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Rethinking biocatalysis and enzymology

Rethinking biocatalysis and enzymology
重新思考生物催化和酶学
批准号:
RGPIN-2022-03032
负责人:
Auclair, Karine
金额:
$5.61万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2022
资助国家:
加拿大
项目状态:
已结题
起止时间:
2022-01-01 至 2023-12-31

项目摘要

项目成果

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中文摘要
翻译
酶是大自然使用的催化剂。它们是一种可再生资源,无毒,是大多数药物的靶标。由于其复杂的三维结构,酶显示出化学催化剂中罕见的有趣特性。从可持续性的角度来看,使用酶来产生工业产品是有利的,也有利于获得新的反应活性。我们对酶催化的了解往往很肤浅,在过去的几十年里,酶是如何用于合成的几乎没有演变。提高我们对酶催化的认识对药物开发、农业和商品化学品的生产都有直接的影响。这项研究旨在通过建立新的、意想不到的方法来研究酶和设计生物催化过程,来重新思考我们研究酶机制的方式以及我们如何将其应用于生物催化。未来5年的目标是:1)探索使用生物催化剂的新条件;2)结合各种技术研究酶。虽然酶通常在稀水条件下使用,但在自然界中,它们很少浸泡在散装水中。例如,微生物在环境中分泌的酶在暴露在空气潮湿的表面上工作。最近,我们证明了一些酶在湿-固反应混合物中比在标准稀水条件下更有效,并且机械力(又名。机械酶学)可以对酶过程产生积极影响。我们认为,这样的条件更好地模拟了酶的自然环境,同时最大限度地减少了浪费,避免了溶解性问题。我们建议进一步探索这一策略的范围,例如使用来自其他类别的酶、整个微生物、其他底物和不同类型的反应。为了实现它们的功能,酶往往依赖于复杂的结构和动力学效应。例如,在变构中,小分子(称为效应器)将酶与活性部位结合,并增加或降低其活性,其机制仍不清楚。我们已经报道了几种研究变构的新策略。我们结合了不同的生物物理和合成技术。例如,我们将效应器永久连接到酶上,以促进机理研究,但也永久激活酶并创造出卓越的催化剂。我们建议结合几种技术来继续我们对酶变构的研究,并在湿固反应混合物和机械酶学中检测酶的反应活性和行为。这项研究具有很高的培训价值,因为它迫使受训者跳出框框思考。既然我们致力于非传统的酶反应混合物,并创造新的方法来使用和研究酶,我们就必须创新。该项目还提供了跨生物催化、酶学、微生物学、结构生物学、生物物理化学、生物化学、有机合成和材料科学的多学科培训机会。
英文摘要
Enzymes are the catalysts used by Nature. They are a renewable resource, non-toxic, and the target of most drugs. Thanks to their complex 3D structure, enzymes show interesting characteristics rarely found in chemical catalysts. The use of enzymes to generate industrial products is advantageous both from a sustainability perspective and to access new reactivity. Our understanding of enzyme catalysis is often superficial, and how enzymes are used in synthesis has barely evolved over the past decades. Improving our knowledge of enzyme catalysis has direct implications in drug discovery, agriculture, and the production of commodity chemicals. This research aims at rethinking the way that we investigate enzyme mechanisms and how we employ them in biocatalysis, by establishing novel, unexpected approaches to study enzymes and design biocatalytic processes. The goals for the next 5 years are to: 1) explore new conditions for the use of biocatalysts and 2) combine various techniques to study enzymes. Although enzymes are typically used in dilute aqueous conditions, in nature they are rarely immersed in bulk water. For example, enzymes secreted in the environment by microorganisms operate on surfaces exposed to air moisture. Recently, we demonstrated that some enzymes are more efficient in moist-solid reaction mixtures than under standard dilute aqueous conditions, and that mechanical forces (a.k.a. mechanoenzymology) can positively affect enzymatic processes. We believe that such conditions better mimic the enzyme's natural environment, while minimizing waste and avoiding solubility issues. We propose to further explore the scope of this strategy, for example with enzymes from other classes, whole microorganisms, other substrates, and diverse types of reactions. To achieve their function, enzymes often rely on complex structural and dynamical effects. For example, in allostery, small molecules (called effectors) bind the enzyme away from the active site and increase or decrease their activity, the mechanism of which remains poorly understood. We have reported several new strategies to study allostery. We combine different biophysical and synthetic techniques. For example, we permanently attach the effectors to the enzymes to facilitate mechanistic studies, but also permanently activate the enzyme and create superior catalysts. We propose to combine several techniques to pursue our study of enzyme allostery and examine the reactivity and behavior of enzymes in moist-solid reaction mixtures and in mechanoenzymology. This research has high training value as it forces trainees to think outside the box. Since we work with non-traditional enzymatic reaction mixtures and create new methods to employ and study enzymes, we must innovate. This program also offers opportunities for a multidisciplinary training that spans biocatalysis, enzymology, microbiology, structural biology, biophysical chemistry, biochemistry, organic synthesis and material sciences.
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Enzyme cooperativity, biocatalysis and bioconjugation
  • 批准号:
    RGPIN-2017-04107
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $3.28万
  • 财政年份:
    2021
  • 负责人:
    Auclair, Karine
  • 依托单位:
Enzymatic plastics depolymerization in moist-solid reaction mixtures
  • 批准号:
    560533-2021
  • 项目类别:
    Idea to Innovation
  • 资助金额:
    $9.11万
  • 财政年份:
    2021
  • 负责人:
    Auclair, Karine
  • 依托单位:
Enzyme cooperativity, biocatalysis and bioconjugation
  • 批准号:
    RGPIN-2017-04107
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $3.28万
  • 财政年份:
    2020
  • 负责人:
    Auclair, Karine
  • 依托单位:
Enzyme cooperativity, biocatalysis and bioconjugation
  • 批准号:
    RGPIN-2017-04107
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $3.28万
  • 财政年份:
    2019
  • 负责人:
    Auclair, Karine
  • 依托单位:
海外基金