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A step change in the modelling of enzymatic catalysis

A step change in the modelling of enzymatic catalysis
酶催化建模的重大变化
批准号:
2449420
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2020
资助国家:
英国
项目状态:
未结题
起止时间:
2020 至 --

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中文摘要
翻译
对酶促过程的深刻理解需要原子水平的描述,这通常超出了实验技术的范围,但可以通过与计算化学的协同作用来实现。这个纯粹的计算项目在一种名为FFLUX[1]的新型力场方法奠定的基础上,提出了酶活性位点建模的一个步骤变化。这种方法是基于分子系统[2]中原子的最佳现代定义。FFLUX使用机器学习来训练这些原子在以前看不见的原子配置中“知道该做什么”。换句话说,在酶的活性位点上,原子之间的量子力学精确的能量和力是很容易获得的。因此,无论是静态还是动态,都可以快速准确地探测到活性部位的势能面。最适合在酶工程中应用FFLUX的原型案例是萜类化合物。它们是最丰富和最大的一类天然产物(> 75000)。大多数通常在植物中发现,具有从种间通信到细胞内信号和防御掠食性物种的生物学作用。它们的商业用途广泛,如制药、除草剂、调味品、香料和生物燃料。分子动力学模拟表明,单萜合成酶类酶在反应周期中(在初始底物结合后)不会发生大规模的构象变化,这使得它们成为基于结构的蛋白质工程的有吸引力的目标,以扩大其对替代单萜烯支架的催化范围。这类非常重要的化合物已经在MIB中得到了深入的研究,这丰富了与实验家相互作用的范围。该项目的目的是在模拟酶的活性位点的现实主义创造一个步骤的变化。对反应进行严格而又易于理解的量子力学描述,对最终的进展至关重要。只有对酶的反应机制有了详细的原子洞察力,使用fflux酶,才能正确地使未来酶的设计合理化。
英文摘要
A deep understanding of enzymatic processes requires an atomic-level description, which is often beyond the reach of experimental techniques but can be achieved through synergy with computational chemistry. This purely computational project proposes a step change in the modelling of an enzyme's active site by building on the foundations laid by a novel force field method called FFLUX[1]. This method is based on the best modern definition of an atom inside a molecular system[2]. FFLUX uses machine learning to train these atoms to "know what to do" in a previously unseen atomic configuration. In other words, quantum mechanically accurate energies and forces between atoms in an enzyme's active site are readily available. Hence, the potential energy surface of the active site can be quickly and accurately explored, both statically and dynamically. A most suitable prototype case for using FFLUX in enzyme engineering is that of terpenoids. They are the most abundant and largest class (>75,000) of natural products[3]. Most are commonly found in plants, with biological roles ranging from interspecies communication to intracellular signalling and defence against predatory species. Their commercial use is wide ranging as pharmaceuticals, herbicides, flavourings, fragrances and biofuels. Molecular dynamics simulations suggest that the monoterpene synthase class of enzymes do not undergo large-scale conformational changes during the reaction cycle (after initial substrate binding), making them attractive targets for structured-based protein engineering to expand their catalytic scope toward alternative monoterpene scaffolds. This very important class of compounds has been thoroughly studied in the MIB, which enriches the scope for interaction with experimentalists. The aim of the project is to create a step change in the realism of modelling an enzyme's active site. A rigorous yet accessible quantum mechanical description of a reaction is vital for ultimate progress. Only with detailed atomic insight into the mechanism of an enzymatic reaction, using FFLUX-for-enzymes, can one correctly rationalise the design of future enzymes.
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  • 批准号:
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  • 项目类别:
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  • 资助金额:
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  • 项目类别:
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  • 批准年份:
    2010
  • 负责人:
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  • 批准年份:
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  • 负责人:
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