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Engineering Antiviral Agents via Surface Plasmon Resonance
Published on: June 14, 2022
SARS-CoV-2 peptide fragments selectively dysregulate specific immune cell populations via Gaussian curvature
Yue Zhang1,2,3,4,5,6, Carlos Silvestre-Roig7, Han Fu5,6
1Department of Bioengineering, University of California, Los Angeles, CA 90095.
Abstract:
Immune cell populations are dysregulated in COVID-19 for currently unknown reasons: Plasmacytoid dendritic cell (pDC) populations are reduced, thus hampering antiviral responses. CD8+ T cell populations are reduced, the level of which has emerged as an index of disease severity. Recent work has shown that the proteome of SARS-CoV-2 is a rich reservoir of antimicrobial peptide-like sequence motifs (xenoAMPs) which can chaperone and organize dsRNA for amplified Toll-Like Receptor 3 (TLR3)-mediated inflammation in vitro and in vivo. Here, we demonstrate that proteolytic digestion of the SARS-CoV-2 spike protein by host trypsin-like serine proteases directly produces xenoAMPs. Synchrotron Small Angle X-ray Scattering, mass spectrometry, and a theoretical analysis based on continuum membrane elasticity show that proteolytically generated xenoAMPs from SARS-CoV-2 proteins in vitro and machine learning-predicted high-scoring xenoAMPs all induce negative Gaussian curvature (NGC) necessary for pore formation in membranes. We find that xenoAMPs alone as well as xenoAMPs synergistically with endogenous AMP LL-37 can induce NGC in membranes. A computational analysis of immune cells with morphologically complex shapes (e.g., pDC, CD8+, and CD4+ T cells) suggests that surfaces with high local NGC can concentrate AMP-like sequences and promote selective membrane disruption. Consistent with this hypothesis, experiments with freshly isolated human peripheral blood mononuclear cells confirm that viable pDCs, DCs, and T cells are significantly depleted after xenoAMP exposure, in contrast to monocytes and neutrophils, the immune cell subsets with spheroidal morphology. Structural data from Omicron variant xenoAMP homologs indicate reduced pore formation, consistent with clinical observations of reduced T cell cytopenia in Omicron variant infections.
Insights
SARS-CoV-2 spike proteins produce antimicrobial peptide-like sequences (xenoAMPs) that disrupt immune cells. These xenoAMPs explain immune cell depletion in COVID-19, with Omicron variants showing reduced disruption.
Area of Science:
- Virology
- Immunology
- Biophysics
Background:
- COVID-19 dysregulates immune cells like plasmacytoid dendritic cells (pDCs) and CD8+ T cells, impacting antiviral responses and disease severity.
- The SARS-CoV-2 proteome contains antimicrobial peptide-like sequence motifs (xenoAMPs) that can promote inflammation.
- The mechanism by which SARS-CoV-2 proteins affect immune cells remains largely unknown.
Purpose of the Study:
- To investigate how SARS-CoV-2 proteins, specifically the spike protein, generate xenoAMPs.
- To determine the biophysical properties of these xenoAMPs and their effect on immune cell membranes.
- To elucidate the role of xenoAMPs in COVID-19-associated immune cell depletion.
Main Methods:
- Proteolytic digestion of SARS-CoV-2 spike protein.
- Synchrotron Small Angle X-ray Scattering and mass spectrometry.
- Computational analysis of immune cell morphology and membrane elasticity.
- Experiments with human peripheral blood mononuclear cells (PBMCs).
Main Results:
- Host proteases convert SARS-CoV-2 spike proteins into xenoAMPs.
- Generated xenoAMPs induce negative Gaussian curvature (NGC) in membranes, facilitating pore formation.
- Viable pDCs, DCs, and T cells were depleted upon xenoAMP exposure, unlike monocytes and neutrophils.
- Omicron variant xenoAMPs showed reduced pore formation, correlating with milder T cell cytopenia.
Conclusions:
- Proteolytically generated xenoAMPs from SARS-CoV-2 proteins contribute to immune cell depletion in COVID-19.
- The biophysical mechanism involves xenoAMPs inducing NGC and disrupting membranes of specific immune cell types.
- Reduced xenoAMP activity in Omicron variants may explain milder T cell abnormalities observed in infections.
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