Enhancement of bacterial cellulose production by ethanol and lactic acid by using Gluconacetobacter kombuchae

乳酸 细菌纤维素 结晶度 纤维素 生物高聚物 极限抗拉强度 产量(工程) 乙醇 化学 食品科学 核化学 材料科学 细菌 生物化学 有机化学 复合材料 聚合物 生物 遗传学 结晶学
作者
Poonam Sharma,Ritu Sharma,Simran Ahuja,Anita Yadav,Sanjiv Arora,Neeraj Aggarwal
出处
期刊:Preparative Biochemistry & Biotechnology [Taylor & Francis]
卷期号:54 (5): 700-708
标识
DOI:10.1080/10826068.2023.2276188
摘要

The current study intended to analyze the impact of ethanol and lactic acid on the bacterial cellulose yield as well as physicochemical and mechanical properties, by using Gluconacetobacter kombuchae. The optimization of ethanol and lactic acid concentration has been done by using one-way ANOVA. Both the supplements significantly enhance the yield of bacterial cellulose (BC) as compared to the standard Hestrin–Schramm medium (control). Optimization leads to significant increase in BC yield as compared to the control, i.e., the addition, of optimized concentration of lactic acid (0.6%) increases the yield from (0.78 ± 0.026) g to (4.89 ± 0.020) g dry weight, and optimized concentration of ethanol (1%) increases the yield from (0.73 ± 0.057) g to (3.7 ± 0.01) g dry weight. Various physicochemical and mechanical properties of BC films produced in different media (i.e., HS, HS + Ethanol, and HS + Lactic acid), such as the crystallinity, structure, tensile strength, strain at break, Young's modulus, and water holding capacity, were also examined, by employing various techniques such as SEM, FTIR, XRD, etc. BC produced in medium supplemented with the optimum concentration of both the additives were found to possesses higher porosity. Though, slight decline in crystallinity was observed. But the tensile strength and strain at break, were upgraded 1.5–2.5 times, 2-2.5 times, respectively. This article attempted to present a method for enhancing BC yields and characteristics that may lead to more widespread and cost-effective use of this biopolymer.
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