CCP4 Advanced integrated approaches to macromolecular structure determination
CCP4 Advanced integrated approaches to macromolecular structure determination
批准号:
BB/S006974/2
负责人:
Kevin Cowtan
金额:
$4.27万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2019
资助国家:
英国
项目状态:
已结题
起止时间:
2019 至 --
中文摘要
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英文摘要
Proteins, DNA and RNA are the active machines of the cells which make up living organisms, and are collectively known as macromolecules. They carry out all of the functions that sustain life, from metabolism through replication to the exchange of information between a cell and its environment. They are coded for by a 'blueprint' in the form of the DNA sequence in the genome, which describes how to make them as linear strings of building blocks. In order to function, however, most macromolecules fold into a precise 3D structure, which in turn depends primarily on the sequence of building blocks from which they are made. Knowledge of the molecule's 3D structure allows us both to understand its function, and to design chemicals to interfere with it. Due to advances in molecular biology, a number of projects, including the Human Genome Project, have led to the determination of the complete DNA sequences of many organisms, from which we can now read the linear blueprints for many macromolecules. As yet, however, the 3D structure cannot be predicted from knowledge of the sequence alone. One way to "see" macromolecules, and so to determine their 3D structure, involves initially crystallising the molecule under investigation, and subsequently imaging it with suitable radiation. Macromolecules are too small to see with normal light, and so a different approach is required. With an optical microscope we cannot see objects which are smaller than the wavelength of light, roughly 1 millionth of a metre: Atoms are about 1000 times smaller than this. However X-rays have a wavelength about the same as the size of the atoms. For this reason, in order to resolve the atomic detail of macromolecular structure, we image them with X-rays rather than with visible light.The process of imaging the structures of macromolecules that have been crystallised is known as X-ray crystallography. X- ray crystallography is like using a microscope to magnify objects that are too small to be seen with visible light. Unfortunately X-ray crystallography is complicated because, unlike a microscope, there is no lens system for X-rays and so additional information and complex computation are required to reconstruct the final image. This information may come from known protein structures using the Molecular Replacement (MR) method, or from other sources including Electron Microscopy (EM). Once the structure is known, it is easier to pinpoint how macromolecules contribute to the living cellular machinery. Pharmaceutical research uses this as the basis for designing drugs to turn the molecules on or off when required. Drugs are designed to interact with the target molecule to either block or promote the chemical processes which they perform within the body. Other applications include protein engineering and carbohydrate engineering. The aim of this project is to improve the key computational tools needed to extract a 3D structure from X-ray and electron diffraction experiments. It will provide continuing support to a Collaborative Computing Project (CCP4 first established in 1979), which has become one of the leading sources of software for this task. The project will help efficient and effective use to be made of the synchrotrons that make the X-rays that are used in most crystallographic experiments but also extend to use of electron microscopes which have gained much recent publicity with the Nobel prize being awarded to researchers from this field. It will provide more powerful tools to allow users to exploit information from known protein structures when the match to the unknown structure is very poor. Finally, it will allow structures to be solved, even when poor quality and very small crystals are obtained.
期刊论文(10)
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会议论文
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Tyrosine 121 moves revealing a druggable pocket that couples catalysis to ATP-binding in serine racemase
酪氨酸 121 移动揭示了一个可成药的口袋,该口袋将催化与丝氨酸消旋酶中的 ATP 结合偶联
DOI:
10.1101/2021.02.12.430960
发表时间:
2021
期刊:
影响因子:
--
作者:
[Koulouris C]
通讯作者:
Koulouris C
Assessing the utility of CASP14 models for molecular replacement
评估 CASP14 模型在分子替代方面的实用性
DOI:
10.1101/2021.06.21.449228
发表时间:
2021
期刊:
影响因子:
--
作者:
[Millán C]
通讯作者:
Millán C
DOI:
10.1038/s42003-022-03264-5
发表时间:
2022-04-11
期刊:
Communications biology
影响因子:
5.9
作者:
[]
通讯作者:
DOI:
10.1002/prot.26214
发表时间:
2021-12
期刊:
Proteins
影响因子:
2.9
作者:
[Millán C, Keegan RM, Pereira J, Sammito MD, Simpkin AJ, McCoy AJ, Lupas AN, Hartmann MD, Rigden DJ, Read RJ]
通讯作者:
Read RJ
Updated restraint dictionaries for carbohydrates in the pyranose form.
更新的碳水化合物形式的碳水化合物的约束词典。
DOI:
10.1107/s2059798322001103
发表时间:
2022-04-01
期刊:
Acta crystallographica. Section D, Structural biology
影响因子:
--
作者:
[Atanasova M, Nicholls RA, Joosten RP, Agirre J]
通讯作者:
Agirre J
共 9 条
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CCP4 Advanced integrated approaches to macromolecular structure determination
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负责人:Kevin Cowtan
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CCP4 Advanced integrated approaches to macromolecular structure determination
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Automated de novo building of protein models into electron microscopy maps
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CCP4 Grant Renewal 2014-2019: Question-driven crystallographic data collection and advanced structure solution
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负责人:Kevin Cowtan
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依托单位:
国内基金
海外基金
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