| Literature DB >> 26134670 |
Abstract
We present the theory of a microfluidic bioreactor with a two-compartment growth chamber and periodic serial dilution. In the model, coexisting planktonic and biofilm populations exchange by adsorption and detachment. The criteria for coexistence and global extinction are determined by stability analysis of the global extinction state. Stability analysis yields the operating diagram in terms of the dilution and removal ratios, constrained by the plumbing action of the bioreactor. The special case of equal uptake function and logistic growth is analytically solved and explicit growth curves are plotted. The presented theory is applicable to generic microfluidic bioreactors with discrete growth chambers and periodic dilution at discrete time points. Therefore, the theory is expected to assist the design of microfluidic devices for investigating microbial competition and microbial biofilm growth under serial dilution conditions.Keywords: Biofilm; Bioreactors; Chemostat; Coexistence; Microfluidics; Serial transfer dilution
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Year: 2015 PMID: 26134670 DOI: 10.1007/s00285-015-0913-0
Source DB: PubMed Journal: J Math Biol ISSN: 0303-6812 Impact factor: 2.259