密封的样品室可对体外病原微生物进行延时纳米表征。

IF 4.6 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Esther Braun, Santiago H. Andany, Mustafa Kangül, Navid S. Asmari, John D. McKinney and Georg E. Fantner
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引用次数: 0

摘要

致病性微生物,如致病性分枝杆菌,构成全球健康负担。研究这些生物对于获得有关病原体及其引起的疾病的详细知识至关重要。为了处理致病性生物,必须采取与该生物的毒力相适应的特定生物安全措施,最重要的是确保所有对致病性材料的操作都在密闭环境中进行。原子力显微镜(AFM)是一种强大的技术,可以在纳米尺度分辨率下研究生物样品,在保持生理条件的同时也能产生机械特性。然而,标准AFM样品架不符合严格的生物安全要求,因为它们不构成密闭系统。AFM成像依赖于悬臂梁和样品之间的直接接触,对机械干扰很敏感,这使得处理感染性物质的传统密封系统不适用。在这里,我们介绍了一个密封的AFM样品室,满足生物安全要求,同时满足相关光学显微镜和AFM的机械和光学约束。我们对各种致病性分枝杆菌进行了成像,以证明该腔室在含有生物有害物质方面的多功能性和有效性。该样品室可在体外实现高分辨率、延时相关成像和病原微生物的生物力学表征。它拓宽了安全可控条件下病原微生物的研究范围。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A hermetically closed sample chamber enables time-lapse nano-characterization of pathogenic microorganisms in vitro†

A hermetically closed sample chamber enables time-lapse nano-characterization of pathogenic microorganisms in vitro†

Pathogenic microorganisms, such as pathogenic mycobacteria, pose a global health burden. Studying these organisms is crucial for gaining detailed knowledge about the pathogens and the diseases they cause. To handle pathogenic organisms, specific biosafety measures appropriate to the virulence of the organism must be fulfilled, most importantly ensuring that all manipulations of pathogenic material are performed within a confined environment. Atomic force microscopy (AFM) is a powerful technique to study biological samples at nanometer-scale resolution, yielding also mechanical properties, all while maintaining physiological conditions. However, standard AFM sample holders do not meet stringent biosafety requirements since they do not constitute a confined system. AFM imaging relies on direct contact between the cantilever and the sample and is sensitive to mechanical interference, rendering conventional containment systems for handling infectious substances inapplicable. Here, we introduce a hermetically sealed AFM sample chamber that meets biosafety demands while satisfying the mechanical and optical constraints of correlated optical microscopy and AFM. We imaged various pathogenic mycobacteria to demonstrate the chamber's versatility and effectiveness in containing biohazardous materials. This sample chamber enables high-resolution, time-lapse correlated imaging and biomechanical characterization of pathogenic microorganisms in vitro. It broadens the scope of research with pathogenic microorganisms under safe and controlled conditions.

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来源期刊
Nanoscale Advances
Nanoscale Advances Multiple-
CiteScore
8.00
自引率
2.10%
发文量
461
审稿时长
9 weeks
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