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Spatio-temporal structure of migrating chemotactic band of Escherichia coli. I. Traveling band profile.

机译:大肠杆菌的趋化带迁移的时空结构。一旅行乐队简介。

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摘要

We developed a rapid-scanning, light-scattering densitometer by which extensive measurements of band migration speeds and band profiles of chemotactic bands of Escherichia coli in motility buffer both with and without serine have been made. The purpose is to test the applicability of the phenomenological model proposed by Keller and Segel (J. Theor. Biol. 1971. 30:235) and to determine the motility (mu) and chemotactic (delta) coefficients of the bacteria. We extend the previous analytical solution of the simplified Keller-Segel model by taking into account the substrate diffusion which turns out to be significant in the case of oxygen. We demonstrate that unique sets of values of mu and delta can be obtained for various samples at different stages of migration by comparing the numerical solution of the model equation and the experimental data. The rapid-scanning technique also reveals a hitherto unobserved time-dependent fine structure in the bacterial band. We give a qualitative argument to show that the fine structure is an example of the dissipative structure that arises from a nonlinear coupling between the bacterial density and the oxygen concentration gradient. Implications for a further study of the dissipative structure in testing the Keller-Segel model of chemotaxis are briefly discussed.
机译:我们开发了一种快速扫描的光散射光密度计,通过它可以广泛地测量带或不带丝氨酸的大肠杆菌在运动缓冲液中的带迁移速度和趋化带的带谱。目的是测试由Keller和Segel提出的现象学模型的适用性(J. Theor。Biol。1971. 30:235),并确定细菌的运动系数(mu)和趋化系数(delta)。我们通过考虑底物的扩散扩展了简化的Keller-Segel模型的先前的解析解,这对于氧气来说非常重要。我们证明,通过比较模型方程的数值解和实验数据,可以在迁移的不同阶段为各种样品获得唯一的mu和delta值集。快速扫描技术还揭示了细菌带中迄今未观察到的时间依赖性精细结构。我们给出定性的论证,以表明精细结构是耗散结构的一个示例,该耗散结构是由细菌密度和氧气浓度梯度之间的非线性耦合引起的。简要讨论了对耗散结构的进一步研究在测试趋化性的Keller-Segel模型中的意义。

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