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解析生物产物结构的酶。

Enzymes to unravel bioproducts architecture.

机构信息

INRAE, Montpellier SupAgro, CIRAD, Université de Montpellier, IATE, F-34000 Montpellier, France.

INRAE, QuaPA, F-63122 Saint-Genès-Champanelle, France.

出版信息

Biotechnol Adv. 2020 Jul-Aug;41:107546. doi: 10.1016/j.biotechadv.2020.107546. Epub 2020 Apr 8.

DOI:10.1016/j.biotechadv.2020.107546
PMID:32275940
Abstract

Enzymes are essential and ubiquitous biocatalysts involved in various metabolic pathways and used in many industrial processes. Here, we reframe enzymes not just as biocatalysts transforming bioproducts but also as sensitive probes for exploring the structure and composition of complex bioproducts, like meat tissue, dairy products and plant materials, in both food and non-food bioprocesses. This review details the global strategy and presents the most recent investigations to prepare and use enzymes as relevant probes, with a focus on glycoside-hydrolases involved in plant deconstruction and proteases and lipases involved in food digestion. First, to expand the enzyme repertoire to fit bioproduct complexity, novel enzymes are mined from biodiversity and can be artificially engineered. Enzymes are further characterized by exploring sequence/structure/dynamics/function relationships together with the environmental factors influencing enzyme interactions with their substrates. Then, the most advanced experimental and theoretical approaches developed for exploring bioproducts at various scales (from nanometer to millimeter) using active and inactive enzymes as probes are illustrated. Overall, combining multimodal and multiscale approaches brings a better understanding of native-form or transformed bioproduct architecture and composition, and paves the way to mainstream the use of enzymes as probes.

摘要

酶是参与各种代谢途径的必不可少且无处不在的生物催化剂,广泛应用于许多工业过程中。在这里,我们不仅将酶重新定义为转化生物制品的生物催化剂,还将其定义为探索复杂生物制品结构和组成的敏感探针,这些生物制品包括食品和非食品生物加工中的肉类组织、乳制品和植物材料。本综述详细介绍了全球策略,并介绍了最新的研究进展,旨在制备和使用酶作为相关探针,重点介绍了参与植物解构的糖苷水解酶以及参与食物消化的蛋白酶和脂肪酶。首先,为了扩大酶的种类以适应生物制品的复杂性,可以从生物多样性中挖掘新的酶,并进行人工设计。通过探索序列/结构/动力学/功能关系以及影响酶与其底物相互作用的环境因素,进一步对酶进行表征。然后,我们展示了为了在不同尺度(从纳米到毫米)下探索生物制品而开发的最先进的实验和理论方法,这些方法使用活性和非活性酶作为探针。总的来说,结合多模态和多尺度的方法可以更好地理解天然或转化生物制品的结构和组成,并为将酶作为探针的广泛应用铺平道路。

相似文献

1
Enzymes to unravel bioproducts architecture.解析生物产物结构的酶。
Biotechnol Adv. 2020 Jul-Aug;41:107546. doi: 10.1016/j.biotechadv.2020.107546. Epub 2020 Apr 8.
2
Comparison of lipases and glycoside hydrolases as catalysts in synthesis reactions.脂肪酶和糖苷水解酶作为合成反应催化剂的比较。
Appl Microbiol Biotechnol. 2017 Jan;101(2):513-519. doi: 10.1007/s00253-016-8055-x. Epub 2016 Dec 19.
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An Ocean of Discovery: Biodiversity Beyond the Census of Marine Life.发现之海:海洋生物普查之外的生物多样性
Planta Med. 2016 Jun;82(9-10):790-9. doi: 10.1055/s-0042-103934. Epub 2016 Apr 19.
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Recombinant Lipases and Phospholipases and Their Use as Biocatalysts for Industrial Applications.重组脂肪酶和磷脂酶及其作为工业应用生物催化剂的用途。
Int J Mol Sci. 2015 Sep 1;16(9):20774-840. doi: 10.3390/ijms160920774.
5
GDSL family of serine esterases/lipases.丝氨酸酯酶/脂肪酶的GDSL家族。
Prog Lipid Res. 2004 Nov;43(6):534-52. doi: 10.1016/j.plipres.2004.09.002.
6
Enzyme-assisted extraction of flavorings and colorants from plant materials.酶辅助从植物材料中提取香料和色素。
Crit Rev Food Sci Nutr. 2010 Feb;50(2):146-61. doi: 10.1080/10408390802248775.
7
Recent advances on sources and industrial applications of lipases.脂肪酶的来源及工业应用的最新进展
Biotechnol Prog. 2018 Jan;34(1):5-28. doi: 10.1002/btpr.2581. Epub 2017 Dec 4.
8
Architecture and physicochemical characterization of Bacillus biofilm as a potential enzyme immobilization factory.芽孢杆菌生物膜的结构和理化特性分析及其作为潜在酶固定化工厂的研究。
Colloids Surf B Biointerfaces. 2018 Feb 1;162:246-255. doi: 10.1016/j.colsurfb.2017.11.057. Epub 2017 Nov 23.
9
Bioprospecting metagenomics of a microbial community on cotton degradation: Mining for new glycoside hydrolases.棉花降解微生物群落的生物勘探宏基因组学:挖掘新型糖苷水解酶
J Biotechnol. 2016 Sep 20;234:35-42. doi: 10.1016/j.jbiotec.2016.07.017. Epub 2016 Jul 25.
10
Synthetic and Natural Lipase Inhibitors.合成和天然脂肪酶抑制剂。
Mini Rev Med Chem. 2018;18(8):672-683. doi: 10.2174/1389557516666160630123356.

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