scholarly journals Glutamine Metabolism in Both the Oxidative and Reductive Directions Is Triggered in Shrimp Immune Cells (Hemocytes) at the WSSV Genome Replication Stage to Benefit Virus Replication

2019 ◽  
Vol 10 ◽  
Author(s):  
Shu-Ting He ◽  
Der-Yen Lee ◽  
Cheng-Yi Tung ◽  
Chun-Yuan Li ◽  
Han-Ching Wang
2018 ◽  
Vol 92 (15) ◽  
Author(s):  
Paula F. Zamora ◽  
Liya Hu ◽  
Jonathan J. Knowlton ◽  
Roni M. Lahr ◽  
Rodolfo A. Moreno ◽  
...  

ABSTRACTViral nonstructural proteins, which are not packaged into virions, are essential for the replication of most viruses. Reovirus, a nonenveloped, double-stranded RNA (dsRNA) virus, encodes three nonstructural proteins that are required for viral replication and dissemination in the host. The reovirus nonstructural protein σNS is a single-stranded RNA (ssRNA)-binding protein that must be expressed in infected cells for production of viral progeny. However, the activities of σNS during individual steps of the reovirus replication cycle are poorly understood. We explored the function of σNS by disrupting its expression during infection using cells expressing a small interfering RNA (siRNA) targeting the σNS-encoding S3 gene and found that σNS is required for viral genome replication. Using complementary biochemical assays, we determined that σNS forms complexes with viral and nonviral RNAs. We also discovered, usingin vitroand cell-based RNA degradation experiments, that σNS increases the RNA half-life. Cryo-electron microscopy revealed that σNS and ssRNAs organize into long, filamentous structures. Collectively, our findings indicate that σNS functions as an RNA-binding protein that increases the viral RNA half-life. These results suggest that σNS forms RNA-protein complexes in preparation for genome replication.IMPORTANCEFollowing infection, viruses synthesize nonstructural proteins that mediate viral replication and promote dissemination. Viruses from the familyReoviridaeencode nonstructural proteins that are required for the formation of progeny viruses. Although nonstructural proteins of different viruses in the familyReoviridaediverge in primary sequence, they are functionally homologous and appear to facilitate conserved mechanisms of dsRNA virus replication. Usingin vitroand cell culture approaches, we found that the mammalian reovirus nonstructural protein σNS binds and stabilizes viral RNA and is required for genome synthesis. This work contributes new knowledge about basic mechanisms of dsRNA virus replication and provides a foundation for future studies to determine how viruses in the familyReoviridaeassort and replicate their genomes.


2015 ◽  
Vol 70 (1) ◽  
pp. 121-132 ◽  
Author(s):  
Andrea Bogomolni ◽  
Salvatore Frasca ◽  
Milton Levin ◽  
Keith Matassa ◽  
Ole Nielsen ◽  
...  

1998 ◽  
Vol 9 (1) ◽  
pp. 19-24 ◽  
Author(s):  
AR Awan ◽  
J Harmenberg ◽  
O Flink ◽  
HJ Field

Recently we have reported a zosteriform murine infection model which employs the adoptive transfer of immune cells (ATI) to recipient infected mice to produce a disease that mimics human recurrent herpes simplex virus (HSV) disease. Mice were infected with HSV-1 by scarification at the lateroventral line of the neck; 2 days later, the mice received immune cells from HSV-1-infected syngeneic mice. Although virus was cleared more quickly from the target tissues of virus replication in recipient mice, ATI resulted in a heightened inflammatory response and delayed healing. This model was used to test the effects of topical formulations containing foscarnet and/or the anti-inflammatory agent, hydrocortisone. Virus clearance and clinical signs, including ear thickness and zosteriform spread of lesions, were studied. Treatment with 3% foscarnet accelerated virus clearance but had little effect on clinical parameters. By contrast, 0.5% hydrocortisone increased the titre and extended the presence of infectious virus for at least 6 days, although the reduction in clinical signs was greater than that obtained with topical foscarnet. Foscarnet in combination with hydrocortisone produced a marked reduction in clinical signs while virus replication was reduced. These results are discussed in relation to the inflammation and discomfort experienced by patients and a possible role for anti-inflammatory formulations in the treatment of HSV reactivation episodes in man.


Harmful Algae ◽  
2016 ◽  
Vol 51 ◽  
pp. 89-96 ◽  
Author(s):  
Andrea L. Bogomolni ◽  
Anna L. Bass ◽  
Spencer Fire ◽  
Lindsay Jasperse ◽  
Milton Levin ◽  
...  

