首页> 外文OA文献 >The dynamic behavior of bacterial macrofibers growing with one end prevented from rotating: variation in shaft rotation along the fiber's length, and supercoil movement on a solid surface toward the constrained end
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The dynamic behavior of bacterial macrofibers growing with one end prevented from rotating: variation in shaft rotation along the fiber's length, and supercoil movement on a solid surface toward the constrained end

机译:阻止一端生长的细菌大纤维的动态行为阻止旋转:轴沿纤维长度的变化,以及超螺旋在固体表面上朝受约束端移动

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摘要

BACKGROUND:Bacterial macrofibers twist as they grow, writhe, supercoil and wind up into plectonemic structures (helical forms the individual filaments of which cannot be taken apart without unwinding) that eventually carry loops at both of their ends. Terminal loops rotate about the axis of a fiber's shaft in contrary directions at increasing rate as the shaft elongates. Theory suggests that rotation rates should vary linearly along the length of a fiber ranging from maxima at the loop ends to zero at an intermediate point. Blocking rotation at one end of a fiber should lead to a single gradient: zero at the blocked end to maximum at the free end. We tested this conclusion by measuring directly the rotation at various distances along fiber length from the blocked end. The movement of supercoils over a solid surface was also measured in tethered macrofibers.RESULTS:Macrofibers that hung down from a floating wire inserted through a terminal loop grew vertically and produced small plectonemic structures by supercoiling along their length. Using these as markers for shaft rotation we observed a uniform gradient of initial rotation rates with slopes of 25.6degrees/min. mm. and 36.2degrees/min. mm. in two different fibers. Measurements of the distal tip rotation in a third fiber as a function of length showed increases proportional to increases in length with constant of proportionality 79.2 rad/mm. Another fiber tethered to the floor grew horizontally with a length-doubling time of 74 min, made contact periodically with the floor and supercoiled repeatedly. The supercoils moved over the floor toward the tether at approximately 0.06 mm/min, 4 times faster than the fiber growth rate. Over a period of 800 minutes the fiber grew to 23 mm in length and was entirely retracted back to the tether by a process involving 29 supercoils.CONCLUSIONS:The rate at which growing bacterial macrofibers rotated about the axis of the fiber shaft measured at various locations along fibers in structures prevented from rotating at one end reveal that the rate varied linearly from zero at the blocked end to maximum at the distal end. The increasing number of twisting cells in growing fibers caused the distal end to continuously rotate faster. When the free end was intermittently prevented from rotating a torque developed which was relieved by supercoiling. On a solid surface the supercoils moved toward the end permanently blocked from rotating as a result of supercoil rolling over the surface and the formation of new supercoils that reduced fiber length between the initial supercoil and the wire tether. All of the motions are ramifications of cell growth with twist and the highly ordered multicellular state of macrofibers.
机译:背景:细菌大纤维会随着它们的生长,缠绕,超螺旋和缠绕成螺旋状结构(螺旋状的单根细丝不能展开而不能分开)而扭曲,最终在其两端都带有环。随着轴的拉长,端子环以相反的方向绕着光纤轴的轴反向旋转。理论表明,旋转速率应沿着光纤的长度线性变化,范围从环路末端的最大值到中间点的零。光纤一端的阻塞旋转应导致一个梯度:阻塞端的零为自由端的最大值。我们通过直接测量从阻塞端开始沿纤维长度的各种距离处的旋转来测试此结论。结果:在束缚的大纤维中还测量了超螺旋在固体表面上的运动。结果:从通过末端环插入的浮线垂下的大纤维垂直生长,并通过沿其长度进行超卷曲而产生小的翼状结构。使用这些作为轴旋转的标记,我们观察到初始旋转速率的均匀梯度为25.6度/分钟。毫米和36.2度/分钟。毫米在两种不同的纤维中。第三根纤维远端尖端旋转随长度变化的测量结果表明,其增加与长度增加成比例,比例常数为79.2 rad / mm。束缚在地板上的另一根纤维以74分钟的倍增时间水平生长,周期性地与地板接触并反复超卷。超线圈以约0.06 mm / min的速度在地板上朝向系绳移动,比纤维的生长速度快4倍。在800分钟的时间内,纤维长到23毫米,并通过涉及29个超螺旋的过程完全缩回到系绳中。结论:在各个位置测量的生长细菌大纤维绕纤维轴的轴旋转的速率。沿结构的纤维在一端被阻止旋转表明速率从阻塞端的零线性变化到远端的最大值线性变化。生长中的纤维中扭曲细胞数量的增加导致远端连续旋转得更快。断断续续地阻止自由端旋转时,会产生扭矩,该扭矩可通过超螺旋来缓解。在固态表面上,由于超级线圈在表面上滚动以及形成新的超级线圈而导致永久性旋转,超级线圈永久性地被阻止旋转,从而减少了初始超级线圈和金属缆绳之间的纤维长度。所有这些运动都是细胞生长扭曲和大纤维的高度有序多细胞状态的结果。

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