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组合优化设计的模块化文库混合纤维素酶复合结构。

Combinatorial optimization of the hybrid cellulase complex structure designed from modular libraries.

机构信息

Department of Biomolecular Engineering, Graduate School of Engineering, Tohoku University, Aoba 6-6-1, Aramaki, Aoba-Ku, Sendai, 980-8579, Japan.

Center for Advanced Intelligence Project, RIKEN, Tokyo, Japan.

出版信息

Sci Rep. 2024 Sep 28;14(1):22429. doi: 10.1038/s41598-024-73541-2.

Abstract

Cellulase selectively recognizes cellulose surfaces and cleaves their β-1,4-glycosidic bonds. Combining hydrolysis using cellulase and fermentation can produce alternative fuels and chemical products. However, anaerobic bacteria produce only low levels of highly active cellulase complexes so-called cellulosomes. Therefore, we designed hybrid cellulase complexes from 49 biotinylated catalytic domain (CD) and 30 biotinylated cellulose-binding domain (CBD) libraries on streptavidin-conjugated nanoparticles to enhance cellulose hydrolysis by mimicking the cellulosome structure. The hybrid cellulase complex, incorporating both native CD and CBD, significantly improved reducing sugar production from cellulose compared to free native modular enzymes. The optimal CBD for each hybrid cellulase complex differed from that of the native enzyme. The most effective hybrid cellulase complex was observed with the combination of CD from Thermobifida fusca YX and CBD from the Bacillus halodurans C-125. The hybrid cellulase complex/CD-CBD and -CD-CBD combinations showed increased reducing sugar production. Similar results were also observed in microcrystalline cellulose degradation. Furthermore, clustering on nanoparticles enhanced enzyme thermostability. Our results demonstrate that hybrid cellulase complex structures improve enzyme function through synergistic effects and extend the lifespan of the enzyme.

摘要

纤维素酶选择性识别纤维素表面并切割其β-1,4-糖苷键。将纤维素酶水解与发酵相结合可以生产替代燃料和化学产品。然而,厌氧细菌只产生少量高活性的纤维素酶复合物,即所谓的纤维小体。因此,我们设计了来自链霉亲和素结合纳米颗粒上的 49 个生物素化催化结构域 (CD) 和 30 个生物素化纤维素结合结构域 (CBD) 文库的杂交纤维素酶复合物,通过模拟纤维小体结构来增强纤维素水解。与游离天然模块化酶相比,包含天然 CD 和 CBD 的杂交纤维素酶复合物显著提高了纤维素的还原糖产量。每个杂交纤维素酶复合物的最佳 CBD 与天然酶不同。观察到最有效的杂交纤维素酶复合物是由Thermobifida fusca YX 的 CD 和 Bacillus halodurans C-125 的 CBD 组成的。杂交纤维素酶复合物/CD-CBD 和-CD-CBD 组合显示出增加的还原糖产量。在微晶纤维素降解中也观察到类似的结果。此外,在纳米颗粒上的聚集增强了酶的热稳定性。我们的结果表明,杂交纤维素酶复合物结构通过协同作用提高了酶的功能,并延长了酶的寿命。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7b1a/11438973/3e47da33e36f/41598_2024_73541_Fig1_HTML.jpg

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