Department of Chemical and Biological Engineering, University of Colorado, 3415 Colorado Avenue, Boulder, CO 80309, USA.
Department of Chemical Engineering, University of Washington, 3781 Okanogan Lane NE, Seattle, WA 98195-1750, USA.
Protein Eng Des Sel. 2021 Feb 15;34. doi: 10.1093/protein/gzab031.
Cellulases are largely afflicted by inhibition from their reaction products, especially at high-substrate loading, which represents a major challenge for biomass processing. This challenge was overcome for endoglucanase 1 (E1) from Acidothermus cellulolyticus by identifying a large conformational change involving distal residues upon binding cellobiose. Having introduced alanine substitutions at each of these residues, we identified several mutations that reduced cellobiose inhibition of E1, including W212A, W213A, Q247A, W249A and F250A. One of the mutations (W212A) resulted in a 47-fold decrease in binding affinity of cellobiose as well as a 5-fold increase in the kcat. The mutation further increased E1 activity on Avicel and dilute-acid treated corn stover and enhanced its productivity at high-substrate loadings. These findings were corroborated by funnel metadynamics, which showed that the W212A substitution led to reduced affinity for cellobiose in the +1 and +2 binding sites due to rearrangement of key cellobiose-binding residues.
纤维素酶在很大程度上受到其反应产物的抑制,尤其是在高底物负荷下,这对生物质处理构成了重大挑战。通过鉴定内切葡聚糖酶 1(E1)与纤维二糖结合时涉及远端残基的大构象变化,克服了来自纤维素分解高温菌的 E1 对纤维二糖的抑制。在这些残基的每个位置引入丙氨酸取代,我们鉴定出了几个降低 E1 对纤维二糖抑制的突变,包括 W212A、W213A、Q247A、W249A 和 F250A。其中一个突变(W212A)导致纤维二糖的结合亲和力降低了 47 倍,kcat 增加了 5 倍。该突变进一步提高了 E1 在微晶纤维素和稀酸处理的玉米秸秆上的活性,并提高了其在高底物负荷下的生产力。这些发现得到了漏斗型元动力学的证实,该模型表明,由于关键纤维二糖结合残基的重排,W212A 取代导致与+1 和+2 结合位点的纤维二糖亲和力降低。