Intensification of bacterial cellulose production process with sequential electromagnetic field exposure aided by dynamic modelling
Tài liệu tham khảo
Römling, 2015, Bacterial cellulose biosynthesis: Diversity of operons, subunits, products, and functions, Trends Microbiol, 10.1016/j.tim.2015.05.005
Wang, 2020, Production and characterization of bacterial cellulose membranes with hyaluronic acid and silk sericin, Colloids Surf. B Biointerfaces, 10.1016/j.colsurfb.2020.111273
Carvalho, 2019, Latest advances on bacterial cellulose-based materials for wound healing, delivery systems, and tissue engineering, Biotechnol. J., 14, 1, 10.1002/biot.201900059
Zhang, 2019, Bacterial cellulose based composites enhanced transdermal drug targeting for breast cancer treatment, Chem. Eng. J., 370, 749, 10.1016/j.cej.2019.03.216
Ahmed, 2020, Bacterial cellulose micro-nano fibres for wound healing applications, Biotechnol. Adv., 41, 10.1016/j.biotechadv.2020.107549
Fijałkowski, 2015, Modification of bacterial cellulose through exposure to the rotating magnetic field, Carbohydr. Polym., 133, 10.1016/j.carbpol.2015.07.011
Esa, 2014, Overview of bacterial cellulose production and application, Agric. Agric. Sci. Procedia, 2, 113
Fijałkowski, 2016, Time dependent influence of rotating magnetic field on bacterial cellulose, Int. J. Polym. Sci., 2016, 10.1155/2016/7536397
Cielecka, 2020, BNC biosynthesis with increased productivity in a newly designed surface air-flow bioreactor, Appl. Sci., 10, 10.3390/app10113850
J.K. Park, J.Y. Jung, T. Khan, Bacterial cellulose, in: Handb. Hydrocoll. Second Ed., 2009. 〈https://doi.org/10.1533/9781845695873.724〉.
Tessaro, 2015, Bacterial growth rates are influenced by cellular characteristics of individual species when immersed in electromagnetic fields, Microbiol. Res., 172, 26, 10.1016/j.micres.2014.12.008
Konopacki, 2019, The analysis of rotating magnetic field as a trigger of Gram-positive and Gram-negative bacteria growth, Biochem. Eng. J., 141, 259, 10.1016/j.bej.2018.10.026
Rakoczy, 2017, Effects of a rotating magnetic field on gas-liquid mass transfer coefficient, Chem. Eng. J., 327, 10.1016/j.cej.2017.06.132
Drozd, 2017, Evaluation of usefulness of 2DCorr technique in assessing physicochemical properties of bacterial cellulose, Carbohydr. Polym., 10.1016/j.carbpol.2016.12.063
Raganati, 2015, Kinetic study of butanol production from various sugars by Clostridium acetobutylicum using a dynamic model, Biochem. Eng. J., 99, 156, 10.1016/j.bej.2015.03.001
Eichinger, 2018, Human T cells in silico: Modelling dynamic intracellular calcium and its influence on cellular electrophysiology, J. Immunol. Methods, 461, 78, 10.1016/j.jim.2018.06.020
Brindley, 2016, Light regime optimization in photobioreactors using a dynamic photosynthesis model, Algal Res, 16, 399, 10.1016/j.algal.2016.03.033
Mohamad, 2016, Dynamic mathematical modelling of reaction kinetics for xylitol fermentation using Candida tropicalis, Biochem. Eng. J., 111, 10, 10.1016/j.bej.2016.02.017
Stacey, 2018, Experimentally integrated dynamic modelling for intuitive optimisation of cell based processes and manufacture, Biochem. Eng. J., 132, 130, 10.1016/j.bej.2018.01.012
Fernandes, 2020, Bacterial cellulose: From production optimization to new applications, Int. J. Biol. Macromol., 164, 2598, 10.1016/j.ijbiomac.2020.07.255
Feynman RP, 2010, The Feynman Lectures on Physics. Mainly Electromagnetism and Matter, N. Millenn. Ed.
Anton-Leberre, 2010, Exposure to high static or pulsed magnetic fields does not affect cellular processes in the yeast Saccharomyces cerevisiae, Bioelectromagnetics
Gaafar, 2008, The effect of electromagnetic field on protein molecular structure of E. coli and its pathogenesis, Rom. J. Biophys.
Hristov, 2010, Magnetic field assisted fluidization - A unified approach.Part 8. Mass transfer: Magnetically assisted bioprocesses, Rev. Chem. Eng., 10.1515/REVCE.2010.006
Ryu, 2004, Micro magnetic stir-bar mixer integrated with parylene microfluidic channels, Lab Chip, 10.1039/b403305a
Weaver, 1996, Theory of electroporation: A review, Bioelectrochem. Bioenerg., 41, 135, 10.1016/S0302-4598(96)05062-3
Xie, 1990, Study of mechanisms of electric field-induced DNA transfection. I. DNA entry by surface binding and diffusion through membrane pores, Biophys. J., 10.1016/S0006-3495(90)82349-3
Hornung, 2006, Optimizing the production of bacterial cellulose in surface culture: Evaluation of substrate mass transfer influences on the bioreaction (Part 1), Eng. Life Sci.
Fijałkowski, 2017, Increased water content in bacterial cellulose synthesized under rotating magnetic fields, Electromagn. Biol. Med., 36, 10.1080/15368378.2016.1243554
Pang, 2008, The changes of macroscopic features and microscopic structures of water under influence of magnetic field, Phys. B Condens. Matter, 10.1016/j.physb.2008.05.032
Szcześ, 2011, Effects of static magnetic field on water at kinetic condition, Chem. Eng. Process. Process. Intensif., 10.1016/j.cep.2010.12.005
Toledo, 2008, Influence of magnetic field on physical-chemical properties of the liquid water: Insights from experimental and theoretical models, J. Mol. Struct., 10.1016/j.molstruc.2008.01.010
Gao, 2011, Preparation and characterization of bacterial cellulose sponge with hierarchical pore structure as tissue engineering scaffold, J. Porous Mater., 10.1007/s10934-010-9364-6
Guo, 2012, Surface area and porosity of acid hydrolyzed cellulose nanowhiskers and cellulose produced by Gluconacetobacter xylinus, Carbohydr. Polym.
Fijałkowski, 2016, Increased yield and selected properties of bacterial cellulose exposed to different modes of a rotating magnetic field, Eng. Life Sci., 16, 10.1002/elsc.201500151
Konopacki, 2020, Single mathematical parameter for evaluation of the microorganisms’ growth as the objective function in the optimization by the doe techniques, Microorganisms, 8, 10.3390/microorganisms8111706