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Positioning the Flagellum at the Center of a Dividing Cell To Combine Bacterial Division with Magnetic Polarity

机译:将鞭毛定位在分裂细胞的中心以结合细菌分裂和磁极性

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ABSTRACT Faithful replication of all structural features is a sine qua non condition for the success of bacterial reproduction by binary fission. For some species, a key challenge is to replicate and organize structures with multiple polarities. Polarly flagellated magnetotactic bacteria are the prime example of organisms dealing with such a dichotomy; they have the challenge of bequeathing two types of polarities to their daughter cells: magnetic and flagellar polarities. Indeed, these microorganisms align and move in the Earth’s magnetic field using an intracellular chain of nano-magnets that imparts a magnetic dipole to the cell. The paradox is that, after division occurs in cells, if the new flagellum is positioned opposite to the old pole devoid of a flagellum during cell division, the two daughter cells will have opposite magnetic polarities with respect to the positions of their flagella. Here we show that magnetotactic bacteria of the class Gammaproteobacteria pragmatically solve this problem by synthesizing a new flagellum at the division site. In addition, we model this particular structural inheritance during cell division. This finding opens up new questions regarding the molecular aspects of the new division mechanism, the way other polarly flagellated magnetotactic bacteria control the rotational direction of their flagella, and the positioning of organelles. IMPORTANCE Magnetotactic bacteria produce chains of magnetic nanoparticles that endow the cells with a magnetic dipole, a “compass” used for navigation. This feature, however, also drastically complicates cellular division in the case of polarly flagellated bacteria. In this case, the bacteria have to pass on to their daughter cells two types of cellular polarities simultaneously, their magnetic polarity and the polarity of their motility apparatus. We show here that magnetotactic bacteria of the Gammaproteobacteria class pragmatically solve this problem by synthesizing the new flagellum at the division site, a division scheme never observed so far in bacteria. Even though the molecular mechanisms behind this scheme cannot be resolved at the moment due to the lack of genetic tools, this discovery provides a new window into the organizational complexity of simple organisms.
机译:摘要忠实复制所有结构特征是通过二元裂变成功繁殖细菌的必要条件。对于某些物种,关键挑战是复制和组织具有多个极性的结构。极鞭毛的趋磁细菌是应对这种二分法的生物的主要例子。他们面临着将两种极性留给子细胞的挑战:磁性和鞭毛极性。确实,这些微生物利用细胞内的纳米磁铁链在地球磁场中排列并移动,该纳米磁铁将磁偶极子赋予细胞。矛盾的是,在细胞分裂后,如果新鞭毛在细胞分裂过程中与没有鞭毛的旧极相对,那么两个子细胞的鞭毛位置将具有相反的磁极性。在这里,我们表明,丙种变形杆菌类的趋磁细菌通过在分裂位点合成新鞭毛来务实地解决了这一问题。另外,我们在细胞分裂过程中对这种特殊的结构遗传进行建模。这一发现为新的分裂机制的分子方面,其他极性鞭毛趋磁细菌控制鞭毛的旋转方向以及细胞器的位置提出了新的问题。重要信息趋磁细菌产生磁性纳米颗粒链,使细胞具有磁性偶极子,这是用于导航的“罗盘”。然而,在极鞭毛细菌的情况下,该特征也使细胞分裂急剧复杂化。在这种情况下,细菌必须同时将两种类型的细胞极性传给其子细胞,即它们的磁极性和其运动装置的极性。我们在这里显示,γ-变形杆菌类的趋磁细菌通过在分裂位点合成新鞭毛来务实地解决了这一问题,这是迄今为止在细菌中从未观察到的分裂方案。尽管由于缺乏遗传工具,目前尚无法解决该方案背后的分子机制,但这一发现为了解简单生物的组织复杂性提供了新的窗口。

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