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Biology subjects

Unanue, A. R.

Publications and source records attributed to Unanue, A. R..

3 recordsLinked to original sources

Non-cyclic dinucleotide STING agonists abrogate MPXV infection

Mpox has emerged as a global threat to public health following several national and international outbreaks from 2022. Poxviruses deploy multiple strategies to counteract host immune defences including pathways leading to interferon (IFN) production. Here we demonstrate that depleting the viral 23-cGAMP nuclease poxin restores activation of STING and IRF3 during MPXV infection despite the presence of other viral antagonists. We then demonstrate that non-cyclic dinucleotide (non-CDN) STING agonists are resistant to poxin; activate STING and IRF3 during infection; and potently suppress MPXV and orthopoxvirus replication in human primary fibroblasts and differentiated monocytes, where replication is completely abrogated. Mechanistically, non-CDN restriction requires STING, IFNAR and STAT signalling, and induces a unique transcriptional signature over IFN{beta}, enabling expression of additional cytokines. In vivo, non-CDN activity effectively reduces signs of illness and enhances survival in wild-derived castaneous mice inoculated with the virulent clade I MPXV. Our study reveals poxin as an Achilles heel of MPXV, that when bypassed by direct STING agonism, provides a promising novel anti-mpox therapeutic strategy with reduced risk of antiviral resistance.

microbiology↗

Enhanced mouse virulence of mpox virus clade Ib over clade IIb despite genomic changes caused by human-to-human transmission

The recently emerged clade Ib of mpox virus (MPXV) is spreading rapidly across Central and West Africa raising concerns about its potential virulence. Similar to clade IIb lineage B.1, which was responsible for the 2022 global outbreak, clade Ib exhibits sustained human-to-human transmission and a pattern of APOBEC3-associated genomic mutations. Here, we show that clade Ib displays enhanced cell-to-cell dissemination in vitro compared to clade IIb. Additionally, using the CAST mouse model, we show that clade Ib retains a higher level of virulence than that of the markedly attenuated clade IIb. Clade Ib leads to significant weight loss and high mortality in animals following both intraperitoneal and intranasal challenge. Histopathological analysis revealed more severe and extensive lung lesions in clade Ib-infected animals, accompanied by a broader distribution of viral antigens. Moreover, clade Ib, unlike IIb, disseminated efficiently to internal organs. These findings indicate that clade Ib MPXV has not undergone attenuation after human-to-human transmission to the extent observed in clade IIb and underscore the need for surveillance and preparedness against new emerging MPXV lineages.

microbiology↗

Attenuation of the 2022 global outbreak monkeypox virus relative to its clade IIb ancestor

Monkeypox virus (MPXV) is a zoonotic virus endemic to Africa that has recently re-emerged, becoming the first orthopoxvirus with human-to-human transmission since smallpox eradication. The 2022 global epidemic of MPXV was caused by Clade IIb lineage B.1 virus that derives from the Clade IIb lineage A.1, which is endemic to West Africa1-3. Here we compared an early lineage B.1 virus with its closest earlier A.1 ancestor and show that despite only 46 nucleotide differences, lineage B.1 has attenuating phenotypic changes. Both B.1 and A.1 viruses replicated equivalently in cell culture, but B.1 had defects in long-range spread. MPXV B.1 also displayed defects in innate immune control, inducing higher IFN{beta}, innate immune signalling and MAPK gene expression, and a reduced capacity to suppress interleukin-1{beta}-mediated immune responses. Finally, MPXV B.1 had reduced virulence in a mouse model of MPXV infection relative to the ancestral A.1 endemic strain. Our work demonstrates biological differences between human circulating MPXV lineages that correlate with clinical observations documenting reduced in-host viral dissemination and disease severity for lineage B. Our data also reveal that the APOBEC3-like mutational footprint in MPXV is not only a signature of sustained human transmission but can also drive phenotypic changes.

microbiology↗