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Controlled graphene encapsulation: a nanoscale shield for characterising single bacterial cells in liquid

机译:受控石墨烯封装:纳米屏蔽罩,用于在液体中表征单细菌细胞

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摘要

High-resolution single-cell imaging in their native or near-native state has received considerable interest for decades. In this research, we present an innovative approach that can be employed to study both morphological and nano-mechanical properties of hydrated single bacterial cells. The proposed strategy is to encapsulate wet cells with monolayer graphene with a newly developed water membrane approach, followed by imaging with both electron microscopy (EM) and atomic force microscopy (AFM). A computational framework was developed to provide additional insights, with the detailed nanoindentation process on graphene modelled based on the finite element method. The model was first validated by calibration with polymer materials of known properties, and the contribution of graphene was then studied and corrected to determine the actual moduli of the encapsulated hydrated sample. Application of the proposed approach was performed on hydrated bacterial cells (Klebsiella pneumoniae) to correlate the structural and mechanical information. EM and energy-dispersive x-ray spectroscopy imaging confirmed that the cells in their near-native stage can be studied inside the miniaturised environment enabled with graphene encapsulation. The actual moduli of the encapsulated hydrated cells were determined based on the developed computational model in parallel, with results comparable with those acquired with wet AFM. It is expected that the successful establishment of controlled graphene encapsulation offers a new route for probing liquid/live cells with scanning probe microscopy, as well as correlative imaging of hydrated samples for both biological and material sciences.
机译:高分辨率单细胞成像在原生或近乎乡村的成像几十年来受到相当兴趣的。在本研究中,我们提出了一种创新的方法,可以采用水合单细菌细胞的形态学和纳米力学性能。所提出的策略是用新开发的水膜方法将湿细胞与单层石墨烯封装,然后用电子显微镜(EM)和原子力显微镜(AFM)成像。开发了一种计算框架来提供额外的见解,基于有限元法模型的石墨烯的详细纳米endentation方法。首先通过用已知性质的聚合物材料校准验证该模型,然后研究并校正石墨烯的贡献以确定包封水合样品的实际模量。提出的方法的应用是对水合细菌细胞(Klebsiella肺炎)进行的,以相关的结构和机械信息。 EM和能量分散X射线光谱成像确认,可以在具有石墨烯封装的小型化环境中研究其近似天然阶段的细胞。封装水合细胞的实际模态基于开发的计算模型并行测定,结果与用湿式AFM获取的结果相当。预计,控制石墨烯封装的成功建立提供了一种探测液体/活细胞的新途径,用于扫描探针显微镜,以及用于生物和物质科学的水合样品的相关成像。

著录项

  • 来源
    《Nanotechnology》 |2018年第36期|共11页
  • 作者单位

    Monash Univ Dept Mech &

    Aerosp Engn Clayton Vic 3800 Australia;

    Monash Univ Monash Ctr Atomically Thin Mat Clayton Vic 3800 Australia;

    Monash Univ Dept Mech &

    Aerosp Engn Clayton Vic 3800 Australia;

    Stevens Inst Technol Lab Multiscale Imaging3 Hoboken NJ 07030 USA;

    Monash Univ Dept Mech &

    Aerosp Engn Clayton Vic 3800 Australia;

    Monash Univ Dept Mech &

    Aerosp Engn Clayton Vic 3800 Australia;

    Monash Univ Monash Biomed Discovery Inst Dept Microbiol Clayton Vic 3800 Australia;

    Monash Univ Dept Mech &

    Aerosp Engn Clayton Vic 3800 Australia;

    Monash Univ Dept Mech &

    Aerosp Engn Clayton Vic 3800 Australia;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 特种结构材料;
  • 关键词

    AFM; electron imaging; graphene; encapsulation; FEA;

    机译:AFM;电子影像;石墨烯;封装;FEA;

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