Zhao Yongxin, Cheng Zhangyu, Stefani Caroline, Skillman Thomas, Klimas Aleksandra, Lee Aramchan, DiBernardo Emma, Mueller Brown Karina, Milman Tatyana, Gallagher Brendan, Lagree Katherine, Jena Bhanu, Pulido Jose, Filler Scott, Mitchell Aaron, Hiller Luisa, Lacy-Hulbert Adam
Carnegie Mellon University.
Benaroya Research Institute.
Res Sq. 2023 Mar 6:rs.3.rs-2637060. doi: 10.21203/rs.3.rs-2637060/v1.
Super-resolution optical imaging tools are crucial in microbiology to understand the complex structures and behavior of microorganisms such as bacteria, fungi, and viruses. However, the capabilities of these tools, particularly when it comes to imaging pathogens and infected tissues, remain limited. We developed µMagnify, a nanoscale multiplexed imaging method for pathogens and infected tissues that are derived from an expansion microscopy technique with a universal biomolecular anchor. We formulated an enzyme cocktail specifically designed for robust cell wall digestion and expansion of microbial cells without distortion while efficiently retaining biomolecules suitable for high-plex fluorescence imaging with nanoscale precision. Additionally, we developed an associated virtual reality tool to facilitate the visualization and navigation of complex three-dimensional images generated by this method in an immersive environment allowing collaborative exploration among researchers around the world. µMagnify is a valuable imaging platform for studying how microbes interact with their host systems and enables development of new diagnosis strategies against infectious diseases.
超分辨率光学成像工具在微生物学中对于理解细菌、真菌和病毒等微生物的复杂结构和行为至关重要。然而,这些工具的能力,特别是在对病原体和受感染组织进行成像时,仍然有限。我们开发了µMagnify,这是一种用于病原体和受感染组织的纳米级多重成像方法,它源自一种具有通用生物分子锚定物的扩展显微镜技术。我们配制了一种酶混合物,专门设计用于在不产生变形的情况下对微生物细胞进行强大的细胞壁消化和扩展,同时有效地保留适合纳米级精度的高多重荧光成像的生物分子。此外,我们还开发了一种相关的虚拟现实工具,以促进在沉浸式环境中对通过这种方法生成的复杂三维图像进行可视化和导航,从而允许世界各地的研究人员进行协作探索。µMagnify是一个有价值的成像平台,用于研究微生物如何与它们的宿主系统相互作用,并有助于开发针对传染病的新诊断策略。