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Synthetic Feedback Loop Model for Increasing Microbial Biofuel Production Using a Biosensor

机译:使用生物传感器增加微生物生物燃料生产的合成反馈回路模型

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摘要

Current biofuel production methods use engineered bacteria to break down cellulose and convert it to biofuel. A major challenge in microbial fuel production is that increasing biofuel yields can be limited by the toxicity of the biofuel to the organism that is producing it. Previous research has demonstrated that efflux pumps are effective at increasing tolerance to various biofuels. However, when overexpressed, efflux pumps burden cells, which hinders growth and slows biofuel production. Therefore, the toxicity of the biofuel must be balanced with the toxicity of pump overexpression. We have developed a mathematical model for cell growth and biofuel production that implements a synthetic feedback loop using a biosensor to control efflux pump expression. In this way, the production rate will be maximal when the concentration of biofuel is low because the cell does not expend energy expressing efflux pumps when they are not needed. Additionally, the microbe is able to adapt to toxic conditions by triggering the expression of efflux pumps, which allow it to continue biofuel production. Sensitivity analysis indicates that the feedback sensor model is insensitive to many system parameters, but a few key parameters can influence growth and production. In comparison to systems that express efflux pumps at a constant level, the feedback sensor increases overall biofuel production by delaying pump expression until it is needed. This result is more pronounced when model parameters are variable because the system can use feedback to adjust to the actual rate of biofuel production.
机译:当前的生物燃料生产方法使用工程菌来分解纤维素并将其转化为生物燃料。微生物燃料生产中的主要挑战是,生物燃料对生产它的生物的毒性可能会限制生物燃料产量的增加。先前的研究表明,外排泵可有效提高对各种生物燃料的耐受性。但是,当过表达时,外排泵会给细胞增加负担,这会阻碍细胞生长并减慢生物燃料的生产。因此,生物燃料的毒性必须与泵过表达的毒性相平衡。我们已经开发出用于细胞生长和生物燃料生产的数学模型,该模型使用生物传感器来控制外排泵的表达,从而实现合成反馈回路。以此方式,当生物燃料的浓度低时,生产率将最大,这是因为当不需要它们时,细胞不会消耗表示外排泵的能量。此外,微生物能够通过触发外排泵的表达来适应有毒条件,从而使其能够继续生物燃料的生产。敏感性分析表明,反馈传感器模型对许多系统参数不敏感,但是一些关键参数会影响生长和生产。与以恒定水平表达外排泵的系统相比,反馈传感器通过延迟泵的表达直到需要时才增加了整体生物燃料的产量。当模型参数可变时,此结果会更加明显,因为系统可以使用反馈来调整实际生物燃料的生产率。

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