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D2NP - New frontiers in electron enhanced high field solid state NMR for interdisciplinary science and technology

D2NP - New frontiers in electron enhanced high field solid state NMR for interdisciplinary science and technology
D2NP - 跨学科科学技术的电子增强高场固态核磁共振新前沿
批准号:
EP/D047005/1
负责人:
Anthony Watts
金额:
$26.87万
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 --

项目摘要

项目成果

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中文摘要
翻译
当科学家像所有优秀的侦探一样调查问题时,他们需要关于正在发生的事情的线索。对于一系列关键问题,能够揭示原子周围局部环境的技术对于在这个层面上提供对结构的洞察至关重要。核磁共振(核磁共振)光谱学的重要性增加,因为它是一种元素特定的探针,可以区分不同位置周围环境的非常微小的变化(例如,SiO4单元连接到结构中的角点数),这在整个科学中变得重要。它的主要缺点是由于核能级之间较小的热导出人口差异,本质上是相对较弱的信号。固体的核磁共振发生了革命性的变化,实现了交叉极化,将磁化作用从具有高磁矩(例如1H)的原子核转移到具有较小磁矩(例如13C)的更稀薄的原子核,从而使13C核磁共振信号强度增加了约4倍。今天,为了进一步增加核磁共振信号的大小,有非常重要的努力和广泛的方法,并进行了相当大的投资,以实现即使是几十%的增加。动态核极化(DNP)是一种使用未配对的电子自旋将核磁共振信号提高多达10万次的技术。虽然这种效应在低磁场下的理论和实验中已经知道了一段时间,但直到现在才能将其付诸实践,整个实验都是在强磁场下进行的。现在这是可能的,因为可以制造出足够灵活和坚固的高场磁铁,并且在高频下生产微波(类似于微波炉,但频率要高得多),并具有足够的功率,使DNP在高达395 GHz的频率下工作正在变得可行。这项提议旨在将这项技术结合到一种新的仪器中,现在可以在高达14.1T的磁场下对固体材料进行DNP,并开发在这些领域同时使用连续波和脉冲DNP的技术。DNP效应本身将带来灵敏度的巨大提高,在热平衡下,DNP效应可以提供电子与原子核的旋磁比的潜在增强,13C的旋磁比为~gt;2500倍,结合~90K下的MAS操作,通过热Boltzmann因子进一步增加增强。该仪器将以远高于已报道的核磁共振频率产生DNP,从而允许进行现代高分辨率固态核磁共振实验,比常规核磁共振获得100-1000个常规预期的增益。四极核(特别是那些具有非整数自旋的核)在很大程度上被排除在DNP之外,因为在当前的DNP磁场(Bo)下,核共振太宽了。这种二阶四极展宽需要使用高的Bo,而这里提出的仪器将有足够高的Bo来开启DNP的研究。该仪器的宽频率能力将为高场DNP的物理提供新的见解,使这一新兴领域首次能够开发出一种最佳技术。所提出的仪器的多功能性意味着,使用相同的设备,人们还可以进行世界领先的脉冲EPR和Endor实验。该项目是由结构生物学和燃料电池/电化学技术等多个重要领域的多学科应用推动的。DNP方法将允许在迄今由于样本大小和/或感兴趣的自旋数量有限而禁止使用核磁共振的情况下考虑核磁共振。这项技术的发展将对英国在许多关键科学技术领域的研究能力产生直接而深远的影响。
英文摘要
When scientists investigate problems like all good detectives they need clues as to what is happening. For a whole range of key problems, techniques that can reveal the local environment around an atom are crucial to provide insight into the structure at this level. Nuclear Magnetic Resonance (NMR) spectroscopy has increased in importance as it is an element specific probe that can distinguish very small changes in the surroundings of different sites (e.g. the number of corners by which an SiO4 unit is connected into a structure) which has become important throughout the sciences. Its major drawback is the intrinsically relatively weak signal due to the small thermally derived population differences between nuclear energy levels. NMR of solids was revolutionised with the implementation of cross-polarisation that transferred magnetisation from nuclei with high magnetic moments (e.g. 1H) to more dilute nuclei with smaller magnetic moments (e.g. 13C) that yielded a factor of ~4 increase in the 13C NMR signal strength. Today there is very significant effort with a wide range of approaches to try and increase the size of the NMR signal still further and considerable investment to achieve even a few tens of percent increase. Dynamic nuclear polarisation (DNP) is a technique that uses unpaired electron spins to boost the NMR signal by as much as 100,000. Although the effect has been known from theory and experiments at low magnetic fields for sometime, it is only now that this can be put into practice, with the whole experiment carried out at high magnetic field. This is possible now because high field magnets of sufficient flexibility and robustness can be manufactured, and the production of microwaves (similar to a microwave oven although much higher frequency) at high frequencies and with sufficient power for DNP to work at up to 395 GHz is becoming feasible. This proposal seeks to bring this technology together in a new instrument to now carry out DNP at magnetic fields up to 14.1 T on solid materials and to develop the technology