Author(s):  
Xiaozhe Fu ◽  
Kejin Li ◽  
Yinjie Niu ◽  
Qiang Lin ◽  
Hongru Liang ◽  
...  

Infectious spleen and kidney necrosis virus (ISKNV) is the causative agent of farmed fish disease that has caused huge economic losses in fresh and marine fish aquaculture. The redox state of cells is shaped by virus into a favorable microenvironment for virus replication and proliferation.


2019 ◽  
Vol 20 (9) ◽  
pp. 2336 ◽  
Author(s):  
Masashi Arakawa ◽  
Eiji Morita

Some single-stranded positive-sense RNA [ssRNA(+)] viruses, including Flavivirus, generate specific organelle-like structures in the host endoplasmic reticulum (ER). These structures are called virus replication organelles and consist of two distinct subdomains, the vesicle packets (VPs) and the convoluted membranes (CMs). The VPs are clusters of small vesicle compartments and are considered to be the site of viral genome replication. The CMs are electron-dense amorphous structures observed in proximity to the VPs, but the exact roles of CMs are mostly unknown. Several recent studies have revealed that flaviviruses recruit several host factors that are usually used for the biogenesis of other conventional organelles and usurp their function to generate virus replication organelles. In the current review, we summarize recent studies focusing on the role of host factors in the formation of virus replication organelles and discuss how these intricate membrane structures are organized.


2020 ◽  
Author(s):  
Rasika D. Kunden ◽  
Sarah Ghezelbash ◽  
Juveriya Q. Khan ◽  
Joyce A. Wilson

ABSTRACTHepatitis C virus (HCV) genome replication requires annealing of a liver specific small-RNA, miR-122 to 2 sites on 5’ untranslated region (UTR). Annealing has been reported to a) stabilize the genome, b) promote translation, and c) induce the canonical HCV 5’ UTR Internal Ribosome Entry Site (IRES) structure. In this report we identify the relative impact of small RNA annealing on the three functions ascribed to miR-122 and generate a mechanistic model for miR-122 promotion of HCV. First, we identified that perfectly complementary small RNAs that anneal to different locations on the HCV 5’ UTR stimulate replication with varying efficiencies and mapped the region on the HCV genome to which small RNA annealing promotes virus replication. Second, by using a panel of small RNAs that promote with varying efficiencies we link HCV replication induction with translation stimulation and 5’ UTR RNA structure modifications. However, replication promotion was not linked to genome stabilization since all small RNAs tested could stabilize the viral genome regardless of their ability to promote replication. Thus, we propose that miR-122 annealing promotes HCV replication primarily by activating the HCV IRES and stimulating translation, and that miR-122-induced HCV genome stabilization is insufficient alone but enhances virus replication.Graphical Abstract


2005 ◽  
Vol 79 (4) ◽  
pp. 2309-2324 ◽  
Author(s):  
Li Yu ◽  
Lewis Markoff

ABSTRACT All flavivirus genomes contain a 3′terminal stem-loop secondary structure (3′SL) formed by the most downstream ∼100 nucleotides (nt) of the viral RNA. The 3′SL is required for virus replication and has been shown to bind both virus-coded and cellular proteins. Results of the present study using an infectious DNA for WN virus strain 956 initially demonstrated that the dengue virus serotype 2 (DEN2) 3′SL nucleotide sequence could not substitute for that of the WN 3′SL to support WN genome replication. To determine what WN virus-specific 3′SL nucleotide sequences were required for WN virus replication, WN virus 3′SL nucleotide sequences were selectively deleted and replaced by analogous segments of the DEN2 3′SL nucleotide sequence such that the overall 3′SL secondary structure was not disrupted. Top and bottom portions of the WN virus 3′SL were defined according to previous studies (J. L. Blackwell and M. A. Brinton, J. Virol. 71:6433-6444, 1997; L. Zeng, L., B. Falgout, and L. Markoff, J. Virol. 72:7510-7522, 1998). A bulge in the top portion of the long stem of the WN 3′SL was essential for replication of mutant WN RNAs, and replication-defective RNAs failed to produce negative strands in transfected cells. Introduction of a second bulge into the bottom portion of the long stem of the wild-type WN 3′SL markedly enhanced the replication competence of WN virus in mosquito cells but had no effect on replication in mammalian cells. This second bulge was identified as a host cell-specific enhancer of flavivirus replication. Results suggested that bulges and their topological location within the long stem of the 3′SL are primary determinants of replication competence for flavivirus genomes.


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