Ion Beam Radiotherapies: Comparison of Protons, Antiprotons and Heavier Ions
Ion Beam Radiotherapies: Comparison of Protons, Antiprotons and Heavier Ions
批准号:
EP/I017550/1
负责人:
David Timson
金额:
$4.58万
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2011
资助国家:
英国
项目状态:
已结题
起止时间:
2011 至 --
中文摘要
辐射能导致癌症,但它也可以用来治疗这种疾病。实际上,放射疗法比化学疗法使用得更广泛。它的工作原理是破坏细胞中的DNA分子,导致这些细胞死亡。然而,放射治疗有一个主要问题:它不是一种非常有选择性的方法,并且经常损害健康组织,以及杀死肿瘤。因此,人们做了大量的工作来寻找最小化这种损害的方法,同时确保治疗仍然可以摧毁肿瘤。提高放射治疗靶向的一种方法是使用离子束(而不是通常使用的x射线)。这是因为离子在第一次进入人体时不会损失太多能量(不像X射线那样,它们在进入人体的那一刻就开始沉积能量,从而造成伤害)。相反,它们在进入人体的精确距离处失去了大部分能量,即所谓的布拉格峰。布拉格峰的位置取决于离子的运动速度和离子的类型。因此,可以控制位置,使其对应于肿瘤。这使得辐射的破坏力能够集中到肿瘤中,在很大程度上保护周围的健康组织。使用氢离子(质子)治疗癌症患者的设备在世界上许多国家都在使用。结果令人印象深刻,提高了治疗成功率,减少了副作用。英国国民健康服务体系已经认识到这一潜力,并计划建立一个新的质子设施。然而,最现代化的设施使用的离子来自较重的元素,如碳。甚至有人建议可以使用反物质的离子。虽然这听起来像是科幻小说里的故事,但反质子可以在地球上制造出来。它们的行为很像普通的质子,穿过物质并将大部分能量沉积在布拉格峰上。然而,当一个反质子和一个质子相遇时,它们会相互湮灭,释放出更多的能量。因此,由于这种额外的能量释放,它们有可能比质子更有效。我们已经启动了一项实验计划,以比较质子、碳离子和反质子如何与生命物质相互作用。我们想比较和对比这些不同形式的辐射。特别是,我们想了解它们如何破坏细胞中的DNA。我们已经了解了很多关于反质子如何破坏细胞DNA的知识。所以我们想完成这些实验,并将它们扩展到质子和碳离子。我们将看到这些类型的辐射是否会导致染色体(包含DNA的细胞结构)的根本改变。我们将观察受辐射的细胞是否能修复受损的DNA,以及修复的速度有多快。这一点很重要,因为在放射治疗中,我们希望造成不可修复的损伤。当发生不可修复的损伤时,细胞通常会以一种特殊类型的细胞死亡方式自杀,称为细胞凋亡。我们还将观察细胞的染色体,看看是否发生了结构上的重大变化。尽管我们可以从完整的细胞中了解到很多,但它们有时太复杂了。所以我们计划使用一种特殊类型的DNA分子,称为质粒,因为有一种简单的方法可以查看这些分子是否在一条链上断裂,两条链或许多地方断裂。我们还可以使用这种方法来量化损伤,并找出特定损伤水平所需的辐射量。所以我们应该能够比较辐射。然而,我们不能在英国做这些实验。世界上只有一个能量充足的反质子源--位于日内瓦的欧洲核子研究中心。也没有临床相关能量的碳离子源。为此,我们计划前往卡塔尼亚(意大利)进行这些实验。研究结果将引起肿瘤学家的兴趣,他们将寻找潜在的、新颖的癌症治疗方法,同时也会引起广大科学家的兴趣,他们将了解辐射如何与生命物质相互作用。
英文摘要
Radiation can cause cancer, but it can also be used to cure the disease. Indeed radiotherapy is more widely used than chemotherapy. It works by breaking DNA molecules in cells, which causes these cells to die. However, radiotherapy has a major problem: it isn't a very selective method and often damages healthy tissue, as well as killing the tumour. So a lot of work has gone into finding ways to minimise this damage, while making sure that the treatment still destroys the tumour.One way to improve the targeting of radiation is to use beams of ions (instead of x-rays, which are normally used). This works because ions do not lose much energy when they first enter the body (unlike x-rays which start depositing energy, and therefore causing damage, the moment they enter you). Instead they lose most of their energy at a precise distance into the body, at the so-called Bragg peak. The position of this Bragg peak depends on how fast the ions are travelling and what type of ions they are. So the position can be controlled such that it corresponds to the tumour. This enables the destructive power of the radiation to be focussed into the tumour, largely sparing surrounding, healthy tissues.Facilities which use hydrogen ions (protons) to treat cancer patients are in use in many countries worldwide. The results are impressive with improved treatment success and reduced side-effects. The NHS has recognised this potential and plans to build a new proton facility.However, the most modern facilities use ions from heavier elements such as carbon. It has even been suggested that ions of antimatter could be used. Although this sounds