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Klein, T. A.

Publications and source records attributed to Klein, T. A..

3 recordsLinked to original sources

Identification of Japanese Encephalitis Virus Genotype V and Other Mosquito-borne Viruses in Camp Humphreys, Republic of Korea, using Metagenomic Analysis

Recent outbreaks of emerging and re-emerging viruses such as Zika, West Nile and Japanese encephalitis (JEV) viruses have shown that timely detection of novel arboviruses with epidemic potential is essential to mitigate human health risks. There have been rising concerns that an emergent JEV genotype (genotype V, GV) is circulating in Asia, against which the current US-FDA-approved JEV vaccine may not be efficacious. To ascertain if JEV GV and other arboviruses are circulating in East Asia, we conducted next-generation sequencing on 260 pools of Culex tritaeniorhynchus and Culex bitaeniorhynchus mosquitoes (6,540 specimens) collected at Camp Humphreys, Republic of Korea (ROK), from mid-May - October 2018. Metagenomic analysis demonstrated a highly abundant and diverse virome with correlates of health and ecological relevance. Additionally, two complete JEV GV genome sequences were obtained from separate mosquito pools, indicating that JEV GV is circulating in the Pyeongtaek area near Seoul, ROK. Retrospective sample and sequence analyses showed that JEV GV was also present in 2016 mosquito pools collected in Seoul, ROK. Sequence-based analysis of JEV GV indicates a divergent genotype that is the most distant from the GIII derived live attenuated SA14-14-2 vaccine strain. A GV E protein investigation and 3D modeling in context to SA14-14-2 indicated likely regions responsible for reduced antibody affinity, including clusters of significant amino acid changes at externally exposed domains. These data highlight the critical need for continued mosquito surveillance as a means of detecting and identifying emerging and re-emerging arboviruses of public health relevance. Importantly, our results emphasize recent concerns that there may be a possible shift in the circulating JEV genotype in East Asia and highlights the critical need for a vaccine proven to be efficacious against this re-emergent virus.

genomics

Novel Paju Apodemus Paramyxovirus 1 and 2, Harbored by Apodemus agrarius in The Republic of Korea

Paramyxoviruses, negative-sense single-stranded RNA viruses, pose a potential threat to public health. Currently, 78 species and 17 genera of paramyxoviruses are classified and harbored by multiple natural reservoirs, including rodents, bats, birds, reptiles, and fish. Jeilongvirus has been proposed as a novel paramyxovirus genus containing J-, Beilong, and Tailam viruses, found in wild rodents. Using RT-PCR, 824 Apodemus agrarius individuals were examined for the prevalence of paramyxovirus infections. Paramyxovirus RNA was detected in 108 (13.1%) rodents captured at 14 trapping sites in Korea. We first present two genetically distinct novel paramyxoviruses (genus Jeilongvirus), Paju Apodemus paramyxoviruses 1 (PAPV-1) and 2 (PAPV-2), from A. agrarius. Six PAPV strains were completely sequenced using next-generation and Sanger sequencing. PAPV-1 genome comprised 19,716 nucleotides, with eight genes (3'-N-P/V/C-M-F-SH-TM-G-L-5'), whereas PAPV-2 genome contained 17,475 nucleotides, with seven genes (3'-N-P/V/C-M-F-TM-G-L-5'). The disparity between PAPV-1 and -2 revealed the presence of the SH gene and length of the G gene in the genome organization. The phylogenies of PAPV-1 and -2 belong to distinct genetic lineages of Jeilongvirus despite being from the same natural host. PAPV-1 clustered with Beilong and Tailam viruses, while PAPV-2 formed a genetic lineage with Mount Mabu Lophuromys virus-1. PAPV-1 infected human epithelial and endothelial cells, facilitating the induction of type I/III interferons, interferon-stimulated genes, and proinflammatory cytokines. Therefore, this study provides profound insights into the molecular epidemiology, virus-host interactions, and zoonotic potential of novel rodent-borne paramyxoviruses. ImportanceParamyxoviruses are a critical public health and socio-economic burden to humans. Rodents play a crucial role in transmitting pathogens to humans. In the last decade, novel paramyxoviruses have been discovered in different rodents. Here, we found that Apodemus agrarius harbored two distinct genotypes of the novel paramyxoviruses, Paju Apodemus paramyxovirues 1 (PAPV-1) and 2 (PAPV-2), possessing unique genome structures that are responsible for encoding TM and G proteins of different sizes. In addition, PAPV-1 infected human epithelial and endothelial cells, facilitating the induction of type I/III IFNs, ISGs, and proinflammatory cytokines. Thus, this study provides significant insights into molecular prevalence, virus-host interactions of paramyxoviruses. These observations raise the awareness of physicians and scientists about the emergence of new rodent-borne paramyxoviruses.

microbiology

Structure of the extracellular region of the bacterial type VIIb secretion system subunit EsaA

Gram-positive bacteria use type VII secretion systems (T7SSs) to export effector proteins that manipulate the physiology of nearby prokaryotic and eukaryotic cells. Several mycobacterial T7SSs have established roles in virulence. By contrast, recent work has demonstrated that the genetically distinct T7SSb pathway found in Firmicutes bacteria more often functions to mediate interbacterial competition. A lack of structural information on the T7SSb has limited the understanding of effector export by this protein secretion apparatus. In this work, we present the 2.4[A] crystal structure of the extracellular region of the elusive T7SSb subunit EsaA from Streptococcus gallolyticus. Our structure reveals that homodimeric EsaA is an elongated, arrow-shaped protein with a surface-accessible tip, which serves as a receptor for lytic bacteriophages in some species of bacteria. Because it is the only T7SSb subunit large enough to traverse the thick peptidoglycan layer of Firmicutes bacteria, we propose that EsaA plays a critical role in transporting effectors across the entirety of the Gram-positive cell envelope.

microbiology