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遗传互补增强活性: 通过 和 异源分泌梭菌纤维素酶。

Enhanced Activity by Genetic Complementarity: Heterologous Secretion of Clostridial Cellulases by and .

机构信息

Institute of Microbiology, Bulgarian Academy of Sciences, 1113 Sofia, Bulgaria.

Institute of Chemical Engineering, Bulgarian Academy of Sciences, 1113 Sofia, Bulgaria.

出版信息

Molecules. 2021 Sep 16;26(18):5625. doi: 10.3390/molecules26185625.

Abstract

To adapt to various ecological niches, the members of genus display a wide spectrum of glycoside hydrolases (GH) responsible for the hydrolysis of cellulose and lignocellulose. Being abundant and renewable, cellulose-containing plant biomass may be applied as a substrate in second-generation biotechnologies for the production of platform chemicals. The present study aims to enhance the natural cellulase activity of two promising 2,3-butanediol (2,3-BD) producers, 24 and 5RB, by cloning and heterologous expression of and genes of . In , the endocellulase Cel8A (GH8) was cloned to supplement the action of CelA (GH9), while in , the cellobiohydrolase Cel48S (GH48) successfully complemented the activity of endo-cellulase EglS (GH5). The expression of the natural and heterologous cellulase genes in both hosts was demonstrated by reverse-transcription PCR. The secretion of clostridial cellulases was additionally enhanced by enzyme fusion to the subtilisin-like signal peptide, reaching a significant increase in the cellulase activity of the cell-free supernatants. The results presented are the first to reveal the possibility of genetic complementation for enhancement of cellulase activity in bacilli, thus opening the prospect for genetic improvement of strains with an important biotechnological application.

摘要

为了适应各种生态位,属的成员展示了广泛的糖苷水解酶(GH),负责纤维素和木质纤维素的水解。作为丰富且可再生的纤维素植物生物质,可作为第二代生物技术中用于生产平台化学品的底物。本研究旨在通过克隆和异源表达 的 和 基因,提高两种有前途的 2,3-丁二醇(2,3-BD)生产菌 24 和 5RB 的天然纤维素酶活性。在 24 中,内切纤维素酶 Cel8A(GH8)被克隆以补充 CelA(GH9)的作用,而在 5RB 中,纤维二糖水解酶 Cel48S(GH48)成功地补充了内切纤维素酶 EglS(GH5)的活性。通过逆转录 PCR 证明了天然和异源纤维素酶基因在两种宿主中的表达。通过将梭菌纤维素酶融合到枯草杆菌信号肽中来进一步增强酶的分泌,从而使无细胞上清液中的纤维素酶活性显著增加。所呈现的结果首次揭示了遗传互补增强芽孢杆菌纤维素酶活性的可能性,从而为具有重要生物技术应用的菌株的遗传改良开辟了前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c2f2/8468253/e8d8153a6ca8/molecules-26-05625-g001.jpg

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