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Unforeseen swimming and gliding mode of an insect gut symbiont Burkholderia sp. RPE64 with wrapping of the flagella around its cell body

机译:昆虫肠道共生体Burkholderia sp。的意外游泳和滑行模式。 RPE64鞭毛围绕其细胞体包裹

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摘要

A bean bug symbiont, Burkholderia sp. RPE64, selectively colonizes the gut crypts by flagella-mediated motility: however, the mechanism for this colonization remains unclear. Here, to obtain clues to this mechanism, we characterized the swimming motility of the Burkholderia symbiont under an advanced optical microscope. High-speed imaging of cells enabled the detection of turn events with up to 5-ms temporal resolution, indicating that cells showed reversal motions (θ ~ 180°) with rapid changes in speed by a factor of 3.6. Remarkably, staining of the flagellar filaments with a fluorescent dye Cy3 revealed that the flagellar filaments wrap around the cell body with a motion like that of a ribbon streamer in rhythmic gymnastics. A motility assay with total internal reflection fluorescence microscopy revealed that the left-handed flagellum wound around the cell body and propelled it forward by its clockwise rotation. We also detected periodic-fluorescent signals of flagella on the glass surface, suggesting that flagella possibly contacted the solid surface directly and produced a gliding-like motion driven by flagellar rotation. Finally, the wrapping motion was also observed in a symbiotic bacterium of the bobtail squid, Aliivibrio fischeri, suggesting that this motility mode may contribute to migration on the mucus-filled narrow passage connecting to the symbiotic organ.
机译:豆虫共生菌,伯克霍尔德氏菌。 RPE64通过鞭毛介导的运动选择性地定居肠道隐窝:但是,这种定居的机制仍不清楚。在这里,为了获得这种机制的线索,我们在先进的光学显微镜下表征了伯克霍尔德菌共生体的游泳运动。细胞的高速成像能够以高达5毫秒的时间分辨率检测转弯事件,这表明细胞显示出反向运动(θ〜180°),速度迅速变化了3.6倍。值得注意的是,用荧光染料Cy3对鞭毛细丝进行染色后发现,鞭毛细丝会像艺术体操中的飘带一样绕着细胞缠绕。用全内反射荧光显微镜进行的运动分析显示左手鞭毛缠绕在细胞体上,并通过顺时针旋转将其向前推进。我们还检测到玻璃表面鞭毛的周期性荧光信号,这表明鞭毛可能直接接触固体表面并产生由鞭毛旋转驱动的类似滑行的运动。最后,在短尾鱿鱼的共生细菌Aliivibrio fischeri中也观察到包裹运动,这表明这种运动模式可能有助于在黏液充满的狭窄通道上迁移,该狭窄通道与共生器官相连。

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