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通过溶菌酶将壳聚糖解聚为长链寡糖。

Optimizing Chitin Depolymerization by Lysozyme to Long-Chain Oligosaccharides.

机构信息

Université Grenoble Alpes, CNRS, CERMAV, 38000 Grenoble, France.

Université Grenoble Alpes, CNRS, DCM, 38000 Grenoble, France.

出版信息

Mar Drugs. 2021 May 31;19(6):320. doi: 10.3390/md19060320.

Abstract

Chitin oligosaccharides (COs) hold high promise as organic fertilizers in the ongoing agro-ecological transition. Short- and long-chain COs can contribute to the establishment of symbiotic associations between plants and microorganisms, facilitating the uptake of soil nutrients by host plants. Long-chain COs trigger plant innate immunity. A fine investigation of these different signaling pathways requires improving the access to high-purity COs. Here, we used the response surface methodology to optimize the production of COs by enzymatic hydrolysis of water-soluble chitin (WSC) with hen egg-white lysozyme. The influence of WSC concentration, its acetylation degree, and the reaction time course were modelled using a Box-Behnken design. Under optimized conditions, water-soluble COs up to the nonasaccharide were formed in 51% yield and purified to homogeneity. This straightforward approach opens new avenues to determine the complex roles of COs in plants.

摘要

壳寡糖(COs)作为有机肥料,在当前的农业生态转型中具有广阔的应用前景。短链和长链 COs 可以促进植物与微生物之间共生关系的建立,促进宿主植物对土壤养分的吸收。长链 COs 可触发植物固有免疫。深入研究这些不同的信号通路需要提高获得高纯度 COs 的方法。在这里,我们使用响应面法优化了用蛋清溶菌酶酶解水溶性壳聚糖(WSC)生产 COs 的条件。使用 Box-Behnken 设计对 WSC 浓度、乙酰化程度和反应时间的影响进行了建模。在优化条件下,高达九糖的水溶性 COs 以 51%的产率形成,并达到均一纯度。这种简单的方法为确定 COs 在植物中的复杂作用开辟了新的途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8e89/8229320/abbb18c445ae/marinedrugs-19-00320-g001.jpg

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