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在瞬态进料条件下连续培养时,铜绿假单胞菌 GPo1 中聚(3-羟基烷酸酯)(PHA)的生长和积累动态。

Growth and accumulation dynamics of poly(3-hydroxyalkanoate) (PHA) in Pseudomonas putida GPo1 cultivated in continuous culture under transient feed conditions.

机构信息

Laboratory for Biomaterials, Swiss Federal Laboratories for Materials Science and Technology (Empa), St. Gallen, Switzerland.

出版信息

Biotechnol J. 2011 Oct;6(10):1240-52. doi: 10.1002/biot.201100219. Epub 2011 Aug 10.

DOI:10.1002/biot.201100219
PMID:21751398
Abstract

It has been shown that Pseudomonas putida GPo1 is able to grow in continuous culture simultaneously limited by ammonium (N source) and octanoate (C source), and concomitantly accumulate poly([R]-3-hydroxyalkanoate) (PHA). Under such growth conditions the material properties of PHA can be fine-tuned if a second PHA precursor substrate is supplied. To determine the range of dual carbon and nitrogen (C, N)-limited growth conditions, tedious chemostat experiments need to be carried out for each carbon source separately. To determine the growth regime, the C/N ratio of the feed (f) to a chemostat was changed in a stepwise manner at a constant dilution rate of 0.3/h. Dual-(C, N)-limited growth was observed between C(f) /N(f) ≤ 6.4 g/g and C(f) /N(f) >9.5 g/g. In the following, we analyzed alternative approaches, using continuous medium gradients at the same dilution rate, that do not require time consuming establishments of steady states. Different dynamic approaches were selected in which the C(f) /N(f) ratio was changed continuously through a convex increase of C(f) , a convex increase of N(f) , or a linear decrease of C(f) (gradients 1, 2, and 3, respectively). In these experiments, the dual-(C, N)-limited growth regime was between 7.2 and 11.0 g/g for gradient 1, 4.3 and 6.9 g/g for gradient 2, and 5.1 and 8.9 g/g for gradient 3. A mathematical equation was developed that compensated a time delay of the gradient that was caused by the wash-in/wash-out effects of the medium feed.

摘要

已经表明,恶臭假单胞菌 GPo1 能够在同时受到铵(N 源)和辛酸盐(C 源)限制的连续培养中生长,并同时积累聚([R]-3-羟基烷酸酯)(PHA)。在这种生长条件下,如果提供第二种 PHA 前体底物,则可以微调 PHA 的材料性能。为了确定双碳和氮(C,N)限制生长条件的范围,需要分别针对每种碳源进行繁琐的恒化器实验。为了确定生长状态,以恒定稀释率 0.3/h 以逐步方式改变进料(f)中的 C/N 比。在 C(f)/N(f)≤6.4 g/g 和 C(f)/N(f)>9.5 g/g 之间观察到双(C,N)限制生长。在下面,我们分析了替代方法,即在相同稀释率下使用连续培养基梯度,而不需要花费时间建立稳定状态。选择了不同的动态方法,其中通过 C(f)的凸增加,N(f)的凸增加或 C(f)的线性减少连续改变 C(f)/N(f)比(梯度 1、2 和 3,分别)。在这些实验中,对于梯度 1,双(C,N)限制生长范围在 7.2 和 11.0 g/g 之间,对于梯度 2,在 4.3 和 6.9 g/g 之间,对于梯度 3,在 5.1 和 8.9 g/g 之间。开发了一个数学方程式,该方程式补偿了梯度的时间延迟,该时间延迟是由介质进料的进样/冲洗效应引起的。

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