MicroMagnify: A Multiplexed Expansion Microscopy Method for Pathogens and Infected Tissues

Author:

Cheng Zhangyu1ORCID,Stefani Caroline2,Skillman Thomas3,Klimas Aleksandra1,Lee Aramchan1,DiBernardo Emma F.1,Brown Karina Mueller1,Milman Tatyana4,Wang Yuhong1,Gallagher Brendan R.1,Lagree Katherine1,Jena Bhanu P.5678,Pulido Jose S.4,Filler Scott G.910,Mitchell Aaron P.111,Hiller N. Luisa1,Lacy‐Hulbert Adam2,Zhao Yongxin1ORCID

Affiliation:

1. Department of Biological Sciences Carnegie Mellon University 4400 Fifth Avenue Pittsburgh PA 15213 USA

2. Benaroya Research Institute at Virginia Mason 1201 9th Ave Seattle WA 98101 USA

3. Immersive Science LLC 6835 113TH PL SE Newcastle WA 98056 USA

4. Wills Eye Hospital and Jefferson University Hospital Philadelphia PA 19107 USA

5. Viron Molecular Medicine Institute 201 Washington Street Boston MA 02201 USA

6. Department of Physiology Wayne State University 42 W Warren Ave Detroit MI 48202 USA

7. NanoBioScience Institute Wayne State University 42 W Warren Ave Detroit MI 48202 USA

8. Center for Molecular Medicine & Genetics School of Medicine Wayne State University 42 W Warren Ave Detroit MI 48202 USA

9. Lundquist Institute for Biomedical Innovation at Harbor‐UCLA Medical Center 1124 W Carson St Torrance CA 90502 USA

10. David Geffen School of Medicine at UCLA 10833 Le Conte Ave Los Angeles CA 90095 USA

11. Department of Microbiology University of Georgia 210 S Jackson street Athens GA 30602 USA

Abstract

AbstractSuper‐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. MicroMagnify (µMagnify) is developed, a nanoscale multiplexed imaging method for pathogens and infected tissues that are derived from an expansion microscopy technique with a universal biomolecular anchor. The combination of heat denaturation and enzyme cocktails essential is found for robust cell wall digestion and expansion of microbial cells and infected tissues without distortion. µMagnify efficiently retains biomolecules suitable for high‐plex fluorescence imaging with nanoscale precision. It demonstrates up to eightfold expansion with µMagnify on a broad range of pathogen‐containing specimens, including bacterial and fungal biofilms, infected culture cells, fungus‐infected mouse tone, and formalin‐fixed paraffin‐embedded human cornea infected by various pathogens. Additionally, an associated virtual reality tool is developed to facilitate the visualization and navigation of complex 3D images generated by this method in an immersive environment allowing collaborative exploration among researchers worldwide. µMagnify is a valuable imaging platform for studying how microbes interact with their host systems and enables the development of new diagnosis strategies against infectious diseases.

Funder

Carnegie Mellon University

National Institutes of Health

National Institute of Dental and Craniofacial Research

DSF Charitable Foundation

Charles E. Kaufman Foundation

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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