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A measles virus collective infectious unit that caused lethal human brain disease includes many locally restricted
Biruhalem Taye1, Iris Yousaf1,2, Chanakha K Navaratnarajah1,2
1Department of Molecular Medicine, Mayo Clinic, Rochester, Minnesota, USA.
Abstract:
During virus replication in cultured cells, copy-back defective viral genomes (cbDVGs) can arise. CbDVGs are powerful inducers of innate immune responses in vitro, but their occurrence and impact on natural infections of human hosts remain poorly defined. We asked whether cbDVGs were generated in the brain of a patient who succumbed to subacute sclerosing panencephalitis (SSPE) about 20 years after acute measles virus (MeV) infection. Previous analyses of 13 brain specimens of this patient indicated that a collective infectious unit (CIU) drove lethal MeV spread. In this study, we identified 276 replication-competent cbDVG species, each present in over 100 copies in the brain. Six species were detected in multiple forebrain locations, implying that they travelled long-distance with the CIU. The cbDVG to full-length genomes ratio was often close to 1 (0.6-1.74). Most cbDVGs were 324-2,000 bases in length, corresponding to 2%-12% of the full-length genome; all are predicted to have complementary terminal sequences. If improperly encapsidated, these sequences have the potential to form double-stranded structures that can induce innate immune responses. To assess this, we examined the transcriptome of all brain specimens. Several interferon and inflammatory response genes were upregulated, but upregulation levels did not correlate with cbDVG levels in the specimens. Thus, the CIU that drove MeV pathogenesis in this brain includes, in addition to two complementary full-length genome populations, many locally restricted and few widespread cbDVG species. The widespread cbDVG species may have been positively selected but how they impacted pathogenesis remains to be determined.IMPORTANCECopy-back defective viral genomes (cbDVGs) can drive virus-host interactions. They can suppress virus replication directly, by competing with full-length genomes, or indirectly by stimulating antiviral immunity. In vitro, cbDVG can slow down infections and promote persistence, but there is limited documentation of their presence in human hosts or of their impact on disease. We had the unique opportunity to analyze the brain of a patient who succumbed to subacute sclerosing panencephalitis, a rare but lethal consequence of measles. We detected more than 270 distinct cbDVG species; most were restricted to one specimen, but several reached all lobes of the forebrain, suggesting positive selection. Our analyses provide the missing knowledge of the diversity of cbDVG in a natural infection of a human host. They also reveal that a collective infectious unit that caused lethal human brain disease includes few widespread cbDVG, in addition to two ubiquitous complementary full-length genome populations.
Insights
Copy-back defective viral genomes (cbDVGs) were found in the brain of a measles virus patient. These viral fragments may have been positively selected and could influence disease, but their exact role requires further study.
Area of Science:
- Virology
- Neuroscience
- Immunology
Background:
- Copy-back defective viral genomes (cbDVGs) are known to induce innate immune responses in vitro.
- Their presence and impact in natural human infections, particularly in the brain, are poorly understood.
- Subacute sclerosing panencephalitis (SSPE) is a rare, fatal neurological complication of measles virus (MeV) infection.
Purpose of the Study:
- To investigate the presence and diversity of cbDVGs in the brain of an SSPE patient.
- To determine if cbDVGs were part of the collective infectious unit (CIU) driving MeV spread in the brain.
- To explore the potential impact of cbDVGs on MeV pathogenesis and host immune response.
Main Methods:
- Analysis of brain specimens from an SSPE patient using next-generation sequencing.
- Identification and quantification of cbDVG species.
- Transcriptome analysis to assess host gene expression, including interferon and inflammatory responses.
- Comparison of cbDVG distribution with full-length MeV genomes.
Main Results:
- Over 270 distinct replication-competent cbDVG species were identified in the patient's brain.
- Six cbDVG species were found in multiple brain locations, suggesting long-distance travel with the CIU.
- The ratio of cbDVG to full-length MeV genomes was often close to 1.
- While interferon and inflammatory genes were upregulated, their levels did not correlate with cbDVG abundance.
- The MeV CIU included numerous localized cbDVGs and a few widespread species.
Conclusions:
- The MeV CIU responsible for SSPE pathogenesis in this patient contained diverse cbDVG species, alongside full-length genomes.
- Widespread cbDVG species may have been positively selected within the brain.
- The precise role of these cbDVGs in the pathogenesis of SSPE remains to be elucidated.
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