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Scratching the Surface: Bacterial Cell Envelopes at the Nanoscale

机译:刮伤表面:纳米尺度的细菌细胞包络

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The bacterial cell envelope is essential for viability, the environmental gatekeeper and first line of defense against external stresses. For most bacteria, the envelope biosynthesis is also the site of action of some of the most important groups of antibiotics. It is a complex, often multicomponent structure, able to withstand the internally generated turgor pressure. Thus, elucidating the architecture and dynamics of the cell envelope is important, to unravel not only the complexities of cell morphology and maintenance of integrity but also how interventions such as antibiotics lead to death. To address these questions requires the capacity to visualize the cell envelope in situ via high-spatial resolution approaches. In recent years, atomic force microscopy (AFM) has brought novel molecular insights into the assembly, dynamics, and functions of bacterial cell envelopes. The ultrafine resolution and physical sensitivity of the technique have revealed a wealth of ultrastructural features that are invisible to traditional optical microscopy techniques or imperceptible in their true physiological state by electron microscopy. Here, we discuss recent progress in our use of AFM imaging for understanding the architecture and dynamics of the bacterial envelope. We survey recent studies that demonstrate the power of the technique to observe isolated membranes and live cells at (sub)nanometer resolution and under physiological conditions and to track in vitro structural dynamics in response to growth or to drugs.
机译:细菌细胞包络对于生存能力,环境门单和对外部压力的第一道防御是必不可少的。对于大多数细菌来说,包膜生物合成也是一些最重要的抗生素组的作用部位。它是一种复杂,通常是多组分结构,能够承受内部产生的托尔压力。因此,阐明细胞包络的结构和动态很重要,不仅是细胞形态的复杂性和完整性的维护,而且还如何干预抗生素导致死亡。为了解决这些问题,需要通过高空间分辨率的方法以原位可视化细胞包络的能力。近年来,原子力显微镜(AFM)为细菌细胞包络的组装,动力学和功能带来了新的分子见解。该技术的超细分辨率和物理敏感性揭示了一种丰富的超微结构特征,其对传统光学显微镜技术不可见或通过电子显微镜的真实生理状态难以察觉。在这里,我们讨论了我们使用AFM成像的最新进展,以了解细菌包络的结构和动态。我们调查了最近的研究,证明了技术观察(亚亚纳米分辨率和生理条件下的孤立膜和活细胞的力量,并追踪生长或药物的体外结构动力学。

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