A new concept of biocatalytic synthesis of acrylic monomers for obtaining water-soluble acrylic heteropolymers

IF 3.7 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Metabolic Engineering Communications Pub Date : 2023-12-19 DOI:10.1016/j.mec.2023.e00231
Konstantin V. Lavrov , Anna O. Shemyakina , Elena G. Grechishnikova , Tatyana V. Gerasimova , Tatyana I. Kalinina , Andrey D. Novikov , Tatyana E. Leonova , Ludmila E. Ryabchenko , Telman A. Bayburdov , Alexander S. Yanenko
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Abstract

Rhodococcus strains were designed as model biocatalysts (BCs) for the production of acrylic acid and mixtures of acrylic monomers consisting of acrylamide, acrylic acid, and N-alkylacrylamide (N-isopropylacrylamide). To obtain BC strains, we used, among other approaches, adaptive laboratory evolution (ALE), based on the use of the metabolic pathway of amide utilization. Whole genome sequencing of the strains obtained after ALE, as well as subsequent targeted gene disruption, identified candidate genes for three new amidases that are promising for the development of BCs for the production of acrylic acid from acrylamide. New BCs had two types of amidase activities, acrylamide-hydrolyzing and acrylamide-transferring, and by varying the ratio of these activities in BCs, it is possible to influence the ratio of monomers in the resulting mixtures. Based on these strains, a prototype of a new technological concept for the biocatalytic synthesis of acrylic monomers was developed for the production of water-soluble acrylic heteropolymers containing valuable N-alkylacrylamide units. In addition to the possibility of obtaining mixtures of different compositions, the advantages of the concept are a single starting reagent (acrylamide), more unification of processes (all processes are based on the same type of biocatalyst), and potentially greater safety for personnel and the environment compared to existing chemical technologies.

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生物催化合成丙烯酸单体以获得水溶性丙烯酸杂聚合物的新概念
Rhodococcus 菌株被设计为生产丙烯酸以及由丙烯酰胺、丙烯酸和 N-烷基丙烯酰胺(N-异丙基丙烯酰胺)组成的丙烯酸单体混合物的模型生物催化剂(BC)。为了获得 BC 菌株,我们采用了适应性实验室进化(ALE)等方法,其基础是利用酰胺的代谢途径。通过对适应性实验室进化(ALE)后获得的菌株进行全基因组测序以及随后的靶向基因干扰,我们发现了三种新型酰胺酶的候选基因,这些基因有望用于开发从丙烯酰胺生产丙烯酸的 BCs。新的 BCs 具有两种酰胺酶活性,即丙烯酰胺水解活性和丙烯酰胺转移活性,通过改变 BCs 中这两种活性的比例,可以影响所得混合物中单体的比例。在这些菌株的基础上,开发出了丙烯酸单体生物催化合成新技术概念的原型,用于生产含有宝贵的 N-烷基丙烯酰胺单元的水溶性丙烯酸杂聚合物。除了可以获得不同成分的混合物外,该概念的优势还在于只需一种起始试剂(丙烯酰胺),工艺更加统一(所有工艺都基于同一种生物催化剂),而且与现有的化学技术相比,对人员和环境可能更加安全。
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来源期刊
Metabolic Engineering Communications
Metabolic Engineering Communications Medicine-Endocrinology, Diabetes and Metabolism
CiteScore
13.30
自引率
1.90%
发文量
22
审稿时长
18 weeks
期刊介绍: Metabolic Engineering Communications, a companion title to Metabolic Engineering (MBE), is devoted to publishing original research in the areas of metabolic engineering, synthetic biology, computational biology and systems biology for problems related to metabolism and the engineering of metabolism for the production of fuels, chemicals, and pharmaceuticals. The journal will carry articles on the design, construction, and analysis of biological systems ranging from pathway components to biological complexes and genomes (including genomic, analytical and bioinformatics methods) in suitable host cells to allow them to produce novel compounds of industrial and medical interest. Demonstrations of regulatory designs and synthetic circuits that alter the performance of biochemical pathways and cellular processes will also be presented. Metabolic Engineering Communications complements MBE by publishing articles that are either shorter than those published in the full journal, or which describe key elements of larger metabolic engineering efforts.
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