McCarter Suzanne L, Adney William S, Vinzant Todd B, Jennings Edward, Eddy Fannie Posey, Decker Stephen R, Baker John O, Sakon Joshua, Himmel Michael E
Biotechnology for Fuels and Chemicals Division, National Bioenergy Center, National Renewable Energy Laboratory, Golden, CO 80401, USA.
Appl Biochem Biotechnol. 2002 Spring;98-100:273-87. doi: 10.1385/abab:98-100:1-9:273.
Understanding the interactions between cellulases and cellulosic substrates is critical to the development of an efficient artificial cellulase system for conversion of biomass to sugars. We directed specific mutations to the interactive surface of the Acidothermus cellulolyticus EI endoglucanase catalytic domain. The cellulose-binding domain is not translated in these mutants. Amino acid mutations were designed either to change the surface charge of the protein or to modify the potential for hydrogen bonding with cellulose. The relationship between cellulase-to-cellulose (Avicel PH101) binding and hydrolysis activity was determined for various groupings of mutations. While a significant increase in hydrolysis activity was not observed, certain clusters of residues did significantly alter substrate binding and some interesting correlations emerged. In the future, these observations may be used to aid the design of endoglucanases with improved performance on pretreated biomass.
了解纤维素酶与纤维素底物之间的相互作用对于开发一种高效的人工纤维素酶系统至关重要,该系统可将生物质转化为糖。我们对嗜热栖热放线菌EI内切葡聚糖酶催化结构域的相互作用表面进行了特定突变。这些突变体中不翻译纤维素结合结构域。设计氨基酸突变以改变蛋白质的表面电荷或改变与纤维素形成氢键的可能性。针对各种突变组合,测定了纤维素酶与纤维素(微晶纤维素PH101)结合与水解活性之间的关系。虽然未观察到水解活性显著增加,但某些残基簇确实显著改变了底物结合,并且出现了一些有趣的相关性。未来,这些观察结果可用于辅助设计在预处理生物质上具有改进性能的内切葡聚糖酶。