a Key Laboratory for Green Processing of Chemical Engineering of Xinjiang Bingtuan/School of Chemistry and Chemical Engineering , Shihezi University , Shihezi , PR China.
Bioengineered. 2018;9(1):222-232. doi: 10.1080/21655979.2018.1472465.
In this report, the decolorization features of extracellular enzymes and mycelia separately prepared from Aspergillus sp. TS-A CGMCC 12,964 (120 h) were investigated. The fermentation broth of TS-A degraded 98.6% of Mordant Yellow 1 (50 mg/L) at an initial pH 6 within 1 h with over 70% of the dye (50 mg/L) degraded by extracellular enzymes and 18.8% removed by live mycelia. The degradation products of the dye were analyzed by UV-Vis and FTIR spectra. The decolorization rates of extracellular enzymes and mycelia were examined under different contact periods, dye concentrations and pH values. The extracellular enzymes exhibited excellent degradation activity under weak acidic conditions. In addition, biosorption models of mycelia fitted well the Langmuir isotherm model and the pseudo-second-order kinetic equation. Although the decolorization process was achieved through the synergistic effects of mycelia and extracellular enzymes, decolorization was dominated by the biodegradation activity of the extracellular enzymes from TS-A.
在本报告中,研究了分别从曲霉 TS-A CGMCC 12,964(120 h)制备的胞外酶和菌丝体的脱色特性。TS-A 的发酵液在初始 pH 值为 6 时,1 h 内可降解 98.6%的媒染黄 1(50 mg/L),其中超过 70%的染料(50 mg/L)被胞外酶降解,18.8%被活菌丝体去除。通过 UV-Vis 和 FTIR 光谱分析了染料的降解产物。考察了不同接触时间、染料浓度和 pH 值对胞外酶和菌丝体脱色率的影响。胞外酶在弱酸性条件下表现出优异的降解活性。此外,菌丝体的生物吸附模型很好地符合了朗缪尔等温线模型和拟二级动力学方程。虽然脱色过程是通过菌丝体和胞外酶的协同作用实现的,但脱色主要由 TS-A 的胞外酶的生物降解活性决定。