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Optimal feeding and swimming gaits of biflagellated organisms

机译:双鞭毛生物的最佳进食和游泳步态

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Locomotion is widely observed in life at micrometric scales and is exhibited by many eukaryotic unicellular organisms. Motility of such organisms can be achieved through periodic deformations of a tail-like projection called the eukaryotic flagellum. Although the mechanism allowing the flagellum to deform is largely understood, questions related to the functional significance of the observed beating patterns remain unresolved. Here, we focus our attention on the stroke patterns of biflagellated phytoplanktons resembling the green alga Chlamydomonas. Such organisms have been widely observed to beat their flagella in two different ways-a breast-stroke and an undulatory stroke-both of which are prototypical of general beating patterns observed in eukaryotes. We develop a general optimization procedure to determine the existence of optimal swimming gaits and investigate their functional significance with respect to locomotion andnutrient uptake. Both the undulatory and the breaststroke represent local optima for efficient swimming. With respect to the generation of feeding currents, we found the breaststroke to be optimal and to enhance nutrient uptake significantly, particularly when the organism is immersed in a gradient of nutrients.
机译:运动在微米尺度的生命中被广泛观察到,并且被许多真核单细胞生物所展现。这种生物的运动性可以通过称为真核鞭毛的尾状突起的周期性变形来实现。尽管人们广泛理解允许鞭毛变形的机制,但是与所观察到的跳动模式的功能重要性相关的问题仍未解决。在这里,我们将注意力集中在类似于绿藻衣藻(Chlamydomonas)的双鞭毛浮游植物的中风模式上。已经广泛观察到这种生物以两种不同的方式击败鞭毛-蛙泳和波动性中风-两者都是真核生物中观察到的一般跳动模式的典型。我们制定了一般的优化程序,以确定最佳游泳步态的存在,并研究其在运动和营养吸收方面的功能意义。起伏和蛙泳都代表了有效游泳的局部最佳状态。关于进食电流的产生,我们发现蛙泳是最佳的,并且可以显着提高养分的吸收,尤其是当有机体浸入养分的梯度中时。

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