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Ultrastructural Expansion Microscopy in Three In Vitro Life Cycle Stages of Trypanosoma cruzi
Published on: May 12, 2023
Single cell analysis of PANoptosome cell death complexes through an expansion microscopy method
Yaqiu Wang1, Nagakannan Pandian1, Joo-Hui Han1
1Department of Immunology, St. Jude Children's Research Hospital, MS #351, 262 Danny Thomas Pl., Memphis, TN, 38105-2794, USA.
Abstract:
In response to infection or sterile insults, inflammatory programmed cell death is an essential component of the innate immune response to remove infected or damaged cells. PANoptosis is a unique innate immune inflammatory cell death pathway regulated by multifaceted macromolecular complexes called PANoptosomes, which integrate components from other cell death pathways. Growing evidence shows that PANoptosis can be triggered in many physiological conditions, including viral and bacterial infections, cytokine storms, and cancers. However, PANoptosomes at the single cell level have not yet been fully characterized. Initial investigations have suggested that key pyroptotic, apoptotic, and necroptotic molecules including the inflammasome adaptor protein ASC, apoptotic caspase-8 (CASP8), and necroptotic RIPK3 are conserved components of PANoptosomes. Here, we optimized an immunofluorescence procedure to probe the highly dynamic multiprotein PANoptosome complexes across various innate immune cell death-inducing conditions. We first identified and validated antibodies to stain endogenous mouse ASC, CASP8, and RIPK3, without residual staining in the respective knockout cells. We then assessed the formation of PANoptosomes across innate immune cell death-inducing conditions by monitoring the colocalization of ASC with CASP8 and/or RIPK3. Finally, we established an expansion microscopy procedure using these validated antibodies to image the organization of ASC, CASP8, and RIPK3 within the PANoptosome. This optimized protocol, which can be easily adapted to study other multiprotein complexes and other cell death triggers, provides confirmation of PANoptosome assembly in individual cells and forms the foundation for a deeper molecular understanding of the PANoptosome complex and PANoptosis to facilitate therapeutic targeting.
Insights
Researchers optimized immunofluorescence and expansion microscopy to visualize PANoptosomes, key protein complexes in PANoptosis, an inflammatory cell death pathway. This study confirms PANoptosome assembly in single cells, aiding understanding of innate immunity and potential therapies.
Area of Science:
- Immunology
- Cell Biology
- Innate Immune Response
Background:
- Inflammatory programmed cell death, including PANoptosis, is crucial for removing infected or damaged cells during innate immune responses.
- PANoptosis involves PANoptosomes, complex protein structures integrating elements from pyroptosis, apoptosis, and necroptosis.
- While PANoptosis is implicated in infections, cancers, and cytokine storms, PANoptosomes remain poorly characterized at the single-cell level.
Purpose of the Study:
- To optimize immunofluorescence and expansion microscopy techniques for visualizing PANoptosome assembly in individual cells.
- To validate antibodies for key PANoptosome components: ASC, CASP8, and RIPK3.
- To confirm PANoptosome formation across various innate immune cell death-inducing conditions.
Main Methods:
- Validated antibodies for endogenous mouse ASC, CASP8, and RIPK3 using knockout cells.
- Assessed PANoptosome formation by monitoring colocalization of ASC with CASP8 and/or RIPK3 via immunofluorescence.
- Employed expansion microscopy with validated antibodies to image the molecular organization within PANoptosomes.
Main Results:
- Successfully identified and validated antibodies for staining endogenous ASC, CASP8, and RIPK3.
- Demonstrated PANoptosome assembly by observing the colocalization of ASC with CASP8 and/or RIPK3 in response to cell death triggers.
- Visualized the nanoscale organization of ASC, CASP8, and RIPK3 within the PANoptosome using expansion microscopy.
Conclusions:
- Developed and optimized robust immunofluorescence and expansion microscopy protocols for studying PANoptosomes.
- Confirmed PANoptosome assembly at the single-cell level, providing critical insights into this innate immune pathway.
- Established a foundation for deeper molecular understanding of PANoptosomes and PANoptosis, facilitating future therapeutic targeting.

