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Unique centipede mechanism of Mycoplasma gliding. [Review]

机译:支原体滑动的独特cent机制。 [评论]

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摘要

Mycoplasma, a genus of pathogenic bacteria, forms a membrane protrusion at a cell pole. It binds to solid surfaces with this protrusion and then glides. The mechanism is not related to known bacterial motility systems, such as flagella or pili, or to conventional motor proteins, including myosin. We have studied the fastest species, Mycoplasma mobile, and have proposed a working model as follows. The gliding machinery is composed of four huge proteins at the base of the membrane protrusion and supported by a cytoskeletal architecture from the cell inside. Many flexible legs approximately 50 nm long are sticking out from the machinery. The movements generated by the ATP hydrolysis cell inside are transmitted to the "leg" protein through a "gear" protein, resulting in repeated binding, pull, and release of the sialylgalactose fixed on the surface by the legs. The gliding of Mycoplasma pneumoniae, a species distantly related to M. mobile, is also discussed.
机译:支原体是病原细菌的一种,在细胞极处形成膜突起。它通过此突起结合到实体表面,然后滑动。该机制与已知的细菌运动系统(例如鞭毛或菌毛)或常规运动蛋白(包括肌球蛋白)无关。我们研究了最快的物种移动支原体,并提出了以下工作模型。滑翔机由膜突出部分底部的四个巨大蛋白质组成,并由细胞内部的细胞骨架结构支撑。机械上伸出了许多大约50 nm长的柔性支脚。 ATP水解细胞内部产生的运动通过“齿轮”蛋白传递到“腿”蛋白,从而导致腿部固定在表面的唾液基半乳糖重复结合,拉动和释放。还讨论了与流动性支原体密切相关的肺炎支原体的滑行。

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