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Larrea-Sarmiento, A. E.

Publications and source records attributed to Larrea-Sarmiento, A. E..

2 recordsLinked to original sources

Viromics in flat mites from Hawaii shows abundant arrays of viruses, expands the evolutionary origin of plant viruses, and provides a surveillance tool for Brevipalpus-transmitted viruses

Flat mites (Tenuipalpidae) are diverse phytophagous arthropods, among which Brevipalpus species are economically important pests capable of transmitting plant viruses. Brevipalpus-transmitted viruses (BTVs) cause localized infections in plants and are classified into two major groups based on cytopathology and genome organization: BTV-C (genera Cilevirus and Higrevirus, family Kitaviridae) and BTV-N (genus Dichorhavirus, family Rhabdoviridae). Despite their significance, the virome of tenuipalpid mite vectors remains poorly characterized. Using high-throughput sequencing (HTS), we analyzed virus populations associated with Brevipalpus and Dolichotetranychus mites collected from multiple plant hosts across two Hawaiian Islands. We identified a diverse assemblage of viral sequences affiliated with Kitaviridae, negeviruses, Picornavirales, Narnaviridae, Tombusviridae, Solemoviridae, Ourmiaviridae, Reoviridae, and Potyviridae. Near-complete genomes of citrus leprosis virus C2H and hibiscus green spot virus 2 (both BTV-C) were recovered, highlighting the utility of HTS-based viromics for surveillance of BTVs in mite vectors. In addition, multiple divergent virus-like contigs were identified based on viral hallmark genes and sequence divergence, including Brevipalpus-associated negevirus, Brevipalpus-associated bluner-like virus, and Dolichotetranychus-associated cile-like virus, all showing evolutionary affinities to BTV-C-related viruses. Phylogenetic analyses support evolutionary links between negeviruses and kitavirids, consistent with the hypothesis that Kitaviridae evolved from arthropod-associated ancestors. While some detected plant viruses may reflect ingestion rather than active replication in mites, this study establishes a robust framework for virome-based surveillance of tenuipalpid mites, advancing our understanding of plant virus evolution and supporting agricultural biosecurity and pest management efforts.

microbiology↗

Viral and bacterial plant pathogens suppress antiviral defense against flaviviruses in their insect vectors

A positive, single-stranded RNA virus member within the Flavivirus genus was identified and characterized infecting Myzus persicae. This new insect-specific virus (ISV), Myzus persicae flavivirus (MpFV), is 23,236 nucleotides in length and encodes a large polyprotein from a single open reading frame. Analysis of conserved domains showed that helicases, NS3-proteases, Fts-J methyltransferase, and an RNA-dependent RNA polymerase are present in the coded polyprotein. Aphid-infecting ISVs have been reported to interact with plant viruses within the vector, modulating its titer and manipulating aphid behavior and morphology. Small RNA (sRNA) profile analysis of the M. persicae sRNA profile demonstrated that the circulative plant virus, potato leafroll virus (PLRV), modified the aphid antiviral immunity against MpFV. Abundant sRNA reads matching MpFV were detected when aphids were fed on healthy plants, sucrose diet, and potato virus Y-infected plants. In contrast, no MpFV reads were detected in aphids that had acquired PLRV from infected plants or artificial diet sachets containing purified virions. While the titer of M. persicae densovirus (MpDNV) was previously reported to be regulated by expression of the PLRV silencing suppressor protein P0, P0 had no effect on MpFV titer in the aphid. MpFV was transmitted 100% vertically to the offspring, and exhibited tissue tropisms for the body rather than the head. By artificial diet assays, other aphid species, including Aphis gossypii (cotton aphid), Schizaphis graminum (greenbug aphid), Rhopalosiphum padi (bird cherry-oat aphid), and R. maidis (corn leaf aphid), acquired the MpFV. These findings further support the idea that PLRV suppresses aphid immunity against ISVs, suggest the existence of at least two distinct pathways for PLRV-induced aphid immune system modulation. To test whether other circulative plant pathogens suppress insect anti-viral immunity against insect-specific flaviviruses, we quantified the small RNA response of Diaphorina citri, vector of "Candidatus Liberibacter asiaticus" (CLas) associated with citrus greening disease and showed that CLas also suppresses D. citri anti-viral immunity against D. citri-like flavivirus (DcLFV). These data reveal an evolutionary conserved, unexpected role for diverse circulative plant pathogens in modulating anti-viral immunity in hemipteran vectors.

microbiology↗