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Building a flagellum in biological outer space

机译:在生物外层空间中建立鞭毛

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摘要

Flagella, the rotary propellers on the surface of bacteria, present a paradigm for how cells build and operate complex molecular ‘nanomachines’. Flagella grow at a constant rate to extend several times the length of the cell, and this is achieved by thousands of secreted structural subunits transiting through a central channel in the lengthening flagellum to incorporate into the nascent structure at the distant extending tip. A great mystery has been how flagella can assemble far outside the cell where there is no conventional energy supply to fuel their growth. Recent work published by Evans et al. [Nature (2013) 504: 287-290], has gone some way towards solving this puzzle, presenting a simple and elegant transit mechanism in which growth is powered by the subunits themselves as they link head-to-tail in a chain that is pulled through the length of the growing structure to the tip. This new mechanism answers an old question and may have resonance in other assembly processes.
机译:鞭毛是细菌表面的旋转推进器,它为细胞如何构建和操作复杂的分子“纳米机械”提供了范例。鞭毛以恒定的速率生长,延伸到细胞长度的几倍,这可以通过成千上万个分泌的结构亚单位通过延长的鞭毛中的中央通道过渡到远端延伸的尖端并融入新生结构中来实现。一个巨大的谜团是鞭毛如何在没有常规能源供应以促进其生长的细胞外更远地组装。 Evans等人发表的最新著作。 [Nature(2013)504:287-290],在解决这个难题方面已经走了一些路,提出了一种简单而优雅的运输机制,其中,增长由子单元本身驱动,因为它们以头到尾的方式在一条链中相连。穿过生长结构的长度拉到尖端。这种新机制回答了一个古老的问题,并可能在其他组装过程中引起共鸣。

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