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Chimaeric site-specific recombinases for 'genomic surgery'

Chimaeric site-specific recombinases for 'genomic surgery'
用于“基因组手术”的嵌合位点特异性重组酶
批准号:
BB/F021593/1
负责人:
Marshall Stark
金额:
$44.55万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2008
资助国家:
英国
项目状态:
已结题
起止时间:
2008 至 --

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中文摘要
翻译
所有生物体都含有极长的双螺旋DNA分子,这些分子携带着每个细胞生长和繁殖所需的信息。这些信息被编码在被称为碱基的DNA构建块序列中,碱基串编码的信息被称为基因。细胞机器将密码翻译成有用的分子,如蛋白质。有时我们想要“编辑”DNA代码;例如,通过删除导致疾病的“坏”基因,或插入治愈疾病的新基因,或使生物体产生有用的物质,如抗体。我们正在尝试开发工具来进行DNA编辑或“基因组手术”,通过修改一类被称为位点特异性重组酶的天然蛋白质,这种蛋白质已经可以在细菌中进行类似的反应。然而,细菌酶只对它们已经进化到可以识别的细菌DNA序列起作用。为了使它们更普遍地有用,我们必须找到一种转换它们的方法,使它们能够识别和“剪切和粘贴”我们选择的任何DNA序列。我们已经证明,一种称为分解酶的位点特异性重组酶可以被修改,使其以新的序列起作用。为了做到这一点,我们用来自另一种名为Zif268的蛋白质的DNA识别模块替换了分解蛋白中用于识别DNA碱基序列的部分。我们称这种杂交蛋白为z型分解蛋白。之所以使用Zif268模块,是因为其他研究小组已经研究出了如何改变它,使其能够识别几乎任何选定的大约9个碱基的DNA序列。因此,我们可以潜在地使用其附加的Zif268模块制作可以放置在任何DNA目标上的z分解酶。然而,在将z分解酶用于非常苛刻的应用之前,还有很多工作要做,比如治疗人类疾病,在这种情况下,任何错误的DNA序列编辑都可能是灾难性的。在这个项目中,我们想要开发z分解酶,这样它们就可以在几乎任何选择的DNA序列上工作,并具有在生物技术和基因治疗中实际应用所必需的效率和精度。为了达到这个目标,我们必须优化z分辨率的属性。我们需要修改z -分解酶中断裂和重新连接DNA链的部分,这样它就能处理它所处的任何DNA序列。我们必须确保我们的z分解蛋白对所选序列是非常特异性的,并且不会破坏其他地方的DNA。我们希望能够控制DNA中z -解析瓶带来的变化类型;例如,要确保它剪掉了一部分,而不是把它放回去。最后,我们必须确保z分解酶在人类和其他可能使用它们的物种中有效地起作用。为了测试我们是否已经实现了这些目标,我们的目标是证明我们可以使用Z-resolvases从细胞的DNA中剪切出编码HIV(导致人类艾滋病的病毒)的DNA片段,从而阻止它产生更多的病毒拷贝。
英文摘要
All living organisms contain immensely long double-helical DNA molecules that carry the information each cell needs to grow and multiply. This information is encoded in the sequence of the DNA building blocks called bases, strings of which encode messages known as genes. Cellular machines translate the code into useful molecules such as proteins. Sometimes we would like to 'edit' the DNA code; for example, by deleting a 'bad' gene that causes a disease, or by inserting a new gene that cures a disease or that makes an organism produce a useful substance such as an antibody. We are trying to develop tools for doing this DNA editing or 'genomic surgery', by modifying a class of natural proteins called site-specific recombinases which can already do reactions like this in bacteria. However, the bacterial enzymes only work at bacterial DNA sequences that they have evolved to recognize. In order to make them more generally useful, we must find a way of converting them so that they can recognize and 'cut and paste' at any DNA sequences that we choose. We have already demonstrated that one type of site-specific recombinase called resolvase can be modified so that it will act at a new sequence. To do this we replace the part of the resolvase protein that is designed to recognize the sequence of DNA bases with a DNA-recognizing module from another protein called Zif268. We call this hybrid protein a Z-resolvase. The Zif268 module is used because other research groups have worked out how to change it so that it can recognize almost any chosen DNA sequence of about 9 bases. We can therefore potentially make Z-resolvases that can be placed on any DNA target using their attached Zif268 module. However, there is still a lot to do before Z-resolvases can be used for very demanding applications, like curing human diseases, where any editing of the wrong DNA sequences could be disastrous. In this project, we want to develop Z-resolvases so that they work on almost any chosen DNA sequence with the efficiency and precision necessary for real uses in biotechnology and gene therapy. To reach this goal we will have to optimize the properties of Z-resolvase. We need to modify the part of Z-resolvase that actually breaks and rejoins DNA strands, so that it can deal with any DNA sequence that it is placed on. We must ensure that our Z-resolvase proteins are very specific for the chosen sequence, and do not damage the DNA elsewhere. We want to be able to control the type of changes in the DNA that a Z-resolvase brings about; for example, to make sure that it cuts a section out and does not put it back in. Finally, we must make sure that Z-resolvases work efficiently in humans and other species where they might be used. To test whether we have achieved these objectives, we aim to demonstrate that we can use Z-resolvases to cut out the piece of DNA encoding HIV (the virus that causes AIDS in humans) from a cell's DNA, thus preventing it from making more virus copies.
期刊论文(5)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1371/journal.pone.0019537
发表时间: 2011-04-29
期刊: PloS one
影响因子: 3.7
作者: [Proudfoot C, McPherson AL, Kolb AF, Stark WM]
通讯作者: Stark WM
DOI: 10.1128/9781555817954
发表时间: 2002
期刊:
影响因子: --
作者: [N. Craig;M. Chandler;M. Gellert;A. Lambowitz;P. Rice;S. Sandmeyer]
通讯作者: N. Craig;M. Chandler;M. Gellert;A. Lambowitz;P. Rice;S. Sandmeyer
DOI: 10.1093/nar/gkr652
发表时间: 2011-11
期刊: Nucleic acids research
影响因子: 14.9
作者: [Prorocic MM, Wenlong D, Olorunniji FJ, Akopian A, Schloetel JG, Hannigan A, McPherson AL, Stark WM]
通讯作者: Stark WM
Elucidation of the rotary mechanism of serine recombinases
  • 批准号:
    BB/R008493/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $60.24万
  • 财政年份:
    2018
  • 负责人:
    Marshall Stark
  • 依托单位:
A platform for rapid and precise DNA module rearrangements in Synthetic Biology
  • 批准号:
    BB/K003356/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $416.07万
  • 财政年份:
    2013
  • 负责人:
    Marshall Stark
  • 依托单位:
The mechanism of DNA strand exchange by serine recombinases
  • 批准号:
    BB/E022200/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $48.63万
  • 财政年份:
    2007
  • 负责人:
    Marshall Stark
  • 依托单位:
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  • 资助金额:
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  • 项目类别:
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  • 资助金额:
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  • 批准年份:
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