to use both continuous wave and pulsed DNP at these fields. Huge gains in sensitivity will result from both the DNP effect itself which in thermal equilibrium, could offer potential enhancements of the ratio of the gyromagnetic ratio of the electron to that of the nucleus, a factor of >2500 for 13C, combined with MAS operation at ~90K further increasing the enhancement via the thermal Boltzmann factor. The instrument would produce DNP at NMR frequencies much beyond those yet reported and thus allow modern high resolution solid state NMR experiments to be undertaken with gains over conventional NMR of 100-1000 routinely expected. Quadrupolar nuclei (especially those with non-integer spins), which make up >75% of the NMR-active nuclei, have largely been precluded from DNP because the nuclear resonance is too broad at current DNP magnetic (Bo) fields. This second-order quadrupolar broadening demands the use of high Bo and the instrument proposed here would have sufficiently high Bo to open up their study by DNP. The wide frequency capability of the instrument would provide new insight into the physics of high field DNP allowing, for the first time, an optimum technology to be developed in this emerging field. The versatility of the instrument proposed means that, with the same equipment, one could also carry out world-leading pulsed EPR and ENDOR experiments. The project is driven by the multidisciplinary applications in areas of huge importance as diverse as structural biology and fuel cell/electrochemistry technology. The DNP approach will allow NMR to be considered where hitherto sensitivity would have prohibited its use because of the sample size and/or the number of spins of interest are limited. The development of this technology would have an immediate and profound effect on UK research capability in a number of key areas of science and technology.
期刊论文(5)
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会议论文
Recent Developments in Biomolecular NMR
生物分子核磁共振的最新进展
DOI: 10.1039/9781849735391-00271
发表时间: 2012
期刊:
影响因子: --
作者: [Bostock M]
通讯作者: Bostock M
Enantioselective syntheses of alpha-Fmoc-Pbf-[2-(13)C]-L-arginine and Fmoc-[1,3-(13)C2]-L-proline and Incorporation into the neurotensin receptor 1 ligand, NT(8-13).
α-Fmoc-Pbf-[2-(13)C]-L-精氨酸和 Fmoc-[1,3-(13)C2]-L-脯氨酸的对映选择性合成并掺入神经降压素受体 1 配体 NT(8
DOI: 10.1021/jo9014497
发表时间: 2009
期刊: The Journal of organic chemistry
影响因子: --
作者: [Song C]
通讯作者: Song C
Solution- and solid-state NMR studies of GPCRs and their ligands.
GPCR 及其配体的溶液和固态 NMR 研究。
DOI: 10.1016/j.bbamem.2010.10.003
发表时间: 2011
期刊: Biochimica et biophysica acta
影响因子: --
作者: [Tapaneeyakorn S]
通讯作者: Tapaneeyakorn S
Resolving mechanistic details of peptide transport across membranes using crystallographic and non-crystallographic structural biology approaches
  • 批准号:
    BB/N006011/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $130.23万
  • 财政年份:
    2016
  • 负责人:
    Anthony Watts
  • 依托单位:
Structure-function studies of antimicrobial and fusogenic peptides by solid state NMR spectroscopy and MD simulation
  • 批准号:
    EP/I029516/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $57.67万
  • 财政年份:
    2011
  • 负责人:
    Anthony Watts
  • 依托单位:
Probing transmembrane domain connecting loops in 7TM receptors to understand function
  • 批准号:
    G1000909/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $93.79万
  • 财政年份:
    2011
  • 负责人:
    Anthony Watts
  • 依托单位:
An investigation into the conformational changes and lipid dependence of NTS1 activation by its agonist
  • 批准号:
    G0900076/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $52.91万
  • 财政年份:
    2010
  • 负责人:
    Anthony Watts
  • 依托单位:
海外基金