and chondrocytes, it is believed that radiation-associated damage to DNA does not play a major role in the mechanism of cell death in low-LET radiosensitive tumorsormal tissues such as malignant lymphoma cells and lymphocytes. Hall and Giaccia describe lymphocytes as very radiosensitive, based largely on apoptosis subsequent to irradiation. As described in this review, apoptosis of lymphocytes and lymphoma cells is actually induced by the “hydrogen peroxide (H2O2) effect”, which I propose in this review article for the first time. The mechanism of lymphocyte death via the H2O2 effect represents an ideal model to develop the enhancement method of radiosensitivity for radiation therapy of malignant neoplasms. In terms of imitating the high radiosensitivity of lymphocytes, osteosarcoma cells (representative of low-LET radioresistant cells) might be the ideal model for indicating the conversion of cells from radioresistant to radiosensitive utilizing the H2O2 effect. External beam radiation such as X-rays and high-energy electrons for use in modern radiotherapy are generally produced using a linear accelerator. We theorized that when tumors are irradiated in the presence of H2O2, the activities of anti-oxidative enzymes such as peroxidases and catalase are blocked and oxygen molecules are produced at the same time via the H2O2 effect, resulting in oxidative damage to low-LET radioresistant tumor cells, thereby rendering them highly sensitive to irradiation. In this review, this potential paradigm shift in modern radiation biology/radiation oncology is discussed in detail in terms of overcoming drug/radiation resistance in radiation therapy and/or anti-cancer chemotherapy.
机译:多数放射生物学家/放射肿瘤学家长期以来一直接受这样一种观念,即放射的生物学效应主要涉及对脱氧核糖核酸(DNA)的损害,而脱氧核糖核酸是至关重要的靶标,如E.J.霍尔和A.J.贾恰亚[1]。尽管辐射的直接和间接作用的概念完全适用于低LET(线性能量转移)辐射抗性肿瘤细胞/正常组织,例如骨肉瘤细胞和软骨细胞,但据信与辐射相关的DNA损伤并不起主要作用。在低LET放射敏感性肿瘤/正常组织(例如恶性淋巴瘤细胞和淋巴细胞)的细胞死亡机制中发挥重要作用。 Hall和Giaccia将淋巴细胞描述为对放射线非常敏感,这主要是基于辐射后的细胞凋亡。如本文所述,淋巴细胞和淋巴瘤细胞的凋亡实际上是由“过氧化氢(H2O2)效应”引起的,这是我在本文的首次提出。通过H2O2效应导致的淋巴细胞死亡机制代表了一种理想的模型,可以开发出增强放射敏感性的方法来治疗恶性肿瘤。就模仿淋巴细胞的高放射敏感性而言,骨肉瘤细胞(代表低LET放射抗性细胞)可能是通过H2O2效应指示细胞从放射抗性转变为放射敏感性的理想模型。现代放射疗法中使用的外部束辐射(例如X射线和高能电子)通常使用线性加速器产生。我们的理论是,当在H2O2存在下照射肿瘤时,过氧化酶和过氧化氢酶等抗氧化酶的活性被阻断,并且通过H2O2效应同时产生氧分子,从而导致对低LET辐射抗性的氧化损伤肿瘤细胞,从而使其对辐射高度敏感。在这篇综述中,就克服放射疗法和/或抗癌化学疗法中的药物/放射抗性方面详细讨论了现代放射生物学/放射肿瘤学中这种潜在的范例转变。

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