like something from a science fiction story, anti-protons can be made here on earth. They behave a lot like regular protons, passing through matter and depositing most of their energy at a Bragg peak. However, when an antiproton and a proton meet, they annihilate each other releasing even more energy. So they have the potential to be more effective than protons, because of this additional energy release.We have initiated a programme of experiments to compare how protons, carbon ions and antiprotons interact with living matter. We want to compare and contrast these different forms of radiation. In particular, we want to learn how they damage DNA in the cell. We have already learned quite a bit about how antiprotons damage cellular DNA. So we want to complete these experiments and extend them to protons and carbon ions. We will see if these types of radiation cause radical alterations to the chromosomes (the structures in cells which contain the DNA). We will see if the irradiated cells can repair their damaged DNA, and how fast they can do it. This is important because in radiotherapy we want to cause non-repairable damage. When irreparable damage occurs, cells often commit suicide in a special type of cell death called apoptosis. We will also look at the cells' chromosomes to see if any gross changes in structure have occurred.Although we can learn a lot from intact cells, they are sometimes just too complex. So we plan to use a special type of DNA molecule called plasmids because there is a straightforward method to see if these have been broken on one strand, both strands or in lots of places. We can also use this method to quantify the damage and find out how much radiation is required for a particular level of damage. So we should be able to compare the radiations.However, we can't do these experiments in the UK. There is only one source of antiprotons at sufficient energy in the world - at CERN in Geneva. Nor is there a source of carbon ions at clinically relevant energies. So for this we plan to travel to Catania (Italy) to do these experiments.The results will be of interest to oncologists looking at potential, novel cancer treatments, but also to a wide range of scientists who want to understand how radiation interacts with living matter.
期刊论文(5)
专著(0)
科研奖励(0)
会议论文
Preliminary report on Catania data
卡塔尼亚数据初步报告
DOI:
--
发表时间:
2012
期刊:
影响因子:
--
作者:
[Giuseppe Schettino]
通讯作者:
Giuseppe Schettino
DNA damage and biological effectiveness of antiprotons in relation to carbon-ions and protons
DNA 损伤和反质子与碳离子和质子的生物有效性
DOI:
--
发表时间:
2012
期刊:
影响因子:
--
作者:
[Kavanagh Joy Naomi]
通讯作者:
Kavanagh Joy Naomi
Breaking DNA and killing cells with exotic types of radiation
用奇异的辐射类型破坏 DNA 并杀死细胞
DOI:
--
发表时间:
2012
期刊:
INTERNATIONAL JOURNAL OF MOLECULAR MEDICINE
影响因子:
5.4
作者:
[David Timson]
通讯作者:
David Timson
Antiprotons: effects on biological matter and evaluation as a novel radiotherapy
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项目类别:Research Grant
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-
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负责人:David Timson
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