Production of nanocellulose in miniature-bioreactor: Optimization and characterization

Sepideh Khazeni, A. Hatamian-Zarmi, F. Yazdian, Z. Mokhtari-Hosseini, B. Ebrahimi-Hosseinzadeh, Behnam Noorani, Ghassem Amoabedini, M. Soudi
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引用次数: 6

Abstract

ABSTRACT Bacterial cellulose (BC) is a very fascinating microbial biopolymer which is mainly produced by Gluconacetobacter xylinum. Optimization of BC production by G. xylinum was performed based on scale-down studies in miniature-bioreactor and response surface methodology in which the optimum pH value (6.5) and shaking rate (50 rpm) were obtained. The static culture condition for BC production has newly been defined. Nanostructure of BC includes nanofibers up to (60 nm) and nanoporosity up to (265 nm) was observed by scanning electron microscopy. By Fourier transform infrared spectroscopy study, the most expected BC interaction is nucleophilic interaction. MTT assay showed high biocompatibility. Appropriate mechanical strength (0.37 MPa) and Young’s modulus (3.36 MPa) evinced BC scaffold utilization for skin tissue. The results indicate that BC sheets can be utilized in biomedical application and nanotechnology approaches.
微型生物反应器生产纳米纤维素:优化与表征
细菌纤维素(BC)是一种非常有吸引力的微生物生物聚合物,主要由xylinum糖醋杆菌生产。在小型生物反应器和响应面法的基础上进行了G. xylinum生产BC的优化研究,获得了最佳pH值(6.5)和摇摇速率(50 rpm)。新定义了生产BC的静态培养条件。扫描电镜观察到BC的纳米结构包括60 nm的纳米纤维和265 nm的纳米孔隙度。傅里叶变换红外光谱研究表明,BC相互作用是亲核相互作用。MTT试验显示其具有较高的生物相容性。适当的机械强度(0.37 MPa)和杨氏模量(3.36 MPa)表明BC支架用于皮肤组织。结果表明,BC片材在生物医学和纳米技术方面具有广阔的应用前景。
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