Department of Food Engineering, Akdeniz University, Antalya, Turkey.
Biotechnol Prog. 2019 Nov;35(6):e2885. doi: 10.1002/btpr.2885. Epub 2019 Aug 1.
The main objectives of this study were to optimize β-mannanase fermentation conditions by using Response Surface Methodology (RSM) and to model kinetically using the kinetic models. Based on the results, the optimum fermentation conditions were found to be initial sugar concentration of 10°Bx, whey concentration of 0.75% [w/v], and inoculum size of 8% (v/v). Under optimized conditions, β-mannanase activity (P), sugar consumed (ΔS), maximum β-mannanase production rate (Q ), and sugar utilization yield (SUY) were 687.89 U/mL, 47.38 g/L, 118.54 U mL day , and 69.73%, respectively. Kinetic models were employed to describe the optimum β-mannanase fermentation process. The kinetic analysis of β-mannanase fermentation showed that β-mannanase fermentation is growth associated because the α value (U/mgX) is approximately 330-fold higher than the β value (U/mgX·hr). Nevertheless, maintenance value (Z) was lower than γ value, thus showing that Aspergillus niger mainly utilizes the sugars for β-mannanase production and fungal growth. Consequently, carob extract and whey powder could be used to be cost-effective carbon and organic nitrogen sources, respectively. It was clearly indicated that the suggested kinetic models can successfully describe the fungal growth, β-mannanase production, and substrate consumption.
本研究的主要目的是通过响应面法(RSM)优化β-甘露聚糖酶发酵条件,并使用动力学模型对其进行建模。根据结果,发现最佳发酵条件为初始糖浓度为 10°Bx、乳清浓度为 0.75%[w/v]和接种量为 8%(v/v)。在优化条件下,β-甘露聚糖酶活性(P)、糖消耗(ΔS)、最大β-甘露聚糖酶生产速率(Q)和糖利用率(SUY)分别为 687.89 U/mL、47.38 g/L、118.54 U/mL·天和 69.73%。采用动力学模型来描述最佳β-甘露聚糖酶发酵过程。β-甘露聚糖酶发酵的动力学分析表明,β-甘露聚糖酶发酵是生长相关的,因为α值(U/mgX)比β值(U/mgX·hr)高约 330 倍。然而,维持值(Z)低于γ值,表明黑曲霉主要利用糖来生产β-甘露聚糖酶和真菌生长。因此,角豆提取物和乳清粉可以分别用作经济有效的碳源和有机氮源。显然,所提出的动力学模型可以成功地描述真菌生长、β-甘露聚糖酶生产和基质消耗。