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Brain tropism acquisition: The spatial dynamics and evolution of a measles virus collective infectious unit that
Iris Yousaf1,2, William W Hannon3,4, Ryan C Donohue2
1Department of Molecular Medicine, Mayo Clinic, Rochester, Minnesota, United States of America.
Abstract:
It is increasingly appreciated that pathogens can spread as infectious units constituted by multiple, genetically diverse genomes, also called collective infectious units or genome collectives. However, genetic characterization of the spatial dynamics of collective infectious units in animal hosts is demanding, and it is rarely feasible in humans. Measles virus (MeV), whose spread in lymphatic tissues and airway epithelia relies on collective infectious units, can, in rare cases, cause subacute sclerosing panencephalitis (SSPE), a lethal human brain disease. In different SSPE cases, MeV acquisition of brain tropism has been attributed to mutations affecting either the fusion or the matrix protein, or both, but the overarching mechanism driving brain adaptation is not understood. Here we analyzed MeV RNA from several spatially distinct brain regions of an individual who succumbed to SSPE. Surprisingly, we identified two major MeV genome subpopulations present at variable frequencies in all 15 brain specimens examined. Both genome types accumulated mutations like those shown to favor receptor-independent cell-cell spread in other SSPE cases. Most infected cells carried both genome types, suggesting the possibility of genetic complementation. We cannot definitively chart the history of the spread of this virus in the brain, but several observations suggest that mutant genomes generated in the frontal cortex moved outwards as a collective and diversified. During diversification, mutations affecting the cytoplasmic tails of both viral envelope proteins emerged and fluctuated in frequency across genetic backgrounds, suggesting convergent and potentially frequency-dependent evolution for modulation of fusogenicity. We propose that a collective infectious unit drove MeV pathogenesis in this brain. Re-examination of published data suggests that similar processes may have occurred in other SSPE cases. Our studies provide a primer for analyses of the evolution of collective infectious units of other pathogens that cause lethal disease in humans.
Insights
Measles virus (MeV) spreads in the brain as a collective of diverse genomes, driving lethal subacute sclerosing panencephalitis (SSPE) pathogenesis. This study reveals genome collectives
Area of Science:
- Virology
- Evolutionary Biology
- Neuroscience
Background:
- Pathogens can spread as collective infectious units (genome collectives) of diverse genetic material.
- Measles virus (MeV) uses genome collectives for spread and can cause lethal subacute sclerosing panencephalitis (SSPE).
- Mechanisms of MeV brain adaptation in SSPE are not fully understood.
Purpose of the Study:
- To investigate the genetic diversity and spatial dynamics of MeV within the brain of an SSPE patient.
- To elucidate the evolutionary mechanisms driving MeV brain tropism and pathogenesis.
Main Methods:
- Analysis of MeV RNA from multiple spatially distinct brain regions of an SSPE patient.
- Identification and quantification of MeV genome subpopulations.
- Examination of mutations affecting viral proteins and their potential role in cell-cell spread.
Main Results:
- Two major MeV genome subpopulations were identified in all 15 brain specimens.
- Both genome types showed mutations associated with enhanced cell-cell spread.
- Most infected cells harbored both genome types, suggesting genetic complementation.
- Evidence suggests outward spread of mutant genomes from the frontal cortex, with diversification and fluctuating mutations in viral envelope proteins.
Conclusions:
- A collective infectious unit likely drove MeV pathogenesis in the studied SSPE case.
- Convergent and frequency-dependent evolution may modulate viral fusogenicity.
- Similar collective infectious unit dynamics may occur in other SSPE cases.
- Findings provide a framework for studying collective infectious unit evolution in other human pathogens.
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