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首页> 外文期刊>ChemSusChem >pH-Induced Lignin Surface Modification to Reduce Nonspecific Cellulase Binding and Enhance Enzymatic Saccharification of Lignocelluloses
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pH-Induced Lignin Surface Modification to Reduce Nonspecific Cellulase Binding and Enhance Enzymatic Saccharification of Lignocelluloses

机译:pH-诱导的木质素表面改性以减少非特异性纤维素酶结合和增强木质纤维素的酶促糖化

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We studied the mechanism of the significant enhancement in the enzymatic saccharification of lignocelluloses at an elevated pH of 5.56.0. Four lignin residues with different sulfonic acid contents were isolated from enzymatic hydrolysis of lodgepole pine pretreated by either dilute acid (DA) or sulfite pretreatment to overcome recalcitrance of lignocelluloses (SPORL). The adsorption isotherms of a commercial Trichoderma reesi cellulase cocktail (CTec2) produced by these lignin residues at 50 degrees C were measured in the pH range of 4.56.0. The zeta potentials of these lignin samples were also measured. We discovered that an elevated pH significantly increased the lignin surface charge (negative), which causes lignin to become more hydrophilic and reduces its coordination affinity to cellulase and, consequently, the nonspecific binding of cellulase. The decreased nonspecific cellulase binding to lignin is also attributed to enhanced electrostatic interactions at elevated pH through the increased negative charges of cellulase enzymes with low pI. The results validate the hypothesis that the increases in enzymatic saccharification efficiencies at elevated pH for different pretreated lignocelluloses are solely the result of decreased nonspecific cellulase binding to lignin. This study contradicts the well-established concept that the optimal pH is 4.85.0 for enzymatic hydrolysis using Trichoderma reesi cellulose, which is widely accepted and exclusively practiced in numerous laboratories throughout the world. Because an elevated pH can be easily implemented commercially without capital cost and with minimal operating cost, this study has both scientific importance and practical significance.
机译:我们研究了升高的pH值为5.56.0的木质纤维素酶糖化的显着增强机制。用稀酸(DA)或亚硫酸亚硫酸盐预处理的Lodgepole杉木的酶水解中分离出具有不同磺酸内容物的四种木质素残留物,以克服木质纤维素(Sporl)的核批量。通过这些木质素残留物在50℃下产生的商业Trichoderma Reesi纤维素酶混合物(CTEC2)的吸附等温物在4.56.0的pH范围内测量。还测量了这些木质素样品的Zeta电位。我们发现升高的pH值显着增加了木质素表面电荷(阴性),导致木质素变得更加亲水并降低其对纤维素酶的协调亲和力,并且因此,纤维素酶的非特异性结合。对木质素的无特异性纤维素酶结合的降低也归因于通过具有低PI的纤维素酶的增加的负荷增加了升高的pH下的静电相互作用。结果验证了对不同预处理的木质纤维素升高的pH升高的酶糖化效率的增加仅仅是对木质素的结合降低的结果。该研究与使用Trichoderma Reesi纤维素的酶水解是4.85.0的完善的概念,该概念是使用Trichoderma Reesi纤维素的酶水解,这在全球许多实验室中被广泛接受并专门实施。由于升高的pH可以在商业上很容易地在没有资本成本并且具有最小的运营成本的情况下,这项研究具有科学的重要性和实际意义。

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