热稳定性
合理设计
琼脂糖
突变体
限制
蛋白质工程
分子动力学
二硫键
化学
水解
蛋白质设计
分子工程
热稳定性
定向进化
合成生物学
材料科学
过程(计算)
工程设计过程
组合化学
生物物理学
突变
纳米技术
熔化温度
聚合物
工作(物理)
分子模型
工艺设计
作者
Yuxian You,Chaojun Jiang,Yixiong Tian,Danyang Li,Haocun Kong,Caiming Li,Xiaofeng Ban,Zhengbiao Gu,Zhen Li
标识
DOI:10.1021/acs.jafc.5c16880
摘要
α-Agarases hydrolyze agarose into bioactive agaro-oligosaccharides but often suffer from poor thermostability, limiting industrial application above the agarose gelling temperature. Here, we enhanced the thermostability of a multidomain α-agarase from Catenovulum maritimum STB14 (CmAga) through rational design targeting its flexible regions. Molecular dynamics simulations identified six highly flexible segments. Key residues were subjected to site-directed mutagenesis, yielding stabilizing single mutants (D156N and D381R) and a double mutant with enhanced thermal resistance. Disulfide bond engineering further provided a stabilized variant (D579C-W597C). The combination mutant of the two strategies exhibited a 3.15 °C increase in melting temperature and a 16.05-fold longer half-life at 50 °C. Structural analyses indicated that stabilization arises from reduced overall conformational fluctuations and an optimized hydrogen-bond network, demonstrating that the four-site mutations act cooperatively across the entire molecular structure. This work provides thermostable α-agarase variants for industrial use and a rational design framework for engineering flexible multidomain glycosidases.
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