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The role of mreb in E. coli shape determination and whole-brain calcium dynamics in freely behaving C. elegans.

机译:mreb在自由表现线虫中在大肠杆菌形状确定和全脑钙动力学中的作用。

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摘要

Bacteria have remarkably robust cell shape control mechanisms, but the mechanisms of self-organization for robust morphological maintenance remain unclear in most systems. Precise regulation of rod shape in Escherichia coli cells requires the MreB actin-like cytoskeleton, but the mechanism by which MreB maintains rod shape and sets the cell diameter is unknown. Here, I study both of these mechanisms using a novel method for extracting the 3D shape of cells using fluorescence image stacks and forward convolution. I then use time-lapse and 3D imaging coupled with computational analysis to map the growth, geometry, and cytoskeletal organization of single bacterial. Our results demonstrate that feedback between cell geometry and MreB localization maintains rod-like cell shape by targeting cell wall growth to regions of negative cell wall curvature.;I also study how MreB sets the diameter of a cell. Here, I perturb MreB by treating cells with the drug A22 or by creating mreb point mutants. These perturbations modify the steady state diameter of cells to between 790+/-30 nm to 1700+/-20 nm. I correlated structural characteristics of fluorescently-tagged MreB polymers to cell diameter and show that the helical pitch angle of MreB inversely correlates with the cell diameter of E. coli. These results demonstrate that the physical properties of MreB filaments are important for shape control and support a model in which MreB organizes the cell wall growth machinery to produce a chiral cell wall structure and dictates cell diameter.;After investigating the control of bacterial cell shape, I study an interesting problem in neuroscience. The ability to acquire large-scale recordings of neuronal activity in freely behaving animals is needed to provide new insights into how populations of neurons generate behavior. I present a new instrument capable of recording intracellular calcium transients from the majority of neurons in the head of a freely behaving Caenorhabditis elegans with cellular resolution while simultaneously recording the animal's behavior. We observe calcium transients from 89 neurons for nearly four minutes and correlate this activity with the animal's behavior. We show that, across worms, multiple neurons show significant correlations with, backward, and turning locomotion.
机译:细菌具有非常强大的细胞形状控制机制,但是在大多数系统中,用于强健形态维持的自组织机制仍然不清楚。大肠杆菌细胞杆状的精确调控需要MreB肌动蛋白样细胞骨架,但MreB维持杆状并设定细胞直径的机制尚不清楚。在这里,我使用一种新颖的方法研究了这两种机制,这些方法利用荧光图像堆栈和正向卷积提取细胞的3D形状。然后,我使用延时摄影和3D成像以及计算分析来绘制单个细菌的生长,几何形状和细胞骨架组织图。我们的结果表明,细胞几何结构与MreB定位之间的反馈通过将细胞壁生长靶向到负细胞壁曲率区域来维持棒状细胞形状。我还研究了MreB如何设置细胞直径。在这里,我通过用药物A22处理细胞或创建mreb点突变体来扰乱MreB。这些扰动将细胞的稳态直径更改为790 +/- 30 nm至1700 +/- 20 nm。我将荧光标记的MreB聚合物的结构特征与细胞直径相关联,并表明MreB的螺旋螺距角与大肠杆菌的细胞直径成反比。这些结果表明,MreB细丝的物理性质对于形状控制非常重要,并支持MreB组织细胞壁生长机制以产生手性细胞壁结构并决定细胞直径的模型。在研究了细菌细胞形状的控制后,我研究了神经科学中一个有趣的问题。需要具有在自由行为的动物中大规模记录神经元活动的能力,以提供有关神经元群体如何产生行为的新见解。我提出了一种新仪器,能够以细胞分辨率记录自由表现的秀丽隐杆线虫头部中大多数神经元的细胞内钙瞬变,同时记录动物的行为。我们在将近四分钟的时间内观察到了来自89个神经元的钙瞬变,并将这种活动与动物的行为相关联。我们表明,在蠕虫中,多个神经元显示出与运动,向后运动和转向运动显着相关。

著录项

  • 作者

    Nguyen, Jeffrey P.;

  • 作者单位

    Princeton University.;

  • 授予单位 Princeton University.;
  • 学科 Biophysics.;Neurosciences.;Molecular biology.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 193 p.
  • 总页数 193
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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