Enhanced production of bacterial cellulose by using a biofilm reactor and its material property analysis
Open Access
- 24 July 2009
- journal article
- Published by Springer Nature in Journal of Biological Engineering
- Vol. 3 (1), 12
- https://doi.org/10.1186/1754-1611-3-12
Abstract
Bacterial cellulose has been used in the food industry for applications such as low-calorie desserts, salads, and fabricated foods. It has also been used in the paper manufacturing industry to enhance paper strength, the electronics industry in acoustic diaphragms for audio speakers, the pharmaceutical industry as filtration membranes, and in the medical field as wound dressing and artificial skin material. In this study, different types of plastic composite support (PCS) were implemented separately within a fermentation medium in order to enhance bacterial cellulose (BC) production by Acetobacter xylinum. The optimal composition of nutritious compounds in PCS was chosen based on the amount of BC produced. The selected PCS was implemented within a bioreactor to examine the effects on BC production in a batch fermentation. The produced BC was analyzed using X-ray diffraction (XRD), field emission scanning electron microscopy (FESEM), thermogravimetric analysis (TGA), and dynamic mechanical analysis (DMA). Among thirteen types of PCS, the type SFYR+ was selected as solid support for BC production by A. xylinum in a batch biofilm reactor due to its high nitrogen content, moderate nitrogen leaching rate, and sufficient biomass attached on PCS. The PCS biofilm reactor yielded BC production (7.05 g/L) that was 2.5-fold greater than the control (2.82 g/L). The XRD results indicated that the PCS-grown BC exhibited higher crystallinity (93%) and similar crystal size (5.2 nm) to the control. FESEM results showed the attachment of A. xylinum on PCS, producing an interweaving BC product. TGA results demonstrated that PCS-grown BC had about 95% water retention ability, which was lower than BC produced within suspended-cell reactor. PCS-grown BC also exhibited higher T max compared to the control. Finally, DMA results showed that BC from the PCS biofilm reactor increased its mechanical property values, i.e., stress at break and Young's modulus when compared to the control BC. The results clearly demonstrated that implementation of PCS within agitated fermentation enhanced BC production and improved its mechanical properties and thermal stability.Keywords
This publication has 33 references indexed in Scilit:
- Optimizing the Production of Bacterial Cellulose in Surface Culture: A Novel Aerosol Bioreactor Working on a Fed Batch Principle (Part 3)Engineering in Life Sciences, 2007
- Evaluation of Culture Medium for Nisin Production in a Repeated-Batch Biofilm ReactorBiotechnology Progress, 2006
- Synthesis, characterisation and properties of polyanilines containing transition metal ionsSynthetic Metals, 2005
- Wet spinning of silk polymerInternational Journal of Biological Macromolecules, 2004
- Cellulose structure and biosynthesis: What is in store for the 21st century?Journal of Polymer Science Part A: Polymer Chemistry, 2003
- Controlling the water content of never dried and reswollen bacterial cellulose by the addition of water‐soluble polymers to the culture mediumJournal of Polymer Science Part A: Polymer Chemistry, 2003
- Medium Evaluation and Plastic Composite Support Ingredient Selection for Biofilm Formation and Succinic Acid Production byActinobacillus succinogenesFood Biotechnology, 2003
- Microbial Cellulose Utilization: Fundamentals and BiotechnologyMicrobiology and Molecular Biology Reviews, 2002
- Acetobacter cellulose pellicle as a temporary skin substituteApplied Biochemistry and Biotechnology, 1990
- Kinetic invetigations of biosynthesis of cellulose by Actobacter xylinumBiochimica et Biophysica Acta (BBA) - General Subjects, 1974